1============================== 2LLVM Language Reference Manual 3============================== 4 5.. contents:: 6 :local: 7 :depth: 4 8 9Abstract 10======== 11 12This document is a reference manual for the LLVM assembly language. LLVM 13is a Static Single Assignment (SSA) based representation that provides 14type safety, low-level operations, flexibility, and the capability of 15representing 'all' high-level languages cleanly. It is the common code 16representation used throughout all phases of the LLVM compilation 17strategy. 18 19Introduction 20============ 21 22The LLVM code representation is designed to be used in three different 23forms: as an in-memory compiler IR, as an on-disk bitcode representation 24(suitable for fast loading by a Just-In-Time compiler), and as a human 25readable assembly language representation. This allows LLVM to provide a 26powerful intermediate representation for efficient compiler 27transformations and analysis, while providing a natural means to debug 28and visualize the transformations. The three different forms of LLVM are 29all equivalent. This document describes the human readable 30representation and notation. 31 32The LLVM representation aims to be light-weight and low-level while 33being expressive, typed, and extensible at the same time. It aims to be 34a "universal IR" of sorts, by being at a low enough level that 35high-level ideas may be cleanly mapped to it (similar to how 36microprocessors are "universal IR's", allowing many source languages to 37be mapped to them). By providing type information, LLVM can be used as 38the target of optimizations: for example, through pointer analysis, it 39can be proven that a C automatic variable is never accessed outside of 40the current function, allowing it to be promoted to a simple SSA value 41instead of a memory location. 42 43.. _wellformed: 44 45Well-Formedness 46--------------- 47 48It is important to note that this document describes 'well formed' LLVM 49assembly language. There is a difference between what the parser accepts 50and what is considered 'well formed'. For example, the following 51instruction is syntactically okay, but not well formed: 52 53.. code-block:: llvm 54 55 %x = add i32 1, %x 56 57because the definition of ``%x`` does not dominate all of its uses. The 58LLVM infrastructure provides a verification pass that may be used to 59verify that an LLVM module is well formed. This pass is automatically 60run by the parser after parsing input assembly and by the optimizer 61before it outputs bitcode. The violations pointed out by the verifier 62pass indicate bugs in transformation passes or input to the parser. 63 64.. _identifiers: 65 66Identifiers 67=========== 68 69LLVM identifiers come in two basic types: global and local. Global 70identifiers (functions, global variables) begin with the ``'@'`` 71character. Local identifiers (register names, types) begin with the 72``'%'`` character. Additionally, there are three different formats for 73identifiers, for different purposes: 74 75#. Named values are represented as a string of characters with their 76 prefix. For example, ``%foo``, ``@DivisionByZero``, 77 ``%a.really.long.identifier``. The actual regular expression used is 78 '``[%@][-a-zA-Z$._][-a-zA-Z$._0-9]*``'. Identifiers that require other 79 characters in their names can be surrounded with quotes. Special 80 characters may be escaped using ``"\xx"`` where ``xx`` is the ASCII 81 code for the character in hexadecimal. In this way, any character can 82 be used in a name value, even quotes themselves. The ``"\01"`` prefix 83 can be used on global variables to suppress mangling. 84#. Unnamed values are represented as an unsigned numeric value with 85 their prefix. For example, ``%12``, ``@2``, ``%44``. 86#. Constants, which are described in the section Constants_ below. 87 88LLVM requires that values start with a prefix for two reasons: Compilers 89don't need to worry about name clashes with reserved words, and the set 90of reserved words may be expanded in the future without penalty. 91Additionally, unnamed identifiers allow a compiler to quickly come up 92with a temporary variable without having to avoid symbol table 93conflicts. 94 95Reserved words in LLVM are very similar to reserved words in other 96languages. There are keywords for different opcodes ('``add``', 97'``bitcast``', '``ret``', etc...), for primitive type names ('``void``', 98'``i32``', etc...), and others. These reserved words cannot conflict 99with variable names, because none of them start with a prefix character 100(``'%'`` or ``'@'``). 101 102Here is an example of LLVM code to multiply the integer variable 103'``%X``' by 8: 104 105The easy way: 106 107.. code-block:: llvm 108 109 %result = mul i32 %X, 8 110 111After strength reduction: 112 113.. code-block:: llvm 114 115 %result = shl i32 %X, 3 116 117And the hard way: 118 119.. code-block:: llvm 120 121 %0 = add i32 %X, %X ; yields i32:%0 122 %1 = add i32 %0, %0 ; yields i32:%1 123 %result = add i32 %1, %1 124 125This last way of multiplying ``%X`` by 8 illustrates several important 126lexical features of LLVM: 127 128#. Comments are delimited with a '``;``' and go until the end of line. 129#. Unnamed temporaries are created when the result of a computation is 130 not assigned to a named value. 131#. Unnamed temporaries are numbered sequentially (using a per-function 132 incrementing counter, starting with 0). Note that basic blocks and unnamed 133 function parameters are included in this numbering. For example, if the 134 entry basic block is not given a label name and all function parameters are 135 named, then it will get number 0. 136 137It also shows a convention that we follow in this document. When 138demonstrating instructions, we will follow an instruction with a comment 139that defines the type and name of value produced. 140 141High Level Structure 142==================== 143 144Module Structure 145---------------- 146 147LLVM programs are composed of ``Module``'s, each of which is a 148translation unit of the input programs. Each module consists of 149functions, global variables, and symbol table entries. Modules may be 150combined together with the LLVM linker, which merges function (and 151global variable) definitions, resolves forward declarations, and merges 152symbol table entries. Here is an example of the "hello world" module: 153 154.. code-block:: llvm 155 156 ; Declare the string constant as a global constant. 157 @.str = private unnamed_addr constant [13 x i8] c"hello world\0A\00" 158 159 ; External declaration of the puts function 160 declare i32 @puts(i8* nocapture) nounwind 161 162 ; Definition of main function 163 define i32 @main() { ; i32()* 164 ; Convert [13 x i8]* to i8 *... 165 %cast210 = getelementptr [13 x i8], [13 x i8]* @.str, i64 0, i64 0 166 167 ; Call puts function to write out the string to stdout. 168 call i32 @puts(i8* %cast210) 169 ret i32 0 170 } 171 172 ; Named metadata 173 !0 = !{i32 42, null, !"string"} 174 !foo = !{!0} 175 176This example is made up of a :ref:`global variable <globalvars>` named 177"``.str``", an external declaration of the "``puts``" function, a 178:ref:`function definition <functionstructure>` for "``main``" and 179:ref:`named metadata <namedmetadatastructure>` "``foo``". 180 181In general, a module is made up of a list of global values (where both 182functions and global variables are global values). Global values are 183represented by a pointer to a memory location (in this case, a pointer 184to an array of char, and a pointer to a function), and have one of the 185following :ref:`linkage types <linkage>`. 186 187.. _linkage: 188 189Linkage Types 190------------- 191 192All Global Variables and Functions have one of the following types of 193linkage: 194 195``private`` 196 Global values with "``private``" linkage are only directly 197 accessible by objects in the current module. In particular, linking 198 code into a module with an private global value may cause the 199 private to be renamed as necessary to avoid collisions. Because the 200 symbol is private to the module, all references can be updated. This 201 doesn't show up in any symbol table in the object file. 202``internal`` 203 Similar to private, but the value shows as a local symbol 204 (``STB_LOCAL`` in the case of ELF) in the object file. This 205 corresponds to the notion of the '``static``' keyword in C. 206``available_externally`` 207 Globals with "``available_externally``" linkage are never emitted into 208 the object file corresponding to the LLVM module. From the linker's 209 perspective, an ``available_externally`` global is equivalent to 210 an external declaration. They exist to allow inlining and other 211 optimizations to take place given knowledge of the definition of the 212 global, which is known to be somewhere outside the module. Globals 213 with ``available_externally`` linkage are allowed to be discarded at 214 will, and allow inlining and other optimizations. This linkage type is 215 only allowed on definitions, not declarations. 216``linkonce`` 217 Globals with "``linkonce``" linkage are merged with other globals of 218 the same name when linkage occurs. This can be used to implement 219 some forms of inline functions, templates, or other code which must 220 be generated in each translation unit that uses it, but where the 221 body may be overridden with a more definitive definition later. 222 Unreferenced ``linkonce`` globals are allowed to be discarded. Note 223 that ``linkonce`` linkage does not actually allow the optimizer to 224 inline the body of this function into callers because it doesn't 225 know if this definition of the function is the definitive definition 226 within the program or whether it will be overridden by a stronger 227 definition. To enable inlining and other optimizations, use 228 "``linkonce_odr``" linkage. 229``weak`` 230 "``weak``" linkage has the same merging semantics as ``linkonce`` 231 linkage, except that unreferenced globals with ``weak`` linkage may 232 not be discarded. This is used for globals that are declared "weak" 233 in C source code. 234``common`` 235 "``common``" linkage is most similar to "``weak``" linkage, but they 236 are used for tentative definitions in C, such as "``int X;``" at 237 global scope. Symbols with "``common``" linkage are merged in the 238 same way as ``weak symbols``, and they may not be deleted if 239 unreferenced. ``common`` symbols may not have an explicit section, 240 must have a zero initializer, and may not be marked 241 ':ref:`constant <globalvars>`'. Functions and aliases may not have 242 common linkage. 243 244.. _linkage_appending: 245 246``appending`` 247 "``appending``" linkage may only be applied to global variables of 248 pointer to array type. When two global variables with appending 249 linkage are linked together, the two global arrays are appended 250 together. This is the LLVM, typesafe, equivalent of having the 251 system linker append together "sections" with identical names when 252 .o files are linked. 253 254 Unfortunately this doesn't correspond to any feature in .o files, so it 255 can only be used for variables like ``llvm.global_ctors`` which llvm 256 interprets specially. 257 258``extern_weak`` 259 The semantics of this linkage follow the ELF object file model: the 260 symbol is weak until linked, if not linked, the symbol becomes null 261 instead of being an undefined reference. 262``linkonce_odr``, ``weak_odr`` 263 Some languages allow differing globals to be merged, such as two 264 functions with different semantics. Other languages, such as 265 ``C++``, ensure that only equivalent globals are ever merged (the 266 "one definition rule" --- "ODR"). Such languages can use the 267 ``linkonce_odr`` and ``weak_odr`` linkage types to indicate that the 268 global will only be merged with equivalent globals. These linkage 269 types are otherwise the same as their non-``odr`` versions. 270``external`` 271 If none of the above identifiers are used, the global is externally 272 visible, meaning that it participates in linkage and can be used to 273 resolve external symbol references. 274 275It is illegal for a function *declaration* to have any linkage type 276other than ``external`` or ``extern_weak``. 277 278.. _callingconv: 279 280Calling Conventions 281------------------- 282 283LLVM :ref:`functions <functionstructure>`, :ref:`calls <i_call>` and 284:ref:`invokes <i_invoke>` can all have an optional calling convention 285specified for the call. The calling convention of any pair of dynamic 286caller/callee must match, or the behavior of the program is undefined. 287The following calling conventions are supported by LLVM, and more may be 288added in the future: 289 290"``ccc``" - The C calling convention 291 This calling convention (the default if no other calling convention 292 is specified) matches the target C calling conventions. This calling 293 convention supports varargs function calls and tolerates some 294 mismatch in the declared prototype and implemented declaration of 295 the function (as does normal C). 296"``fastcc``" - The fast calling convention 297 This calling convention attempts to make calls as fast as possible 298 (e.g. by passing things in registers). This calling convention 299 allows the target to use whatever tricks it wants to produce fast 300 code for the target, without having to conform to an externally 301 specified ABI (Application Binary Interface). `Tail calls can only 302 be optimized when this, the GHC or the HiPE convention is 303 used. <CodeGenerator.html#id80>`_ This calling convention does not 304 support varargs and requires the prototype of all callees to exactly 305 match the prototype of the function definition. 306"``coldcc``" - The cold calling convention 307 This calling convention attempts to make code in the caller as 308 efficient as possible under the assumption that the call is not 309 commonly executed. As such, these calls often preserve all registers 310 so that the call does not break any live ranges in the caller side. 311 This calling convention does not support varargs and requires the 312 prototype of all callees to exactly match the prototype of the 313 function definition. Furthermore the inliner doesn't consider such function 314 calls for inlining. 315"``cc 10``" - GHC convention 316 This calling convention has been implemented specifically for use by 317 the `Glasgow Haskell Compiler (GHC) <http://www.haskell.org/ghc>`_. 318 It passes everything in registers, going to extremes to achieve this 319 by disabling callee save registers. This calling convention should 320 not be used lightly but only for specific situations such as an 321 alternative to the *register pinning* performance technique often 322 used when implementing functional programming languages. At the 323 moment only X86 supports this convention and it has the following 324 limitations: 325 326 - On *X86-32* only supports up to 4 bit type parameters. No 327 floating point types are supported. 328 - On *X86-64* only supports up to 10 bit type parameters and 6 329 floating point parameters. 330 331 This calling convention supports `tail call 332 optimization <CodeGenerator.html#id80>`_ but requires both the 333 caller and callee are using it. 334"``cc 11``" - The HiPE calling convention 335 This calling convention has been implemented specifically for use by 336 the `High-Performance Erlang 337 (HiPE) <http://www.it.uu.se/research/group/hipe/>`_ compiler, *the* 338 native code compiler of the `Ericsson's Open Source Erlang/OTP 339 system <http://www.erlang.org/download.shtml>`_. It uses more 340 registers for argument passing than the ordinary C calling 341 convention and defines no callee-saved registers. The calling 342 convention properly supports `tail call 343 optimization <CodeGenerator.html#id80>`_ but requires that both the 344 caller and the callee use it. It uses a *register pinning* 345 mechanism, similar to GHC's convention, for keeping frequently 346 accessed runtime components pinned to specific hardware registers. 347 At the moment only X86 supports this convention (both 32 and 64 348 bit). 349"``webkit_jscc``" - WebKit's JavaScript calling convention 350 This calling convention has been implemented for `WebKit FTL JIT 351 <https://trac.webkit.org/wiki/FTLJIT>`_. It passes arguments on the 352 stack right to left (as cdecl does), and returns a value in the 353 platform's customary return register. 354"``anyregcc``" - Dynamic calling convention for code patching 355 This is a special convention that supports patching an arbitrary code 356 sequence in place of a call site. This convention forces the call 357 arguments into registers but allows them to be dynamically 358 allocated. This can currently only be used with calls to 359 llvm.experimental.patchpoint because only this intrinsic records 360 the location of its arguments in a side table. See :doc:`StackMaps`. 361"``preserve_mostcc``" - The `PreserveMost` calling convention 362 This calling convention attempts to make the code in the caller as 363 unintrusive as possible. This convention behaves identically to the `C` 364 calling convention on how arguments and return values are passed, but it 365 uses a different set of caller/callee-saved registers. This alleviates the 366 burden of saving and recovering a large register set before and after the 367 call in the caller. If the arguments are passed in callee-saved registers, 368 then they will be preserved by the callee across the call. This doesn't 369 apply for values returned in callee-saved registers. 370 371 - On X86-64 the callee preserves all general purpose registers, except for 372 R11. R11 can be used as a scratch register. Floating-point registers 373 (XMMs/YMMs) are not preserved and need to be saved by the caller. 374 375 The idea behind this convention is to support calls to runtime functions 376 that have a hot path and a cold path. The hot path is usually a small piece 377 of code that doesn't use many registers. The cold path might need to call out to 378 another function and therefore only needs to preserve the caller-saved 379 registers, which haven't already been saved by the caller. The 380 `PreserveMost` calling convention is very similar to the `cold` calling 381 convention in terms of caller/callee-saved registers, but they are used for 382 different types of function calls. `coldcc` is for function calls that are 383 rarely executed, whereas `preserve_mostcc` function calls are intended to be 384 on the hot path and definitely executed a lot. Furthermore `preserve_mostcc` 385 doesn't prevent the inliner from inlining the function call. 386 387 This calling convention will be used by a future version of the ObjectiveC 388 runtime and should therefore still be considered experimental at this time. 389 Although this convention was created to optimize certain runtime calls to 390 the ObjectiveC runtime, it is not limited to this runtime and might be used 391 by other runtimes in the future too. The current implementation only 392 supports X86-64, but the intention is to support more architectures in the 393 future. 394"``preserve_allcc``" - The `PreserveAll` calling convention 395 This calling convention attempts to make the code in the caller even less 396 intrusive than the `PreserveMost` calling convention. This calling 397 convention also behaves identical to the `C` calling convention on how 398 arguments and return values are passed, but it uses a different set of 399 caller/callee-saved registers. This removes the burden of saving and 400 recovering a large register set before and after the call in the caller. If 401 the arguments are passed in callee-saved registers, then they will be 402 preserved by the callee across the call. This doesn't apply for values 403 returned in callee-saved registers. 404 405 - On X86-64 the callee preserves all general purpose registers, except for 406 R11. R11 can be used as a scratch register. Furthermore it also preserves 407 all floating-point registers (XMMs/YMMs). 408 409 The idea behind this convention is to support calls to runtime functions 410 that don't need to call out to any other functions. 411 412 This calling convention, like the `PreserveMost` calling convention, will be 413 used by a future version of the ObjectiveC runtime and should be considered 414 experimental at this time. 415"``cxx_fast_tlscc``" - The `CXX_FAST_TLS` calling convention for access functions 416 Clang generates an access function to access C++-style TLS. The access 417 function generally has an entry block, an exit block and an initialization 418 block that is run at the first time. The entry and exit blocks can access 419 a few TLS IR variables, each access will be lowered to a platform-specific 420 sequence. 421 422 This calling convention aims to minimize overhead in the caller by 423 preserving as many registers as possible (all the registers that are 424 perserved on the fast path, composed of the entry and exit blocks). 425 426 This calling convention behaves identical to the `C` calling convention on 427 how arguments and return values are passed, but it uses a different set of 428 caller/callee-saved registers. 429 430 Given that each platform has its own lowering sequence, hence its own set 431 of preserved registers, we can't use the existing `PreserveMost`. 432 433 - On X86-64 the callee preserves all general purpose registers, except for 434 RDI and RAX. 435"``swiftcc``" - This calling convention is used for Swift language. 436 - On X86-64 RCX and R8 are available for additional integer returns, and 437 XMM2 and XMM3 are available for additional FP/vector returns. 438 - On iOS platforms, we use AAPCS-VFP calling convention. 439"``cc <n>``" - Numbered convention 440 Any calling convention may be specified by number, allowing 441 target-specific calling conventions to be used. Target specific 442 calling conventions start at 64. 443 444More calling conventions can be added/defined on an as-needed basis, to 445support Pascal conventions or any other well-known target-independent 446convention. 447 448.. _visibilitystyles: 449 450Visibility Styles 451----------------- 452 453All Global Variables and Functions have one of the following visibility 454styles: 455 456"``default``" - Default style 457 On targets that use the ELF object file format, default visibility 458 means that the declaration is visible to other modules and, in 459 shared libraries, means that the declared entity may be overridden. 460 On Darwin, default visibility means that the declaration is visible 461 to other modules. Default visibility corresponds to "external 462 linkage" in the language. 463"``hidden``" - Hidden style 464 Two declarations of an object with hidden visibility refer to the 465 same object if they are in the same shared object. Usually, hidden 466 visibility indicates that the symbol will not be placed into the 467 dynamic symbol table, so no other module (executable or shared 468 library) can reference it directly. 469"``protected``" - Protected style 470 On ELF, protected visibility indicates that the symbol will be 471 placed in the dynamic symbol table, but that references within the 472 defining module will bind to the local symbol. That is, the symbol 473 cannot be overridden by another module. 474 475A symbol with ``internal`` or ``private`` linkage must have ``default`` 476visibility. 477 478.. _dllstorageclass: 479 480DLL Storage Classes 481------------------- 482 483All Global Variables, Functions and Aliases can have one of the following 484DLL storage class: 485 486``dllimport`` 487 "``dllimport``" causes the compiler to reference a function or variable via 488 a global pointer to a pointer that is set up by the DLL exporting the 489 symbol. On Microsoft Windows targets, the pointer name is formed by 490 combining ``__imp_`` and the function or variable name. 491``dllexport`` 492 "``dllexport``" causes the compiler to provide a global pointer to a pointer 493 in a DLL, so that it can be referenced with the ``dllimport`` attribute. On 494 Microsoft Windows targets, the pointer name is formed by combining 495 ``__imp_`` and the function or variable name. Since this storage class 496 exists for defining a dll interface, the compiler, assembler and linker know 497 it is externally referenced and must refrain from deleting the symbol. 498 499.. _tls_model: 500 501Thread Local Storage Models 502--------------------------- 503 504A variable may be defined as ``thread_local``, which means that it will 505not be shared by threads (each thread will have a separated copy of the 506variable). Not all targets support thread-local variables. Optionally, a 507TLS model may be specified: 508 509``localdynamic`` 510 For variables that are only used within the current shared library. 511``initialexec`` 512 For variables in modules that will not be loaded dynamically. 513``localexec`` 514 For variables defined in the executable and only used within it. 515 516If no explicit model is given, the "general dynamic" model is used. 517 518The models correspond to the ELF TLS models; see `ELF Handling For 519Thread-Local Storage <http://people.redhat.com/drepper/tls.pdf>`_ for 520more information on under which circumstances the different models may 521be used. The target may choose a different TLS model if the specified 522model is not supported, or if a better choice of model can be made. 523 524A model can also be specified in an alias, but then it only governs how 525the alias is accessed. It will not have any effect in the aliasee. 526 527For platforms without linker support of ELF TLS model, the -femulated-tls 528flag can be used to generate GCC compatible emulated TLS code. 529 530.. _namedtypes: 531 532Structure Types 533--------------- 534 535LLVM IR allows you to specify both "identified" and "literal" :ref:`structure 536types <t_struct>`. Literal types are uniqued structurally, but identified types 537are never uniqued. An :ref:`opaque structural type <t_opaque>` can also be used 538to forward declare a type that is not yet available. 539 540An example of an identified structure specification is: 541 542.. code-block:: llvm 543 544 %mytype = type { %mytype*, i32 } 545 546Prior to the LLVM 3.0 release, identified types were structurally uniqued. Only 547literal types are uniqued in recent versions of LLVM. 548 549.. _nointptrtype: 550 551Non-Integral Pointer Type 552------------------------- 553 554Note: non-integral pointer types are a work in progress, and they should be 555considered experimental at this time. 556 557LLVM IR optionally allows the frontend to denote pointers in certain address 558spaces as "non-integral" via the :ref:`datalayout string<langref_datalayout>`. 559Non-integral pointer types represent pointers that have an *unspecified* bitwise 560representation; that is, the integral representation may be target dependent or 561unstable (not backed by a fixed integer). 562 563``inttoptr`` instructions converting integers to non-integral pointer types are 564ill-typed, and so are ``ptrtoint`` instructions converting values of 565non-integral pointer types to integers. Vector versions of said instructions 566are ill-typed as well. 567 568.. _globalvars: 569 570Global Variables 571---------------- 572 573Global variables define regions of memory allocated at compilation time 574instead of run-time. 575 576Global variable definitions must be initialized. 577 578Global variables in other translation units can also be declared, in which 579case they don't have an initializer. 580 581Either global variable definitions or declarations may have an explicit section 582to be placed in and may have an optional explicit alignment specified. 583 584A variable may be defined as a global ``constant``, which indicates that 585the contents of the variable will **never** be modified (enabling better 586optimization, allowing the global data to be placed in the read-only 587section of an executable, etc). Note that variables that need runtime 588initialization cannot be marked ``constant`` as there is a store to the 589variable. 590 591LLVM explicitly allows *declarations* of global variables to be marked 592constant, even if the final definition of the global is not. This 593capability can be used to enable slightly better optimization of the 594program, but requires the language definition to guarantee that 595optimizations based on the 'constantness' are valid for the translation 596units that do not include the definition. 597 598As SSA values, global variables define pointer values that are in scope 599(i.e. they dominate) all basic blocks in the program. Global variables 600always define a pointer to their "content" type because they describe a 601region of memory, and all memory objects in LLVM are accessed through 602pointers. 603 604Global variables can be marked with ``unnamed_addr`` which indicates 605that the address is not significant, only the content. Constants marked 606like this can be merged with other constants if they have the same 607initializer. Note that a constant with significant address *can* be 608merged with a ``unnamed_addr`` constant, the result being a constant 609whose address is significant. 610 611If the ``local_unnamed_addr`` attribute is given, the address is known to 612not be significant within the module. 613 614A global variable may be declared to reside in a target-specific 615numbered address space. For targets that support them, address spaces 616may affect how optimizations are performed and/or what target 617instructions are used to access the variable. The default address space 618is zero. The address space qualifier must precede any other attributes. 619 620LLVM allows an explicit section to be specified for globals. If the 621target supports it, it will emit globals to the section specified. 622Additionally, the global can placed in a comdat if the target has the necessary 623support. 624 625By default, global initializers are optimized by assuming that global 626variables defined within the module are not modified from their 627initial values before the start of the global initializer. This is 628true even for variables potentially accessible from outside the 629module, including those with external linkage or appearing in 630``@llvm.used`` or dllexported variables. This assumption may be suppressed 631by marking the variable with ``externally_initialized``. 632 633An explicit alignment may be specified for a global, which must be a 634power of 2. If not present, or if the alignment is set to zero, the 635alignment of the global is set by the target to whatever it feels 636convenient. If an explicit alignment is specified, the global is forced 637to have exactly that alignment. Targets and optimizers are not allowed 638to over-align the global if the global has an assigned section. In this 639case, the extra alignment could be observable: for example, code could 640assume that the globals are densely packed in their section and try to 641iterate over them as an array, alignment padding would break this 642iteration. The maximum alignment is ``1 << 29``. 643 644Globals can also have a :ref:`DLL storage class <dllstorageclass>` and 645an optional list of attached :ref:`metadata <metadata>`, 646 647Variables and aliases can have a 648:ref:`Thread Local Storage Model <tls_model>`. 649 650Syntax:: 651 652 @<GlobalVarName> = [Linkage] [Visibility] [DLLStorageClass] [ThreadLocal] 653 [(unnamed_addr|local_unnamed_addr)] [AddrSpace] 654 [ExternallyInitialized] 655 <global | constant> <Type> [<InitializerConstant>] 656 [, section "name"] [, comdat [($name)]] 657 [, align <Alignment>] (, !name !N)* 658 659For example, the following defines a global in a numbered address space 660with an initializer, section, and alignment: 661 662.. code-block:: llvm 663 664 @G = addrspace(5) constant float 1.0, section "foo", align 4 665 666The following example just declares a global variable 667 668.. code-block:: llvm 669 670 @G = external global i32 671 672The following example defines a thread-local global with the 673``initialexec`` TLS model: 674 675.. code-block:: llvm 676 677 @G = thread_local(initialexec) global i32 0, align 4 678 679.. _functionstructure: 680 681Functions 682--------- 683 684LLVM function definitions consist of the "``define``" keyword, an 685optional :ref:`linkage type <linkage>`, an optional :ref:`visibility 686style <visibility>`, an optional :ref:`DLL storage class <dllstorageclass>`, 687an optional :ref:`calling convention <callingconv>`, 688an optional ``unnamed_addr`` attribute, a return type, an optional 689:ref:`parameter attribute <paramattrs>` for the return type, a function 690name, a (possibly empty) argument list (each with optional :ref:`parameter 691attributes <paramattrs>`), optional :ref:`function attributes <fnattrs>`, 692an optional section, an optional alignment, 693an optional :ref:`comdat <langref_comdats>`, 694an optional :ref:`garbage collector name <gc>`, an optional :ref:`prefix <prefixdata>`, 695an optional :ref:`prologue <prologuedata>`, 696an optional :ref:`personality <personalityfn>`, 697an optional list of attached :ref:`metadata <metadata>`, 698an opening curly brace, a list of basic blocks, and a closing curly brace. 699 700LLVM function declarations consist of the "``declare``" keyword, an 701optional :ref:`linkage type <linkage>`, an optional :ref:`visibility style 702<visibility>`, an optional :ref:`DLL storage class <dllstorageclass>`, an 703optional :ref:`calling convention <callingconv>`, an optional ``unnamed_addr`` 704or ``local_unnamed_addr`` attribute, a return type, an optional :ref:`parameter 705attribute <paramattrs>` for the return type, a function name, a possibly 706empty list of arguments, an optional alignment, an optional :ref:`garbage 707collector name <gc>`, an optional :ref:`prefix <prefixdata>`, and an optional 708:ref:`prologue <prologuedata>`. 709 710A function definition contains a list of basic blocks, forming the CFG (Control 711Flow Graph) for the function. Each basic block may optionally start with a label 712(giving the basic block a symbol table entry), contains a list of instructions, 713and ends with a :ref:`terminator <terminators>` instruction (such as a branch or 714function return). If an explicit label is not provided, a block is assigned an 715implicit numbered label, using the next value from the same counter as used for 716unnamed temporaries (:ref:`see above<identifiers>`). For example, if a function 717entry block does not have an explicit label, it will be assigned label "%0", 718then the first unnamed temporary in that block will be "%1", etc. 719 720The first basic block in a function is special in two ways: it is 721immediately executed on entrance to the function, and it is not allowed 722to have predecessor basic blocks (i.e. there can not be any branches to 723the entry block of a function). Because the block can have no 724predecessors, it also cannot have any :ref:`PHI nodes <i_phi>`. 725 726LLVM allows an explicit section to be specified for functions. If the 727target supports it, it will emit functions to the section specified. 728Additionally, the function can be placed in a COMDAT. 729 730An explicit alignment may be specified for a function. If not present, 731or if the alignment is set to zero, the alignment of the function is set 732by the target to whatever it feels convenient. If an explicit alignment 733is specified, the function is forced to have at least that much 734alignment. All alignments must be a power of 2. 735 736If the ``unnamed_addr`` attribute is given, the address is known to not 737be significant and two identical functions can be merged. 738 739If the ``local_unnamed_addr`` attribute is given, the address is known to 740not be significant within the module. 741 742Syntax:: 743 744 define [linkage] [visibility] [DLLStorageClass] 745 [cconv] [ret attrs] 746 <ResultType> @<FunctionName> ([argument list]) 747 [(unnamed_addr|local_unnamed_addr)] [fn Attrs] [section "name"] 748 [comdat [($name)]] [align N] [gc] [prefix Constant] 749 [prologue Constant] [personality Constant] (!name !N)* { ... } 750 751The argument list is a comma separated sequence of arguments where each 752argument is of the following form: 753 754Syntax:: 755 756 <type> [parameter Attrs] [name] 757 758 759.. _langref_aliases: 760 761Aliases 762------- 763 764Aliases, unlike function or variables, don't create any new data. They 765are just a new symbol and metadata for an existing position. 766 767Aliases have a name and an aliasee that is either a global value or a 768constant expression. 769 770Aliases may have an optional :ref:`linkage type <linkage>`, an optional 771:ref:`visibility style <visibility>`, an optional :ref:`DLL storage class 772<dllstorageclass>` and an optional :ref:`tls model <tls_model>`. 773 774Syntax:: 775 776 @<Name> = [Linkage] [Visibility] [DLLStorageClass] [ThreadLocal] [(unnamed_addr|local_unnamed_addr)] alias <AliaseeTy>, <AliaseeTy>* @<Aliasee> 777 778The linkage must be one of ``private``, ``internal``, ``linkonce``, ``weak``, 779``linkonce_odr``, ``weak_odr``, ``external``. Note that some system linkers 780might not correctly handle dropping a weak symbol that is aliased. 781 782Aliases that are not ``unnamed_addr`` are guaranteed to have the same address as 783the aliasee expression. ``unnamed_addr`` ones are only guaranteed to point 784to the same content. 785 786If the ``local_unnamed_addr`` attribute is given, the address is known to 787not be significant within the module. 788 789Since aliases are only a second name, some restrictions apply, of which 790some can only be checked when producing an object file: 791 792* The expression defining the aliasee must be computable at assembly 793 time. Since it is just a name, no relocations can be used. 794 795* No alias in the expression can be weak as the possibility of the 796 intermediate alias being overridden cannot be represented in an 797 object file. 798 799* No global value in the expression can be a declaration, since that 800 would require a relocation, which is not possible. 801 802.. _langref_ifunc: 803 804IFuncs 805------- 806 807IFuncs, like as aliases, don't create any new data or func. They are just a new 808symbol that dynamic linker resolves at runtime by calling a resolver function. 809 810IFuncs have a name and a resolver that is a function called by dynamic linker 811that returns address of another function associated with the name. 812 813IFunc may have an optional :ref:`linkage type <linkage>` and an optional 814:ref:`visibility style <visibility>`. 815 816Syntax:: 817 818 @<Name> = [Linkage] [Visibility] ifunc <IFuncTy>, <ResolverTy>* @<Resolver> 819 820 821.. _langref_comdats: 822 823Comdats 824------- 825 826Comdat IR provides access to COFF and ELF object file COMDAT functionality. 827 828Comdats have a name which represents the COMDAT key. All global objects that 829specify this key will only end up in the final object file if the linker chooses 830that key over some other key. Aliases are placed in the same COMDAT that their 831aliasee computes to, if any. 832 833Comdats have a selection kind to provide input on how the linker should 834choose between keys in two different object files. 835 836Syntax:: 837 838 $<Name> = comdat SelectionKind 839 840The selection kind must be one of the following: 841 842``any`` 843 The linker may choose any COMDAT key, the choice is arbitrary. 844``exactmatch`` 845 The linker may choose any COMDAT key but the sections must contain the 846 same data. 847``largest`` 848 The linker will choose the section containing the largest COMDAT key. 849``noduplicates`` 850 The linker requires that only section with this COMDAT key exist. 851``samesize`` 852 The linker may choose any COMDAT key but the sections must contain the 853 same amount of data. 854 855Note that the Mach-O platform doesn't support COMDATs and ELF only supports 856``any`` as a selection kind. 857 858Here is an example of a COMDAT group where a function will only be selected if 859the COMDAT key's section is the largest: 860 861.. code-block:: text 862 863 $foo = comdat largest 864 @foo = global i32 2, comdat($foo) 865 866 define void @bar() comdat($foo) { 867 ret void 868 } 869 870As a syntactic sugar the ``$name`` can be omitted if the name is the same as 871the global name: 872 873.. code-block:: text 874 875 $foo = comdat any 876 @foo = global i32 2, comdat 877 878 879In a COFF object file, this will create a COMDAT section with selection kind 880``IMAGE_COMDAT_SELECT_LARGEST`` containing the contents of the ``@foo`` symbol 881and another COMDAT section with selection kind 882``IMAGE_COMDAT_SELECT_ASSOCIATIVE`` which is associated with the first COMDAT 883section and contains the contents of the ``@bar`` symbol. 884 885There are some restrictions on the properties of the global object. 886It, or an alias to it, must have the same name as the COMDAT group when 887targeting COFF. 888The contents and size of this object may be used during link-time to determine 889which COMDAT groups get selected depending on the selection kind. 890Because the name of the object must match the name of the COMDAT group, the 891linkage of the global object must not be local; local symbols can get renamed 892if a collision occurs in the symbol table. 893 894The combined use of COMDATS and section attributes may yield surprising results. 895For example: 896 897.. code-block:: text 898 899 $foo = comdat any 900 $bar = comdat any 901 @g1 = global i32 42, section "sec", comdat($foo) 902 @g2 = global i32 42, section "sec", comdat($bar) 903 904From the object file perspective, this requires the creation of two sections 905with the same name. This is necessary because both globals belong to different 906COMDAT groups and COMDATs, at the object file level, are represented by 907sections. 908 909Note that certain IR constructs like global variables and functions may 910create COMDATs in the object file in addition to any which are specified using 911COMDAT IR. This arises when the code generator is configured to emit globals 912in individual sections (e.g. when `-data-sections` or `-function-sections` 913is supplied to `llc`). 914 915.. _namedmetadatastructure: 916 917Named Metadata 918-------------- 919 920Named metadata is a collection of metadata. :ref:`Metadata 921nodes <metadata>` (but not metadata strings) are the only valid 922operands for a named metadata. 923 924#. Named metadata are represented as a string of characters with the 925 metadata prefix. The rules for metadata names are the same as for 926 identifiers, but quoted names are not allowed. ``"\xx"`` type escapes 927 are still valid, which allows any character to be part of a name. 928 929Syntax:: 930 931 ; Some unnamed metadata nodes, which are referenced by the named metadata. 932 !0 = !{!"zero"} 933 !1 = !{!"one"} 934 !2 = !{!"two"} 935 ; A named metadata. 936 !name = !{!0, !1, !2} 937 938.. _paramattrs: 939 940Parameter Attributes 941-------------------- 942 943The return type and each parameter of a function type may have a set of 944*parameter attributes* associated with them. Parameter attributes are 945used to communicate additional information about the result or 946parameters of a function. Parameter attributes are considered to be part 947of the function, not of the function type, so functions with different 948parameter attributes can have the same function type. 949 950Parameter attributes are simple keywords that follow the type specified. 951If multiple parameter attributes are needed, they are space separated. 952For example: 953 954.. code-block:: llvm 955 956 declare i32 @printf(i8* noalias nocapture, ...) 957 declare i32 @atoi(i8 zeroext) 958 declare signext i8 @returns_signed_char() 959 960Note that any attributes for the function result (``nounwind``, 961``readonly``) come immediately after the argument list. 962 963Currently, only the following parameter attributes are defined: 964 965``zeroext`` 966 This indicates to the code generator that the parameter or return 967 value should be zero-extended to the extent required by the target's 968 ABI by the caller (for a parameter) or the callee (for a return value). 969``signext`` 970 This indicates to the code generator that the parameter or return 971 value should be sign-extended to the extent required by the target's 972 ABI (which is usually 32-bits) by the caller (for a parameter) or 973 the callee (for a return value). 974``inreg`` 975 This indicates that this parameter or return value should be treated 976 in a special target-dependent fashion while emitting code for 977 a function call or return (usually, by putting it in a register as 978 opposed to memory, though some targets use it to distinguish between 979 two different kinds of registers). Use of this attribute is 980 target-specific. 981``byval`` 982 This indicates that the pointer parameter should really be passed by 983 value to the function. The attribute implies that a hidden copy of 984 the pointee is made between the caller and the callee, so the callee 985 is unable to modify the value in the caller. This attribute is only 986 valid on LLVM pointer arguments. It is generally used to pass 987 structs and arrays by value, but is also valid on pointers to 988 scalars. The copy is considered to belong to the caller not the 989 callee (for example, ``readonly`` functions should not write to 990 ``byval`` parameters). This is not a valid attribute for return 991 values. 992 993 The byval attribute also supports specifying an alignment with the 994 align attribute. It indicates the alignment of the stack slot to 995 form and the known alignment of the pointer specified to the call 996 site. If the alignment is not specified, then the code generator 997 makes a target-specific assumption. 998 999.. _attr_inalloca: 1000 1001``inalloca`` 1002 1003 The ``inalloca`` argument attribute allows the caller to take the 1004 address of outgoing stack arguments. An ``inalloca`` argument must 1005 be a pointer to stack memory produced by an ``alloca`` instruction. 1006 The alloca, or argument allocation, must also be tagged with the 1007 inalloca keyword. Only the last argument may have the ``inalloca`` 1008 attribute, and that argument is guaranteed to be passed in memory. 1009 1010 An argument allocation may be used by a call at most once because 1011 the call may deallocate it. The ``inalloca`` attribute cannot be 1012 used in conjunction with other attributes that affect argument 1013 storage, like ``inreg``, ``nest``, ``sret``, or ``byval``. The 1014 ``inalloca`` attribute also disables LLVM's implicit lowering of 1015 large aggregate return values, which means that frontend authors 1016 must lower them with ``sret`` pointers. 1017 1018 When the call site is reached, the argument allocation must have 1019 been the most recent stack allocation that is still live, or the 1020 results are undefined. It is possible to allocate additional stack 1021 space after an argument allocation and before its call site, but it 1022 must be cleared off with :ref:`llvm.stackrestore 1023 <int_stackrestore>`. 1024 1025 See :doc:`InAlloca` for more information on how to use this 1026 attribute. 1027 1028``sret`` 1029 This indicates that the pointer parameter specifies the address of a 1030 structure that is the return value of the function in the source 1031 program. This pointer must be guaranteed by the caller to be valid: 1032 loads and stores to the structure may be assumed by the callee not 1033 to trap and to be properly aligned. This is not a valid attribute 1034 for return values. 1035 1036``align <n>`` 1037 This indicates that the pointer value may be assumed by the optimizer to 1038 have the specified alignment. 1039 1040 Note that this attribute has additional semantics when combined with the 1041 ``byval`` attribute. 1042 1043.. _noalias: 1044 1045``noalias`` 1046 This indicates that objects accessed via pointer values 1047 :ref:`based <pointeraliasing>` on the argument or return value are not also 1048 accessed, during the execution of the function, via pointer values not 1049 *based* on the argument or return value. The attribute on a return value 1050 also has additional semantics described below. The caller shares the 1051 responsibility with the callee for ensuring that these requirements are met. 1052 For further details, please see the discussion of the NoAlias response in 1053 :ref:`alias analysis <Must, May, or No>`. 1054 1055 Note that this definition of ``noalias`` is intentionally similar 1056 to the definition of ``restrict`` in C99 for function arguments. 1057 1058 For function return values, C99's ``restrict`` is not meaningful, 1059 while LLVM's ``noalias`` is. Furthermore, the semantics of the ``noalias`` 1060 attribute on return values are stronger than the semantics of the attribute 1061 when used on function arguments. On function return values, the ``noalias`` 1062 attribute indicates that the function acts like a system memory allocation 1063 function, returning a pointer to allocated storage disjoint from the 1064 storage for any other object accessible to the caller. 1065 1066``nocapture`` 1067 This indicates that the callee does not make any copies of the 1068 pointer that outlive the callee itself. This is not a valid 1069 attribute for return values. Addresses used in volatile operations 1070 are considered to be captured. 1071 1072.. _nest: 1073 1074``nest`` 1075 This indicates that the pointer parameter can be excised using the 1076 :ref:`trampoline intrinsics <int_trampoline>`. This is not a valid 1077 attribute for return values and can only be applied to one parameter. 1078 1079``returned`` 1080 This indicates that the function always returns the argument as its return 1081 value. This is a hint to the optimizer and code generator used when 1082 generating the caller, allowing value propagation, tail call optimization, 1083 and omission of register saves and restores in some cases; it is not 1084 checked or enforced when generating the callee. The parameter and the 1085 function return type must be valid operands for the 1086 :ref:`bitcast instruction <i_bitcast>`. This is not a valid attribute for 1087 return values and can only be applied to one parameter. 1088 1089``nonnull`` 1090 This indicates that the parameter or return pointer is not null. This 1091 attribute may only be applied to pointer typed parameters. This is not 1092 checked or enforced by LLVM, the caller must ensure that the pointer 1093 passed in is non-null, or the callee must ensure that the returned pointer 1094 is non-null. 1095 1096``dereferenceable(<n>)`` 1097 This indicates that the parameter or return pointer is dereferenceable. This 1098 attribute may only be applied to pointer typed parameters. A pointer that 1099 is dereferenceable can be loaded from speculatively without a risk of 1100 trapping. The number of bytes known to be dereferenceable must be provided 1101 in parentheses. It is legal for the number of bytes to be less than the 1102 size of the pointee type. The ``nonnull`` attribute does not imply 1103 dereferenceability (consider a pointer to one element past the end of an 1104 array), however ``dereferenceable(<n>)`` does imply ``nonnull`` in 1105 ``addrspace(0)`` (which is the default address space). 1106 1107``dereferenceable_or_null(<n>)`` 1108 This indicates that the parameter or return value isn't both 1109 non-null and non-dereferenceable (up to ``<n>`` bytes) at the same 1110 time. All non-null pointers tagged with 1111 ``dereferenceable_or_null(<n>)`` are ``dereferenceable(<n>)``. 1112 For address space 0 ``dereferenceable_or_null(<n>)`` implies that 1113 a pointer is exactly one of ``dereferenceable(<n>)`` or ``null``, 1114 and in other address spaces ``dereferenceable_or_null(<n>)`` 1115 implies that a pointer is at least one of ``dereferenceable(<n>)`` 1116 or ``null`` (i.e. it may be both ``null`` and 1117 ``dereferenceable(<n>)``). This attribute may only be applied to 1118 pointer typed parameters. 1119 1120``swiftself`` 1121 This indicates that the parameter is the self/context parameter. This is not 1122 a valid attribute for return values and can only be applied to one 1123 parameter. 1124 1125``swifterror`` 1126 This attribute is motivated to model and optimize Swift error handling. It 1127 can be applied to a parameter with pointer to pointer type or a 1128 pointer-sized alloca. At the call site, the actual argument that corresponds 1129 to a ``swifterror`` parameter has to come from a ``swifterror`` alloca or 1130 the ``swifterror`` parameter of the caller. A ``swifterror`` value (either 1131 the parameter or the alloca) can only be loaded and stored from, or used as 1132 a ``swifterror`` argument. This is not a valid attribute for return values 1133 and can only be applied to one parameter. 1134 1135 These constraints allow the calling convention to optimize access to 1136 ``swifterror`` variables by associating them with a specific register at 1137 call boundaries rather than placing them in memory. Since this does change 1138 the calling convention, a function which uses the ``swifterror`` attribute 1139 on a parameter is not ABI-compatible with one which does not. 1140 1141 These constraints also allow LLVM to assume that a ``swifterror`` argument 1142 does not alias any other memory visible within a function and that a 1143 ``swifterror`` alloca passed as an argument does not escape. 1144 1145.. _gc: 1146 1147Garbage Collector Strategy Names 1148-------------------------------- 1149 1150Each function may specify a garbage collector strategy name, which is simply a 1151string: 1152 1153.. code-block:: llvm 1154 1155 define void @f() gc "name" { ... } 1156 1157The supported values of *name* includes those :ref:`built in to LLVM 1158<builtin-gc-strategies>` and any provided by loaded plugins. Specifying a GC 1159strategy will cause the compiler to alter its output in order to support the 1160named garbage collection algorithm. Note that LLVM itself does not contain a 1161garbage collector, this functionality is restricted to generating machine code 1162which can interoperate with a collector provided externally. 1163 1164.. _prefixdata: 1165 1166Prefix Data 1167----------- 1168 1169Prefix data is data associated with a function which the code 1170generator will emit immediately before the function's entrypoint. 1171The purpose of this feature is to allow frontends to associate 1172language-specific runtime metadata with specific functions and make it 1173available through the function pointer while still allowing the 1174function pointer to be called. 1175 1176To access the data for a given function, a program may bitcast the 1177function pointer to a pointer to the constant's type and dereference 1178index -1. This implies that the IR symbol points just past the end of 1179the prefix data. For instance, take the example of a function annotated 1180with a single ``i32``, 1181 1182.. code-block:: llvm 1183 1184 define void @f() prefix i32 123 { ... } 1185 1186The prefix data can be referenced as, 1187 1188.. code-block:: llvm 1189 1190 %0 = bitcast void* () @f to i32* 1191 %a = getelementptr inbounds i32, i32* %0, i32 -1 1192 %b = load i32, i32* %a 1193 1194Prefix data is laid out as if it were an initializer for a global variable 1195of the prefix data's type. The function will be placed such that the 1196beginning of the prefix data is aligned. This means that if the size 1197of the prefix data is not a multiple of the alignment size, the 1198function's entrypoint will not be aligned. If alignment of the 1199function's entrypoint is desired, padding must be added to the prefix 1200data. 1201 1202A function may have prefix data but no body. This has similar semantics 1203to the ``available_externally`` linkage in that the data may be used by the 1204optimizers but will not be emitted in the object file. 1205 1206.. _prologuedata: 1207 1208Prologue Data 1209------------- 1210 1211The ``prologue`` attribute allows arbitrary code (encoded as bytes) to 1212be inserted prior to the function body. This can be used for enabling 1213function hot-patching and instrumentation. 1214 1215To maintain the semantics of ordinary function calls, the prologue data must 1216have a particular format. Specifically, it must begin with a sequence of 1217bytes which decode to a sequence of machine instructions, valid for the 1218module's target, which transfer control to the point immediately succeeding 1219the prologue data, without performing any other visible action. This allows 1220the inliner and other passes to reason about the semantics of the function 1221definition without needing to reason about the prologue data. Obviously this 1222makes the format of the prologue data highly target dependent. 1223 1224A trivial example of valid prologue data for the x86 architecture is ``i8 144``, 1225which encodes the ``nop`` instruction: 1226 1227.. code-block:: text 1228 1229 define void @f() prologue i8 144 { ... } 1230 1231Generally prologue data can be formed by encoding a relative branch instruction 1232which skips the metadata, as in this example of valid prologue data for the 1233x86_64 architecture, where the first two bytes encode ``jmp .+10``: 1234 1235.. code-block:: text 1236 1237 %0 = type <{ i8, i8, i8* }> 1238 1239 define void @f() prologue %0 <{ i8 235, i8 8, i8* @md}> { ... } 1240 1241A function may have prologue data but no body. This has similar semantics 1242to the ``available_externally`` linkage in that the data may be used by the 1243optimizers but will not be emitted in the object file. 1244 1245.. _personalityfn: 1246 1247Personality Function 1248-------------------- 1249 1250The ``personality`` attribute permits functions to specify what function 1251to use for exception handling. 1252 1253.. _attrgrp: 1254 1255Attribute Groups 1256---------------- 1257 1258Attribute groups are groups of attributes that are referenced by objects within 1259the IR. They are important for keeping ``.ll`` files readable, because a lot of 1260functions will use the same set of attributes. In the degenerative case of a 1261``.ll`` file that corresponds to a single ``.c`` file, the single attribute 1262group will capture the important command line flags used to build that file. 1263 1264An attribute group is a module-level object. To use an attribute group, an 1265object references the attribute group's ID (e.g. ``#37``). An object may refer 1266to more than one attribute group. In that situation, the attributes from the 1267different groups are merged. 1268 1269Here is an example of attribute groups for a function that should always be 1270inlined, has a stack alignment of 4, and which shouldn't use SSE instructions: 1271 1272.. code-block:: llvm 1273 1274 ; Target-independent attributes: 1275 attributes #0 = { alwaysinline alignstack=4 } 1276 1277 ; Target-dependent attributes: 1278 attributes #1 = { "no-sse" } 1279 1280 ; Function @f has attributes: alwaysinline, alignstack=4, and "no-sse". 1281 define void @f() #0 #1 { ... } 1282 1283.. _fnattrs: 1284 1285Function Attributes 1286------------------- 1287 1288Function attributes are set to communicate additional information about 1289a function. Function attributes are considered to be part of the 1290function, not of the function type, so functions with different function 1291attributes can have the same function type. 1292 1293Function attributes are simple keywords that follow the type specified. 1294If multiple attributes are needed, they are space separated. For 1295example: 1296 1297.. code-block:: llvm 1298 1299 define void @f() noinline { ... } 1300 define void @f() alwaysinline { ... } 1301 define void @f() alwaysinline optsize { ... } 1302 define void @f() optsize { ... } 1303 1304``alignstack(<n>)`` 1305 This attribute indicates that, when emitting the prologue and 1306 epilogue, the backend should forcibly align the stack pointer. 1307 Specify the desired alignment, which must be a power of two, in 1308 parentheses. 1309``allocsize(<EltSizeParam>[, <NumEltsParam>])`` 1310 This attribute indicates that the annotated function will always return at 1311 least a given number of bytes (or null). Its arguments are zero-indexed 1312 parameter numbers; if one argument is provided, then it's assumed that at 1313 least ``CallSite.Args[EltSizeParam]`` bytes will be available at the 1314 returned pointer. If two are provided, then it's assumed that 1315 ``CallSite.Args[EltSizeParam] * CallSite.Args[NumEltsParam]`` bytes are 1316 available. The referenced parameters must be integer types. No assumptions 1317 are made about the contents of the returned block of memory. 1318``alwaysinline`` 1319 This attribute indicates that the inliner should attempt to inline 1320 this function into callers whenever possible, ignoring any active 1321 inlining size threshold for this caller. 1322``builtin`` 1323 This indicates that the callee function at a call site should be 1324 recognized as a built-in function, even though the function's declaration 1325 uses the ``nobuiltin`` attribute. This is only valid at call sites for 1326 direct calls to functions that are declared with the ``nobuiltin`` 1327 attribute. 1328``cold`` 1329 This attribute indicates that this function is rarely called. When 1330 computing edge weights, basic blocks post-dominated by a cold 1331 function call are also considered to be cold; and, thus, given low 1332 weight. 1333``convergent`` 1334 In some parallel execution models, there exist operations that cannot be 1335 made control-dependent on any additional values. We call such operations 1336 ``convergent``, and mark them with this attribute. 1337 1338 The ``convergent`` attribute may appear on functions or call/invoke 1339 instructions. When it appears on a function, it indicates that calls to 1340 this function should not be made control-dependent on additional values. 1341 For example, the intrinsic ``llvm.nvvm.barrier0`` is ``convergent``, so 1342 calls to this intrinsic cannot be made control-dependent on additional 1343 values. 1344 1345 When it appears on a call/invoke, the ``convergent`` attribute indicates 1346 that we should treat the call as though we're calling a convergent 1347 function. This is particularly useful on indirect calls; without this we 1348 may treat such calls as though the target is non-convergent. 1349 1350 The optimizer may remove the ``convergent`` attribute on functions when it 1351 can prove that the function does not execute any convergent operations. 1352 Similarly, the optimizer may remove ``convergent`` on calls/invokes when it 1353 can prove that the call/invoke cannot call a convergent function. 1354``inaccessiblememonly`` 1355 This attribute indicates that the function may only access memory that 1356 is not accessible by the module being compiled. This is a weaker form 1357 of ``readnone``. 1358``inaccessiblemem_or_argmemonly`` 1359 This attribute indicates that the function may only access memory that is 1360 either not accessible by the module being compiled, or is pointed to 1361 by its pointer arguments. This is a weaker form of ``argmemonly`` 1362``inlinehint`` 1363 This attribute indicates that the source code contained a hint that 1364 inlining this function is desirable (such as the "inline" keyword in 1365 C/C++). It is just a hint; it imposes no requirements on the 1366 inliner. 1367``jumptable`` 1368 This attribute indicates that the function should be added to a 1369 jump-instruction table at code-generation time, and that all address-taken 1370 references to this function should be replaced with a reference to the 1371 appropriate jump-instruction-table function pointer. Note that this creates 1372 a new pointer for the original function, which means that code that depends 1373 on function-pointer identity can break. So, any function annotated with 1374 ``jumptable`` must also be ``unnamed_addr``. 1375``minsize`` 1376 This attribute suggests that optimization passes and code generator 1377 passes make choices that keep the code size of this function as small 1378 as possible and perform optimizations that may sacrifice runtime 1379 performance in order to minimize the size of the generated code. 1380``naked`` 1381 This attribute disables prologue / epilogue emission for the 1382 function. This can have very system-specific consequences. 1383``nobuiltin`` 1384 This indicates that the callee function at a call site is not recognized as 1385 a built-in function. LLVM will retain the original call and not replace it 1386 with equivalent code based on the semantics of the built-in function, unless 1387 the call site uses the ``builtin`` attribute. This is valid at call sites 1388 and on function declarations and definitions. 1389``noduplicate`` 1390 This attribute indicates that calls to the function cannot be 1391 duplicated. A call to a ``noduplicate`` function may be moved 1392 within its parent function, but may not be duplicated within 1393 its parent function. 1394 1395 A function containing a ``noduplicate`` call may still 1396 be an inlining candidate, provided that the call is not 1397 duplicated by inlining. That implies that the function has 1398 internal linkage and only has one call site, so the original 1399 call is dead after inlining. 1400``noimplicitfloat`` 1401 This attributes disables implicit floating point instructions. 1402``noinline`` 1403 This attribute indicates that the inliner should never inline this 1404 function in any situation. This attribute may not be used together 1405 with the ``alwaysinline`` attribute. 1406``nonlazybind`` 1407 This attribute suppresses lazy symbol binding for the function. This 1408 may make calls to the function faster, at the cost of extra program 1409 startup time if the function is not called during program startup. 1410``noredzone`` 1411 This attribute indicates that the code generator should not use a 1412 red zone, even if the target-specific ABI normally permits it. 1413``noreturn`` 1414 This function attribute indicates that the function never returns 1415 normally. This produces undefined behavior at runtime if the 1416 function ever does dynamically return. 1417``norecurse`` 1418 This function attribute indicates that the function does not call itself 1419 either directly or indirectly down any possible call path. This produces 1420 undefined behavior at runtime if the function ever does recurse. 1421``nounwind`` 1422 This function attribute indicates that the function never raises an 1423 exception. If the function does raise an exception, its runtime 1424 behavior is undefined. However, functions marked nounwind may still 1425 trap or generate asynchronous exceptions. Exception handling schemes 1426 that are recognized by LLVM to handle asynchronous exceptions, such 1427 as SEH, will still provide their implementation defined semantics. 1428``optnone`` 1429 This function attribute indicates that most optimization passes will skip 1430 this function, with the exception of interprocedural optimization passes. 1431 Code generation defaults to the "fast" instruction selector. 1432 This attribute cannot be used together with the ``alwaysinline`` 1433 attribute; this attribute is also incompatible 1434 with the ``minsize`` attribute and the ``optsize`` attribute. 1435 1436 This attribute requires the ``noinline`` attribute to be specified on 1437 the function as well, so the function is never inlined into any caller. 1438 Only functions with the ``alwaysinline`` attribute are valid 1439 candidates for inlining into the body of this function. 1440``optsize`` 1441 This attribute suggests that optimization passes and code generator 1442 passes make choices that keep the code size of this function low, 1443 and otherwise do optimizations specifically to reduce code size as 1444 long as they do not significantly impact runtime performance. 1445``"patchable-function"`` 1446 This attribute tells the code generator that the code 1447 generated for this function needs to follow certain conventions that 1448 make it possible for a runtime function to patch over it later. 1449 The exact effect of this attribute depends on its string value, 1450 for which there currently is one legal possibility: 1451 1452 * ``"prologue-short-redirect"`` - This style of patchable 1453 function is intended to support patching a function prologue to 1454 redirect control away from the function in a thread safe 1455 manner. It guarantees that the first instruction of the 1456 function will be large enough to accommodate a short jump 1457 instruction, and will be sufficiently aligned to allow being 1458 fully changed via an atomic compare-and-swap instruction. 1459 While the first requirement can be satisfied by inserting large 1460 enough NOP, LLVM can and will try to re-purpose an existing 1461 instruction (i.e. one that would have to be emitted anyway) as 1462 the patchable instruction larger than a short jump. 1463 1464 ``"prologue-short-redirect"`` is currently only supported on 1465 x86-64. 1466 1467 This attribute by itself does not imply restrictions on 1468 inter-procedural optimizations. All of the semantic effects the 1469 patching may have to be separately conveyed via the linkage type. 1470``readnone`` 1471 On a function, this attribute indicates that the function computes its 1472 result (or decides to unwind an exception) based strictly on its arguments, 1473 without dereferencing any pointer arguments or otherwise accessing 1474 any mutable state (e.g. memory, control registers, etc) visible to 1475 caller functions. It does not write through any pointer arguments 1476 (including ``byval`` arguments) and never changes any state visible 1477 to callers. This means that it cannot unwind exceptions by calling 1478 the ``C++`` exception throwing methods. 1479 1480 On an argument, this attribute indicates that the function does not 1481 dereference that pointer argument, even though it may read or write the 1482 memory that the pointer points to if accessed through other pointers. 1483``readonly`` 1484 On a function, this attribute indicates that the function does not write 1485 through any pointer arguments (including ``byval`` arguments) or otherwise 1486 modify any state (e.g. memory, control registers, etc) visible to 1487 caller functions. It may dereference pointer arguments and read 1488 state that may be set in the caller. A readonly function always 1489 returns the same value (or unwinds an exception identically) when 1490 called with the same set of arguments and global state. It cannot 1491 unwind an exception by calling the ``C++`` exception throwing 1492 methods. 1493 1494 On an argument, this attribute indicates that the function does not write 1495 through this pointer argument, even though it may write to the memory that 1496 the pointer points to. 1497``writeonly`` 1498 On a function, this attribute indicates that the function may write to but 1499 does not read from memory. 1500 1501 On an argument, this attribute indicates that the function may write to but 1502 does not read through this pointer argument (even though it may read from 1503 the memory that the pointer points to). 1504``argmemonly`` 1505 This attribute indicates that the only memory accesses inside function are 1506 loads and stores from objects pointed to by its pointer-typed arguments, 1507 with arbitrary offsets. Or in other words, all memory operations in the 1508 function can refer to memory only using pointers based on its function 1509 arguments. 1510 Note that ``argmemonly`` can be used together with ``readonly`` attribute 1511 in order to specify that function reads only from its arguments. 1512``returns_twice`` 1513 This attribute indicates that this function can return twice. The C 1514 ``setjmp`` is an example of such a function. The compiler disables 1515 some optimizations (like tail calls) in the caller of these 1516 functions. 1517``safestack`` 1518 This attribute indicates that 1519 `SafeStack <http://clang.llvm.org/docs/SafeStack.html>`_ 1520 protection is enabled for this function. 1521 1522 If a function that has a ``safestack`` attribute is inlined into a 1523 function that doesn't have a ``safestack`` attribute or which has an 1524 ``ssp``, ``sspstrong`` or ``sspreq`` attribute, then the resulting 1525 function will have a ``safestack`` attribute. 1526``sanitize_address`` 1527 This attribute indicates that AddressSanitizer checks 1528 (dynamic address safety analysis) are enabled for this function. 1529``sanitize_memory`` 1530 This attribute indicates that MemorySanitizer checks (dynamic detection 1531 of accesses to uninitialized memory) are enabled for this function. 1532``sanitize_thread`` 1533 This attribute indicates that ThreadSanitizer checks 1534 (dynamic thread safety analysis) are enabled for this function. 1535``ssp`` 1536 This attribute indicates that the function should emit a stack 1537 smashing protector. It is in the form of a "canary" --- a random value 1538 placed on the stack before the local variables that's checked upon 1539 return from the function to see if it has been overwritten. A 1540 heuristic is used to determine if a function needs stack protectors 1541 or not. The heuristic used will enable protectors for functions with: 1542 1543 - Character arrays larger than ``ssp-buffer-size`` (default 8). 1544 - Aggregates containing character arrays larger than ``ssp-buffer-size``. 1545 - Calls to alloca() with variable sizes or constant sizes greater than 1546 ``ssp-buffer-size``. 1547 1548 Variables that are identified as requiring a protector will be arranged 1549 on the stack such that they are adjacent to the stack protector guard. 1550 1551 If a function that has an ``ssp`` attribute is inlined into a 1552 function that doesn't have an ``ssp`` attribute, then the resulting 1553 function will have an ``ssp`` attribute. 1554``sspreq`` 1555 This attribute indicates that the function should *always* emit a 1556 stack smashing protector. This overrides the ``ssp`` function 1557 attribute. 1558 1559 Variables that are identified as requiring a protector will be arranged 1560 on the stack such that they are adjacent to the stack protector guard. 1561 The specific layout rules are: 1562 1563 #. Large arrays and structures containing large arrays 1564 (``>= ssp-buffer-size``) are closest to the stack protector. 1565 #. Small arrays and structures containing small arrays 1566 (``< ssp-buffer-size``) are 2nd closest to the protector. 1567 #. Variables that have had their address taken are 3rd closest to the 1568 protector. 1569 1570 If a function that has an ``sspreq`` attribute is inlined into a 1571 function that doesn't have an ``sspreq`` attribute or which has an 1572 ``ssp`` or ``sspstrong`` attribute, then the resulting function will have 1573 an ``sspreq`` attribute. 1574``sspstrong`` 1575 This attribute indicates that the function should emit a stack smashing 1576 protector. This attribute causes a strong heuristic to be used when 1577 determining if a function needs stack protectors. The strong heuristic 1578 will enable protectors for functions with: 1579 1580 - Arrays of any size and type 1581 - Aggregates containing an array of any size and type. 1582 - Calls to alloca(). 1583 - Local variables that have had their address taken. 1584 1585 Variables that are identified as requiring a protector will be arranged 1586 on the stack such that they are adjacent to the stack protector guard. 1587 The specific layout rules are: 1588 1589 #. Large arrays and structures containing large arrays 1590 (``>= ssp-buffer-size``) are closest to the stack protector. 1591 #. Small arrays and structures containing small arrays 1592 (``< ssp-buffer-size``) are 2nd closest to the protector. 1593 #. Variables that have had their address taken are 3rd closest to the 1594 protector. 1595 1596 This overrides the ``ssp`` function attribute. 1597 1598 If a function that has an ``sspstrong`` attribute is inlined into a 1599 function that doesn't have an ``sspstrong`` attribute, then the 1600 resulting function will have an ``sspstrong`` attribute. 1601``"thunk"`` 1602 This attribute indicates that the function will delegate to some other 1603 function with a tail call. The prototype of a thunk should not be used for 1604 optimization purposes. The caller is expected to cast the thunk prototype to 1605 match the thunk target prototype. 1606``uwtable`` 1607 This attribute indicates that the ABI being targeted requires that 1608 an unwind table entry be produced for this function even if we can 1609 show that no exceptions passes by it. This is normally the case for 1610 the ELF x86-64 abi, but it can be disabled for some compilation 1611 units. 1612 1613 1614.. _opbundles: 1615 1616Operand Bundles 1617--------------- 1618 1619Operand bundles are tagged sets of SSA values that can be associated 1620with certain LLVM instructions (currently only ``call`` s and 1621``invoke`` s). In a way they are like metadata, but dropping them is 1622incorrect and will change program semantics. 1623 1624Syntax:: 1625 1626 operand bundle set ::= '[' operand bundle (, operand bundle )* ']' 1627 operand bundle ::= tag '(' [ bundle operand ] (, bundle operand )* ')' 1628 bundle operand ::= SSA value 1629 tag ::= string constant 1630 1631Operand bundles are **not** part of a function's signature, and a 1632given function may be called from multiple places with different kinds 1633of operand bundles. This reflects the fact that the operand bundles 1634are conceptually a part of the ``call`` (or ``invoke``), not the 1635callee being dispatched to. 1636 1637Operand bundles are a generic mechanism intended to support 1638runtime-introspection-like functionality for managed languages. While 1639the exact semantics of an operand bundle depend on the bundle tag, 1640there are certain limitations to how much the presence of an operand 1641bundle can influence the semantics of a program. These restrictions 1642are described as the semantics of an "unknown" operand bundle. As 1643long as the behavior of an operand bundle is describable within these 1644restrictions, LLVM does not need to have special knowledge of the 1645operand bundle to not miscompile programs containing it. 1646 1647- The bundle operands for an unknown operand bundle escape in unknown 1648 ways before control is transferred to the callee or invokee. 1649- Calls and invokes with operand bundles have unknown read / write 1650 effect on the heap on entry and exit (even if the call target is 1651 ``readnone`` or ``readonly``), unless they're overridden with 1652 callsite specific attributes. 1653- An operand bundle at a call site cannot change the implementation 1654 of the called function. Inter-procedural optimizations work as 1655 usual as long as they take into account the first two properties. 1656 1657More specific types of operand bundles are described below. 1658 1659.. _deopt_opbundles: 1660 1661Deoptimization Operand Bundles 1662^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 1663 1664Deoptimization operand bundles are characterized by the ``"deopt"`` 1665operand bundle tag. These operand bundles represent an alternate 1666"safe" continuation for the call site they're attached to, and can be 1667used by a suitable runtime to deoptimize the compiled frame at the 1668specified call site. There can be at most one ``"deopt"`` operand 1669bundle attached to a call site. Exact details of deoptimization is 1670out of scope for the language reference, but it usually involves 1671rewriting a compiled frame into a set of interpreted frames. 1672 1673From the compiler's perspective, deoptimization operand bundles make 1674the call sites they're attached to at least ``readonly``. They read 1675through all of their pointer typed operands (even if they're not 1676otherwise escaped) and the entire visible heap. Deoptimization 1677operand bundles do not capture their operands except during 1678deoptimization, in which case control will not be returned to the 1679compiled frame. 1680 1681The inliner knows how to inline through calls that have deoptimization 1682operand bundles. Just like inlining through a normal call site 1683involves composing the normal and exceptional continuations, inlining 1684through a call site with a deoptimization operand bundle needs to 1685appropriately compose the "safe" deoptimization continuation. The 1686inliner does this by prepending the parent's deoptimization 1687continuation to every deoptimization continuation in the inlined body. 1688E.g. inlining ``@f`` into ``@g`` in the following example 1689 1690.. code-block:: llvm 1691 1692 define void @f() { 1693 call void @x() ;; no deopt state 1694 call void @y() [ "deopt"(i32 10) ] 1695 call void @y() [ "deopt"(i32 10), "unknown"(i8* null) ] 1696 ret void 1697 } 1698 1699 define void @g() { 1700 call void @f() [ "deopt"(i32 20) ] 1701 ret void 1702 } 1703 1704will result in 1705 1706.. code-block:: llvm 1707 1708 define void @g() { 1709 call void @x() ;; still no deopt state 1710 call void @y() [ "deopt"(i32 20, i32 10) ] 1711 call void @y() [ "deopt"(i32 20, i32 10), "unknown"(i8* null) ] 1712 ret void 1713 } 1714 1715It is the frontend's responsibility to structure or encode the 1716deoptimization state in a way that syntactically prepending the 1717caller's deoptimization state to the callee's deoptimization state is 1718semantically equivalent to composing the caller's deoptimization 1719continuation after the callee's deoptimization continuation. 1720 1721.. _ob_funclet: 1722 1723Funclet Operand Bundles 1724^^^^^^^^^^^^^^^^^^^^^^^ 1725 1726Funclet operand bundles are characterized by the ``"funclet"`` 1727operand bundle tag. These operand bundles indicate that a call site 1728is within a particular funclet. There can be at most one 1729``"funclet"`` operand bundle attached to a call site and it must have 1730exactly one bundle operand. 1731 1732If any funclet EH pads have been "entered" but not "exited" (per the 1733`description in the EH doc\ <ExceptionHandling.html#wineh-constraints>`_), 1734it is undefined behavior to execute a ``call`` or ``invoke`` which: 1735 1736* does not have a ``"funclet"`` bundle and is not a ``call`` to a nounwind 1737 intrinsic, or 1738* has a ``"funclet"`` bundle whose operand is not the most-recently-entered 1739 not-yet-exited funclet EH pad. 1740 1741Similarly, if no funclet EH pads have been entered-but-not-yet-exited, 1742executing a ``call`` or ``invoke`` with a ``"funclet"`` bundle is undefined behavior. 1743 1744GC Transition Operand Bundles 1745^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 1746 1747GC transition operand bundles are characterized by the 1748``"gc-transition"`` operand bundle tag. These operand bundles mark a 1749call as a transition between a function with one GC strategy to a 1750function with a different GC strategy. If coordinating the transition 1751between GC strategies requires additional code generation at the call 1752site, these bundles may contain any values that are needed by the 1753generated code. For more details, see :ref:`GC Transitions 1754<gc_transition_args>`. 1755 1756.. _moduleasm: 1757 1758Module-Level Inline Assembly 1759---------------------------- 1760 1761Modules may contain "module-level inline asm" blocks, which corresponds 1762to the GCC "file scope inline asm" blocks. These blocks are internally 1763concatenated by LLVM and treated as a single unit, but may be separated 1764in the ``.ll`` file if desired. The syntax is very simple: 1765 1766.. code-block:: llvm 1767 1768 module asm "inline asm code goes here" 1769 module asm "more can go here" 1770 1771The strings can contain any character by escaping non-printable 1772characters. The escape sequence used is simply "\\xx" where "xx" is the 1773two digit hex code for the number. 1774 1775Note that the assembly string *must* be parseable by LLVM's integrated assembler 1776(unless it is disabled), even when emitting a ``.s`` file. 1777 1778.. _langref_datalayout: 1779 1780Data Layout 1781----------- 1782 1783A module may specify a target specific data layout string that specifies 1784how data is to be laid out in memory. The syntax for the data layout is 1785simply: 1786 1787.. code-block:: llvm 1788 1789 target datalayout = "layout specification" 1790 1791The *layout specification* consists of a list of specifications 1792separated by the minus sign character ('-'). Each specification starts 1793with a letter and may include other information after the letter to 1794define some aspect of the data layout. The specifications accepted are 1795as follows: 1796 1797``E`` 1798 Specifies that the target lays out data in big-endian form. That is, 1799 the bits with the most significance have the lowest address 1800 location. 1801``e`` 1802 Specifies that the target lays out data in little-endian form. That 1803 is, the bits with the least significance have the lowest address 1804 location. 1805``S<size>`` 1806 Specifies the natural alignment of the stack in bits. Alignment 1807 promotion of stack variables is limited to the natural stack 1808 alignment to avoid dynamic stack realignment. The stack alignment 1809 must be a multiple of 8-bits. If omitted, the natural stack 1810 alignment defaults to "unspecified", which does not prevent any 1811 alignment promotions. 1812``p[n]:<size>:<abi>:<pref>`` 1813 This specifies the *size* of a pointer and its ``<abi>`` and 1814 ``<pref>``\erred alignments for address space ``n``. All sizes are in 1815 bits. The address space, ``n``, is optional, and if not specified, 1816 denotes the default address space 0. The value of ``n`` must be 1817 in the range [1,2^23). 1818``i<size>:<abi>:<pref>`` 1819 This specifies the alignment for an integer type of a given bit 1820 ``<size>``. The value of ``<size>`` must be in the range [1,2^23). 1821``v<size>:<abi>:<pref>`` 1822 This specifies the alignment for a vector type of a given bit 1823 ``<size>``. 1824``f<size>:<abi>:<pref>`` 1825 This specifies the alignment for a floating point type of a given bit 1826 ``<size>``. Only values of ``<size>`` that are supported by the target 1827 will work. 32 (float) and 64 (double) are supported on all targets; 80 1828 or 128 (different flavors of long double) are also supported on some 1829 targets. 1830``a:<abi>:<pref>`` 1831 This specifies the alignment for an object of aggregate type. 1832``m:<mangling>`` 1833 If present, specifies that llvm names are mangled in the output. The 1834 options are 1835 1836 * ``e``: ELF mangling: Private symbols get a ``.L`` prefix. 1837 * ``m``: Mips mangling: Private symbols get a ``$`` prefix. 1838 * ``o``: Mach-O mangling: Private symbols get ``L`` prefix. Other 1839 symbols get a ``_`` prefix. 1840 * ``w``: Windows COFF prefix: Similar to Mach-O, but stdcall and fastcall 1841 functions also get a suffix based on the frame size. 1842 * ``x``: Windows x86 COFF prefix: Similar to Windows COFF, but use a ``_`` 1843 prefix for ``__cdecl`` functions. 1844``n<size1>:<size2>:<size3>...`` 1845 This specifies a set of native integer widths for the target CPU in 1846 bits. For example, it might contain ``n32`` for 32-bit PowerPC, 1847 ``n32:64`` for PowerPC 64, or ``n8:16:32:64`` for X86-64. Elements of 1848 this set are considered to support most general arithmetic operations 1849 efficiently. 1850``ni:<address space0>:<address space1>:<address space2>...`` 1851 This specifies pointer types with the specified address spaces 1852 as :ref:`Non-Integral Pointer Type <nointptrtype>` s. The ``0`` 1853 address space cannot be specified as non-integral. 1854 1855On every specification that takes a ``<abi>:<pref>``, specifying the 1856``<pref>`` alignment is optional. If omitted, the preceding ``:`` 1857should be omitted too and ``<pref>`` will be equal to ``<abi>``. 1858 1859When constructing the data layout for a given target, LLVM starts with a 1860default set of specifications which are then (possibly) overridden by 1861the specifications in the ``datalayout`` keyword. The default 1862specifications are given in this list: 1863 1864- ``E`` - big endian 1865- ``p:64:64:64`` - 64-bit pointers with 64-bit alignment. 1866- ``p[n]:64:64:64`` - Other address spaces are assumed to be the 1867 same as the default address space. 1868- ``S0`` - natural stack alignment is unspecified 1869- ``i1:8:8`` - i1 is 8-bit (byte) aligned 1870- ``i8:8:8`` - i8 is 8-bit (byte) aligned 1871- ``i16:16:16`` - i16 is 16-bit aligned 1872- ``i32:32:32`` - i32 is 32-bit aligned 1873- ``i64:32:64`` - i64 has ABI alignment of 32-bits but preferred 1874 alignment of 64-bits 1875- ``f16:16:16`` - half is 16-bit aligned 1876- ``f32:32:32`` - float is 32-bit aligned 1877- ``f64:64:64`` - double is 64-bit aligned 1878- ``f128:128:128`` - quad is 128-bit aligned 1879- ``v64:64:64`` - 64-bit vector is 64-bit aligned 1880- ``v128:128:128`` - 128-bit vector is 128-bit aligned 1881- ``a:0:64`` - aggregates are 64-bit aligned 1882 1883When LLVM is determining the alignment for a given type, it uses the 1884following rules: 1885 1886#. If the type sought is an exact match for one of the specifications, 1887 that specification is used. 1888#. If no match is found, and the type sought is an integer type, then 1889 the smallest integer type that is larger than the bitwidth of the 1890 sought type is used. If none of the specifications are larger than 1891 the bitwidth then the largest integer type is used. For example, 1892 given the default specifications above, the i7 type will use the 1893 alignment of i8 (next largest) while both i65 and i256 will use the 1894 alignment of i64 (largest specified). 1895#. If no match is found, and the type sought is a vector type, then the 1896 largest vector type that is smaller than the sought vector type will 1897 be used as a fall back. This happens because <128 x double> can be 1898 implemented in terms of 64 <2 x double>, for example. 1899 1900The function of the data layout string may not be what you expect. 1901Notably, this is not a specification from the frontend of what alignment 1902the code generator should use. 1903 1904Instead, if specified, the target data layout is required to match what 1905the ultimate *code generator* expects. This string is used by the 1906mid-level optimizers to improve code, and this only works if it matches 1907what the ultimate code generator uses. There is no way to generate IR 1908that does not embed this target-specific detail into the IR. If you 1909don't specify the string, the default specifications will be used to 1910generate a Data Layout and the optimization phases will operate 1911accordingly and introduce target specificity into the IR with respect to 1912these default specifications. 1913 1914.. _langref_triple: 1915 1916Target Triple 1917------------- 1918 1919A module may specify a target triple string that describes the target 1920host. The syntax for the target triple is simply: 1921 1922.. code-block:: llvm 1923 1924 target triple = "x86_64-apple-macosx10.7.0" 1925 1926The *target triple* string consists of a series of identifiers delimited 1927by the minus sign character ('-'). The canonical forms are: 1928 1929:: 1930 1931 ARCHITECTURE-VENDOR-OPERATING_SYSTEM 1932 ARCHITECTURE-VENDOR-OPERATING_SYSTEM-ENVIRONMENT 1933 1934This information is passed along to the backend so that it generates 1935code for the proper architecture. It's possible to override this on the 1936command line with the ``-mtriple`` command line option. 1937 1938.. _pointeraliasing: 1939 1940Pointer Aliasing Rules 1941---------------------- 1942 1943Any memory access must be done through a pointer value associated with 1944an address range of the memory access, otherwise the behavior is 1945undefined. Pointer values are associated with address ranges according 1946to the following rules: 1947 1948- A pointer value is associated with the addresses associated with any 1949 value it is *based* on. 1950- An address of a global variable is associated with the address range 1951 of the variable's storage. 1952- The result value of an allocation instruction is associated with the 1953 address range of the allocated storage. 1954- A null pointer in the default address-space is associated with no 1955 address. 1956- An integer constant other than zero or a pointer value returned from 1957 a function not defined within LLVM may be associated with address 1958 ranges allocated through mechanisms other than those provided by 1959 LLVM. Such ranges shall not overlap with any ranges of addresses 1960 allocated by mechanisms provided by LLVM. 1961 1962A pointer value is *based* on another pointer value according to the 1963following rules: 1964 1965- A pointer value formed from a ``getelementptr`` operation is *based* 1966 on the first value operand of the ``getelementptr``. 1967- The result value of a ``bitcast`` is *based* on the operand of the 1968 ``bitcast``. 1969- A pointer value formed by an ``inttoptr`` is *based* on all pointer 1970 values that contribute (directly or indirectly) to the computation of 1971 the pointer's value. 1972- The "*based* on" relationship is transitive. 1973 1974Note that this definition of *"based"* is intentionally similar to the 1975definition of *"based"* in C99, though it is slightly weaker. 1976 1977LLVM IR does not associate types with memory. The result type of a 1978``load`` merely indicates the size and alignment of the memory from 1979which to load, as well as the interpretation of the value. The first 1980operand type of a ``store`` similarly only indicates the size and 1981alignment of the store. 1982 1983Consequently, type-based alias analysis, aka TBAA, aka 1984``-fstrict-aliasing``, is not applicable to general unadorned LLVM IR. 1985:ref:`Metadata <metadata>` may be used to encode additional information 1986which specialized optimization passes may use to implement type-based 1987alias analysis. 1988 1989.. _volatile: 1990 1991Volatile Memory Accesses 1992------------------------ 1993 1994Certain memory accesses, such as :ref:`load <i_load>`'s, 1995:ref:`store <i_store>`'s, and :ref:`llvm.memcpy <int_memcpy>`'s may be 1996marked ``volatile``. The optimizers must not change the number of 1997volatile operations or change their order of execution relative to other 1998volatile operations. The optimizers *may* change the order of volatile 1999operations relative to non-volatile operations. This is not Java's 2000"volatile" and has no cross-thread synchronization behavior. 2001 2002IR-level volatile loads and stores cannot safely be optimized into 2003llvm.memcpy or llvm.memmove intrinsics even when those intrinsics are 2004flagged volatile. Likewise, the backend should never split or merge 2005target-legal volatile load/store instructions. 2006 2007.. admonition:: Rationale 2008 2009 Platforms may rely on volatile loads and stores of natively supported 2010 data width to be executed as single instruction. For example, in C 2011 this holds for an l-value of volatile primitive type with native 2012 hardware support, but not necessarily for aggregate types. The 2013 frontend upholds these expectations, which are intentionally 2014 unspecified in the IR. The rules above ensure that IR transformations 2015 do not violate the frontend's contract with the language. 2016 2017.. _memmodel: 2018 2019Memory Model for Concurrent Operations 2020-------------------------------------- 2021 2022The LLVM IR does not define any way to start parallel threads of 2023execution or to register signal handlers. Nonetheless, there are 2024platform-specific ways to create them, and we define LLVM IR's behavior 2025in their presence. This model is inspired by the C++0x memory model. 2026 2027For a more informal introduction to this model, see the :doc:`Atomics`. 2028 2029We define a *happens-before* partial order as the least partial order 2030that 2031 2032- Is a superset of single-thread program order, and 2033- When a *synchronizes-with* ``b``, includes an edge from ``a`` to 2034 ``b``. *Synchronizes-with* pairs are introduced by platform-specific 2035 techniques, like pthread locks, thread creation, thread joining, 2036 etc., and by atomic instructions. (See also :ref:`Atomic Memory Ordering 2037 Constraints <ordering>`). 2038 2039Note that program order does not introduce *happens-before* edges 2040between a thread and signals executing inside that thread. 2041 2042Every (defined) read operation (load instructions, memcpy, atomic 2043loads/read-modify-writes, etc.) R reads a series of bytes written by 2044(defined) write operations (store instructions, atomic 2045stores/read-modify-writes, memcpy, etc.). For the purposes of this 2046section, initialized globals are considered to have a write of the 2047initializer which is atomic and happens before any other read or write 2048of the memory in question. For each byte of a read R, R\ :sub:`byte` 2049may see any write to the same byte, except: 2050 2051- If write\ :sub:`1` happens before write\ :sub:`2`, and 2052 write\ :sub:`2` happens before R\ :sub:`byte`, then 2053 R\ :sub:`byte` does not see write\ :sub:`1`. 2054- If R\ :sub:`byte` happens before write\ :sub:`3`, then 2055 R\ :sub:`byte` does not see write\ :sub:`3`. 2056 2057Given that definition, R\ :sub:`byte` is defined as follows: 2058 2059- If R is volatile, the result is target-dependent. (Volatile is 2060 supposed to give guarantees which can support ``sig_atomic_t`` in 2061 C/C++, and may be used for accesses to addresses that do not behave 2062 like normal memory. It does not generally provide cross-thread 2063 synchronization.) 2064- Otherwise, if there is no write to the same byte that happens before 2065 R\ :sub:`byte`, R\ :sub:`byte` returns ``undef`` for that byte. 2066- Otherwise, if R\ :sub:`byte` may see exactly one write, 2067 R\ :sub:`byte` returns the value written by that write. 2068- Otherwise, if R is atomic, and all the writes R\ :sub:`byte` may 2069 see are atomic, it chooses one of the values written. See the :ref:`Atomic 2070 Memory Ordering Constraints <ordering>` section for additional 2071 constraints on how the choice is made. 2072- Otherwise R\ :sub:`byte` returns ``undef``. 2073 2074R returns the value composed of the series of bytes it read. This 2075implies that some bytes within the value may be ``undef`` **without** 2076the entire value being ``undef``. Note that this only defines the 2077semantics of the operation; it doesn't mean that targets will emit more 2078than one instruction to read the series of bytes. 2079 2080Note that in cases where none of the atomic intrinsics are used, this 2081model places only one restriction on IR transformations on top of what 2082is required for single-threaded execution: introducing a store to a byte 2083which might not otherwise be stored is not allowed in general. 2084(Specifically, in the case where another thread might write to and read 2085from an address, introducing a store can change a load that may see 2086exactly one write into a load that may see multiple writes.) 2087 2088.. _ordering: 2089 2090Atomic Memory Ordering Constraints 2091---------------------------------- 2092 2093Atomic instructions (:ref:`cmpxchg <i_cmpxchg>`, 2094:ref:`atomicrmw <i_atomicrmw>`, :ref:`fence <i_fence>`, 2095:ref:`atomic load <i_load>`, and :ref:`atomic store <i_store>`) take 2096ordering parameters that determine which other atomic instructions on 2097the same address they *synchronize with*. These semantics are borrowed 2098from Java and C++0x, but are somewhat more colloquial. If these 2099descriptions aren't precise enough, check those specs (see spec 2100references in the :doc:`atomics guide <Atomics>`). 2101:ref:`fence <i_fence>` instructions treat these orderings somewhat 2102differently since they don't take an address. See that instruction's 2103documentation for details. 2104 2105For a simpler introduction to the ordering constraints, see the 2106:doc:`Atomics`. 2107 2108``unordered`` 2109 The set of values that can be read is governed by the happens-before 2110 partial order. A value cannot be read unless some operation wrote 2111 it. This is intended to provide a guarantee strong enough to model 2112 Java's non-volatile shared variables. This ordering cannot be 2113 specified for read-modify-write operations; it is not strong enough 2114 to make them atomic in any interesting way. 2115``monotonic`` 2116 In addition to the guarantees of ``unordered``, there is a single 2117 total order for modifications by ``monotonic`` operations on each 2118 address. All modification orders must be compatible with the 2119 happens-before order. There is no guarantee that the modification 2120 orders can be combined to a global total order for the whole program 2121 (and this often will not be possible). The read in an atomic 2122 read-modify-write operation (:ref:`cmpxchg <i_cmpxchg>` and 2123 :ref:`atomicrmw <i_atomicrmw>`) reads the value in the modification 2124 order immediately before the value it writes. If one atomic read 2125 happens before another atomic read of the same address, the later 2126 read must see the same value or a later value in the address's 2127 modification order. This disallows reordering of ``monotonic`` (or 2128 stronger) operations on the same address. If an address is written 2129 ``monotonic``-ally by one thread, and other threads ``monotonic``-ally 2130 read that address repeatedly, the other threads must eventually see 2131 the write. This corresponds to the C++0x/C1x 2132 ``memory_order_relaxed``. 2133``acquire`` 2134 In addition to the guarantees of ``monotonic``, a 2135 *synchronizes-with* edge may be formed with a ``release`` operation. 2136 This is intended to model C++'s ``memory_order_acquire``. 2137``release`` 2138 In addition to the guarantees of ``monotonic``, if this operation 2139 writes a value which is subsequently read by an ``acquire`` 2140 operation, it *synchronizes-with* that operation. (This isn't a 2141 complete description; see the C++0x definition of a release 2142 sequence.) This corresponds to the C++0x/C1x 2143 ``memory_order_release``. 2144``acq_rel`` (acquire+release) 2145 Acts as both an ``acquire`` and ``release`` operation on its 2146 address. This corresponds to the C++0x/C1x ``memory_order_acq_rel``. 2147``seq_cst`` (sequentially consistent) 2148 In addition to the guarantees of ``acq_rel`` (``acquire`` for an 2149 operation that only reads, ``release`` for an operation that only 2150 writes), there is a global total order on all 2151 sequentially-consistent operations on all addresses, which is 2152 consistent with the *happens-before* partial order and with the 2153 modification orders of all the affected addresses. Each 2154 sequentially-consistent read sees the last preceding write to the 2155 same address in this global order. This corresponds to the C++0x/C1x 2156 ``memory_order_seq_cst`` and Java volatile. 2157 2158.. _singlethread: 2159 2160If an atomic operation is marked ``singlethread``, it only *synchronizes 2161with* or participates in modification and seq\_cst total orderings with 2162other operations running in the same thread (for example, in signal 2163handlers). 2164 2165.. _fastmath: 2166 2167Fast-Math Flags 2168--------------- 2169 2170LLVM IR floating-point binary ops (:ref:`fadd <i_fadd>`, 2171:ref:`fsub <i_fsub>`, :ref:`fmul <i_fmul>`, :ref:`fdiv <i_fdiv>`, 2172:ref:`frem <i_frem>`, :ref:`fcmp <i_fcmp>`) and :ref:`call <i_call>` 2173instructions have the following flags that can be set to enable 2174otherwise unsafe floating point transformations. 2175 2176``nnan`` 2177 No NaNs - Allow optimizations to assume the arguments and result are not 2178 NaN. Such optimizations are required to retain defined behavior over 2179 NaNs, but the value of the result is undefined. 2180 2181``ninf`` 2182 No Infs - Allow optimizations to assume the arguments and result are not 2183 +/-Inf. Such optimizations are required to retain defined behavior over 2184 +/-Inf, but the value of the result is undefined. 2185 2186``nsz`` 2187 No Signed Zeros - Allow optimizations to treat the sign of a zero 2188 argument or result as insignificant. 2189 2190``arcp`` 2191 Allow Reciprocal - Allow optimizations to use the reciprocal of an 2192 argument rather than perform division. 2193 2194``fast`` 2195 Fast - Allow algebraically equivalent transformations that may 2196 dramatically change results in floating point (e.g. reassociate). This 2197 flag implies all the others. 2198 2199.. _uselistorder: 2200 2201Use-list Order Directives 2202------------------------- 2203 2204Use-list directives encode the in-memory order of each use-list, allowing the 2205order to be recreated. ``<order-indexes>`` is a comma-separated list of 2206indexes that are assigned to the referenced value's uses. The referenced 2207value's use-list is immediately sorted by these indexes. 2208 2209Use-list directives may appear at function scope or global scope. They are not 2210instructions, and have no effect on the semantics of the IR. When they're at 2211function scope, they must appear after the terminator of the final basic block. 2212 2213If basic blocks have their address taken via ``blockaddress()`` expressions, 2214``uselistorder_bb`` can be used to reorder their use-lists from outside their 2215function's scope. 2216 2217:Syntax: 2218 2219:: 2220 2221 uselistorder <ty> <value>, { <order-indexes> } 2222 uselistorder_bb @function, %block { <order-indexes> } 2223 2224:Examples: 2225 2226:: 2227 2228 define void @foo(i32 %arg1, i32 %arg2) { 2229 entry: 2230 ; ... instructions ... 2231 bb: 2232 ; ... instructions ... 2233 2234 ; At function scope. 2235 uselistorder i32 %arg1, { 1, 0, 2 } 2236 uselistorder label %bb, { 1, 0 } 2237 } 2238 2239 ; At global scope. 2240 uselistorder i32* @global, { 1, 2, 0 } 2241 uselistorder i32 7, { 1, 0 } 2242 uselistorder i32 (i32) @bar, { 1, 0 } 2243 uselistorder_bb @foo, %bb, { 5, 1, 3, 2, 0, 4 } 2244 2245.. _source_filename: 2246 2247Source Filename 2248--------------- 2249 2250The *source filename* string is set to the original module identifier, 2251which will be the name of the compiled source file when compiling from 2252source through the clang front end, for example. It is then preserved through 2253the IR and bitcode. 2254 2255This is currently necessary to generate a consistent unique global 2256identifier for local functions used in profile data, which prepends the 2257source file name to the local function name. 2258 2259The syntax for the source file name is simply: 2260 2261.. code-block:: text 2262 2263 source_filename = "/path/to/source.c" 2264 2265.. _typesystem: 2266 2267Type System 2268=========== 2269 2270The LLVM type system is one of the most important features of the 2271intermediate representation. Being typed enables a number of 2272optimizations to be performed on the intermediate representation 2273directly, without having to do extra analyses on the side before the 2274transformation. A strong type system makes it easier to read the 2275generated code and enables novel analyses and transformations that are 2276not feasible to perform on normal three address code representations. 2277 2278.. _t_void: 2279 2280Void Type 2281--------- 2282 2283:Overview: 2284 2285 2286The void type does not represent any value and has no size. 2287 2288:Syntax: 2289 2290 2291:: 2292 2293 void 2294 2295 2296.. _t_function: 2297 2298Function Type 2299------------- 2300 2301:Overview: 2302 2303 2304The function type can be thought of as a function signature. It consists of a 2305return type and a list of formal parameter types. The return type of a function 2306type is a void type or first class type --- except for :ref:`label <t_label>` 2307and :ref:`metadata <t_metadata>` types. 2308 2309:Syntax: 2310 2311:: 2312 2313 <returntype> (<parameter list>) 2314 2315...where '``<parameter list>``' is a comma-separated list of type 2316specifiers. Optionally, the parameter list may include a type ``...``, which 2317indicates that the function takes a variable number of arguments. Variable 2318argument functions can access their arguments with the :ref:`variable argument 2319handling intrinsic <int_varargs>` functions. '``<returntype>``' is any type 2320except :ref:`label <t_label>` and :ref:`metadata <t_metadata>`. 2321 2322:Examples: 2323 2324+---------------------------------+---------------------------------------------------------------------------------------------------------------------------------------------------------------------+ 2325| ``i32 (i32)`` | function taking an ``i32``, returning an ``i32`` | 2326+---------------------------------+---------------------------------------------------------------------------------------------------------------------------------------------------------------------+ 2327| ``float (i16, i32 *) *`` | :ref:`Pointer <t_pointer>` to a function that takes an ``i16`` and a :ref:`pointer <t_pointer>` to ``i32``, returning ``float``. | 2328+---------------------------------+---------------------------------------------------------------------------------------------------------------------------------------------------------------------+ 2329| ``i32 (i8*, ...)`` | A vararg function that takes at least one :ref:`pointer <t_pointer>` to ``i8`` (char in C), which returns an integer. This is the signature for ``printf`` in LLVM. | 2330+---------------------------------+---------------------------------------------------------------------------------------------------------------------------------------------------------------------+ 2331| ``{i32, i32} (i32)`` | A function taking an ``i32``, returning a :ref:`structure <t_struct>` containing two ``i32`` values | 2332+---------------------------------+---------------------------------------------------------------------------------------------------------------------------------------------------------------------+ 2333 2334.. _t_firstclass: 2335 2336First Class Types 2337----------------- 2338 2339The :ref:`first class <t_firstclass>` types are perhaps the most important. 2340Values of these types are the only ones which can be produced by 2341instructions. 2342 2343.. _t_single_value: 2344 2345Single Value Types 2346^^^^^^^^^^^^^^^^^^ 2347 2348These are the types that are valid in registers from CodeGen's perspective. 2349 2350.. _t_integer: 2351 2352Integer Type 2353"""""""""""" 2354 2355:Overview: 2356 2357The integer type is a very simple type that simply specifies an 2358arbitrary bit width for the integer type desired. Any bit width from 1 2359bit to 2\ :sup:`23`\ -1 (about 8 million) can be specified. 2360 2361:Syntax: 2362 2363:: 2364 2365 iN 2366 2367The number of bits the integer will occupy is specified by the ``N`` 2368value. 2369 2370Examples: 2371********* 2372 2373+----------------+------------------------------------------------+ 2374| ``i1`` | a single-bit integer. | 2375+----------------+------------------------------------------------+ 2376| ``i32`` | a 32-bit integer. | 2377+----------------+------------------------------------------------+ 2378| ``i1942652`` | a really big integer of over 1 million bits. | 2379+----------------+------------------------------------------------+ 2380 2381.. _t_floating: 2382 2383Floating Point Types 2384"""""""""""""""""""" 2385 2386.. list-table:: 2387 :header-rows: 1 2388 2389 * - Type 2390 - Description 2391 2392 * - ``half`` 2393 - 16-bit floating point value 2394 2395 * - ``float`` 2396 - 32-bit floating point value 2397 2398 * - ``double`` 2399 - 64-bit floating point value 2400 2401 * - ``fp128`` 2402 - 128-bit floating point value (112-bit mantissa) 2403 2404 * - ``x86_fp80`` 2405 - 80-bit floating point value (X87) 2406 2407 * - ``ppc_fp128`` 2408 - 128-bit floating point value (two 64-bits) 2409 2410X86_mmx Type 2411"""""""""""" 2412 2413:Overview: 2414 2415The x86_mmx type represents a value held in an MMX register on an x86 2416machine. The operations allowed on it are quite limited: parameters and 2417return values, load and store, and bitcast. User-specified MMX 2418instructions are represented as intrinsic or asm calls with arguments 2419and/or results of this type. There are no arrays, vectors or constants 2420of this type. 2421 2422:Syntax: 2423 2424:: 2425 2426 x86_mmx 2427 2428 2429.. _t_pointer: 2430 2431Pointer Type 2432"""""""""""" 2433 2434:Overview: 2435 2436The pointer type is used to specify memory locations. Pointers are 2437commonly used to reference objects in memory. 2438 2439Pointer types may have an optional address space attribute defining the 2440numbered address space where the pointed-to object resides. The default 2441address space is number zero. The semantics of non-zero address spaces 2442are target-specific. 2443 2444Note that LLVM does not permit pointers to void (``void*``) nor does it 2445permit pointers to labels (``label*``). Use ``i8*`` instead. 2446 2447:Syntax: 2448 2449:: 2450 2451 <type> * 2452 2453:Examples: 2454 2455+-------------------------+--------------------------------------------------------------------------------------------------------------+ 2456| ``[4 x i32]*`` | A :ref:`pointer <t_pointer>` to :ref:`array <t_array>` of four ``i32`` values. | 2457+-------------------------+--------------------------------------------------------------------------------------------------------------+ 2458| ``i32 (i32*) *`` | A :ref:`pointer <t_pointer>` to a :ref:`function <t_function>` that takes an ``i32*``, returning an ``i32``. | 2459+-------------------------+--------------------------------------------------------------------------------------------------------------+ 2460| ``i32 addrspace(5)*`` | A :ref:`pointer <t_pointer>` to an ``i32`` value that resides in address space #5. | 2461+-------------------------+--------------------------------------------------------------------------------------------------------------+ 2462 2463.. _t_vector: 2464 2465Vector Type 2466""""""""""" 2467 2468:Overview: 2469 2470A vector type is a simple derived type that represents a vector of 2471elements. Vector types are used when multiple primitive data are 2472operated in parallel using a single instruction (SIMD). A vector type 2473requires a size (number of elements) and an underlying primitive data 2474type. Vector types are considered :ref:`first class <t_firstclass>`. 2475 2476:Syntax: 2477 2478:: 2479 2480 < <# elements> x <elementtype> > 2481 2482The number of elements is a constant integer value larger than 0; 2483elementtype may be any integer, floating point or pointer type. Vectors 2484of size zero are not allowed. 2485 2486:Examples: 2487 2488+-------------------+--------------------------------------------------+ 2489| ``<4 x i32>`` | Vector of 4 32-bit integer values. | 2490+-------------------+--------------------------------------------------+ 2491| ``<8 x float>`` | Vector of 8 32-bit floating-point values. | 2492+-------------------+--------------------------------------------------+ 2493| ``<2 x i64>`` | Vector of 2 64-bit integer values. | 2494+-------------------+--------------------------------------------------+ 2495| ``<4 x i64*>`` | Vector of 4 pointers to 64-bit integer values. | 2496+-------------------+--------------------------------------------------+ 2497 2498.. _t_label: 2499 2500Label Type 2501^^^^^^^^^^ 2502 2503:Overview: 2504 2505The label type represents code labels. 2506 2507:Syntax: 2508 2509:: 2510 2511 label 2512 2513.. _t_token: 2514 2515Token Type 2516^^^^^^^^^^ 2517 2518:Overview: 2519 2520The token type is used when a value is associated with an instruction 2521but all uses of the value must not attempt to introspect or obscure it. 2522As such, it is not appropriate to have a :ref:`phi <i_phi>` or 2523:ref:`select <i_select>` of type token. 2524 2525:Syntax: 2526 2527:: 2528 2529 token 2530 2531 2532 2533.. _t_metadata: 2534 2535Metadata Type 2536^^^^^^^^^^^^^ 2537 2538:Overview: 2539 2540The metadata type represents embedded metadata. No derived types may be 2541created from metadata except for :ref:`function <t_function>` arguments. 2542 2543:Syntax: 2544 2545:: 2546 2547 metadata 2548 2549.. _t_aggregate: 2550 2551Aggregate Types 2552^^^^^^^^^^^^^^^ 2553 2554Aggregate Types are a subset of derived types that can contain multiple 2555member types. :ref:`Arrays <t_array>` and :ref:`structs <t_struct>` are 2556aggregate types. :ref:`Vectors <t_vector>` are not considered to be 2557aggregate types. 2558 2559.. _t_array: 2560 2561Array Type 2562"""""""""" 2563 2564:Overview: 2565 2566The array type is a very simple derived type that arranges elements 2567sequentially in memory. The array type requires a size (number of 2568elements) and an underlying data type. 2569 2570:Syntax: 2571 2572:: 2573 2574 [<# elements> x <elementtype>] 2575 2576The number of elements is a constant integer value; ``elementtype`` may 2577be any type with a size. 2578 2579:Examples: 2580 2581+------------------+--------------------------------------+ 2582| ``[40 x i32]`` | Array of 40 32-bit integer values. | 2583+------------------+--------------------------------------+ 2584| ``[41 x i32]`` | Array of 41 32-bit integer values. | 2585+------------------+--------------------------------------+ 2586| ``[4 x i8]`` | Array of 4 8-bit integer values. | 2587+------------------+--------------------------------------+ 2588 2589Here are some examples of multidimensional arrays: 2590 2591+-----------------------------+----------------------------------------------------------+ 2592| ``[3 x [4 x i32]]`` | 3x4 array of 32-bit integer values. | 2593+-----------------------------+----------------------------------------------------------+ 2594| ``[12 x [10 x float]]`` | 12x10 array of single precision floating point values. | 2595+-----------------------------+----------------------------------------------------------+ 2596| ``[2 x [3 x [4 x i16]]]`` | 2x3x4 array of 16-bit integer values. | 2597+-----------------------------+----------------------------------------------------------+ 2598 2599There is no restriction on indexing beyond the end of the array implied 2600by a static type (though there are restrictions on indexing beyond the 2601bounds of an allocated object in some cases). This means that 2602single-dimension 'variable sized array' addressing can be implemented in 2603LLVM with a zero length array type. An implementation of 'pascal style 2604arrays' in LLVM could use the type "``{ i32, [0 x float]}``", for 2605example. 2606 2607.. _t_struct: 2608 2609Structure Type 2610"""""""""""""" 2611 2612:Overview: 2613 2614The structure type is used to represent a collection of data members 2615together in memory. The elements of a structure may be any type that has 2616a size. 2617 2618Structures in memory are accessed using '``load``' and '``store``' by 2619getting a pointer to a field with the '``getelementptr``' instruction. 2620Structures in registers are accessed using the '``extractvalue``' and 2621'``insertvalue``' instructions. 2622 2623Structures may optionally be "packed" structures, which indicate that 2624the alignment of the struct is one byte, and that there is no padding 2625between the elements. In non-packed structs, padding between field types 2626is inserted as defined by the DataLayout string in the module, which is 2627required to match what the underlying code generator expects. 2628 2629Structures can either be "literal" or "identified". A literal structure 2630is defined inline with other types (e.g. ``{i32, i32}*``) whereas 2631identified types are always defined at the top level with a name. 2632Literal types are uniqued by their contents and can never be recursive 2633or opaque since there is no way to write one. Identified types can be 2634recursive, can be opaqued, and are never uniqued. 2635 2636:Syntax: 2637 2638:: 2639 2640 %T1 = type { <type list> } ; Identified normal struct type 2641 %T2 = type <{ <type list> }> ; Identified packed struct type 2642 2643:Examples: 2644 2645+------------------------------+---------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------+ 2646| ``{ i32, i32, i32 }`` | A triple of three ``i32`` values | 2647+------------------------------+---------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------+ 2648| ``{ float, i32 (i32) * }`` | A pair, where the first element is a ``float`` and the second element is a :ref:`pointer <t_pointer>` to a :ref:`function <t_function>` that takes an ``i32``, returning an ``i32``. | 2649+------------------------------+---------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------+ 2650| ``<{ i8, i32 }>`` | A packed struct known to be 5 bytes in size. | 2651+------------------------------+---------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------+ 2652 2653.. _t_opaque: 2654 2655Opaque Structure Types 2656"""""""""""""""""""""" 2657 2658:Overview: 2659 2660Opaque structure types are used to represent named structure types that 2661do not have a body specified. This corresponds (for example) to the C 2662notion of a forward declared structure. 2663 2664:Syntax: 2665 2666:: 2667 2668 %X = type opaque 2669 %52 = type opaque 2670 2671:Examples: 2672 2673+--------------+-------------------+ 2674| ``opaque`` | An opaque type. | 2675+--------------+-------------------+ 2676 2677.. _constants: 2678 2679Constants 2680========= 2681 2682LLVM has several different basic types of constants. This section 2683describes them all and their syntax. 2684 2685Simple Constants 2686---------------- 2687 2688**Boolean constants** 2689 The two strings '``true``' and '``false``' are both valid constants 2690 of the ``i1`` type. 2691**Integer constants** 2692 Standard integers (such as '4') are constants of the 2693 :ref:`integer <t_integer>` type. Negative numbers may be used with 2694 integer types. 2695**Floating point constants** 2696 Floating point constants use standard decimal notation (e.g. 2697 123.421), exponential notation (e.g. 1.23421e+2), or a more precise 2698 hexadecimal notation (see below). The assembler requires the exact 2699 decimal value of a floating-point constant. For example, the 2700 assembler accepts 1.25 but rejects 1.3 because 1.3 is a repeating 2701 decimal in binary. Floating point constants must have a :ref:`floating 2702 point <t_floating>` type. 2703**Null pointer constants** 2704 The identifier '``null``' is recognized as a null pointer constant 2705 and must be of :ref:`pointer type <t_pointer>`. 2706**Token constants** 2707 The identifier '``none``' is recognized as an empty token constant 2708 and must be of :ref:`token type <t_token>`. 2709 2710The one non-intuitive notation for constants is the hexadecimal form of 2711floating point constants. For example, the form 2712'``double 0x432ff973cafa8000``' is equivalent to (but harder to read 2713than) '``double 4.5e+15``'. The only time hexadecimal floating point 2714constants are required (and the only time that they are generated by the 2715disassembler) is when a floating point constant must be emitted but it 2716cannot be represented as a decimal floating point number in a reasonable 2717number of digits. For example, NaN's, infinities, and other special 2718values are represented in their IEEE hexadecimal format so that assembly 2719and disassembly do not cause any bits to change in the constants. 2720 2721When using the hexadecimal form, constants of types half, float, and 2722double are represented using the 16-digit form shown above (which 2723matches the IEEE754 representation for double); half and float values 2724must, however, be exactly representable as IEEE 754 half and single 2725precision, respectively. Hexadecimal format is always used for long 2726double, and there are three forms of long double. The 80-bit format used 2727by x86 is represented as ``0xK`` followed by 20 hexadecimal digits. The 2728128-bit format used by PowerPC (two adjacent doubles) is represented by 2729``0xM`` followed by 32 hexadecimal digits. The IEEE 128-bit format is 2730represented by ``0xL`` followed by 32 hexadecimal digits. Long doubles 2731will only work if they match the long double format on your target. 2732The IEEE 16-bit format (half precision) is represented by ``0xH`` 2733followed by 4 hexadecimal digits. All hexadecimal formats are big-endian 2734(sign bit at the left). 2735 2736There are no constants of type x86_mmx. 2737 2738.. _complexconstants: 2739 2740Complex Constants 2741----------------- 2742 2743Complex constants are a (potentially recursive) combination of simple 2744constants and smaller complex constants. 2745 2746**Structure constants** 2747 Structure constants are represented with notation similar to 2748 structure type definitions (a comma separated list of elements, 2749 surrounded by braces (``{}``)). For example: 2750 "``{ i32 4, float 17.0, i32* @G }``", where "``@G``" is declared as 2751 "``@G = external global i32``". Structure constants must have 2752 :ref:`structure type <t_struct>`, and the number and types of elements 2753 must match those specified by the type. 2754**Array constants** 2755 Array constants are represented with notation similar to array type 2756 definitions (a comma separated list of elements, surrounded by 2757 square brackets (``[]``)). For example: 2758 "``[ i32 42, i32 11, i32 74 ]``". Array constants must have 2759 :ref:`array type <t_array>`, and the number and types of elements must 2760 match those specified by the type. As a special case, character array 2761 constants may also be represented as a double-quoted string using the ``c`` 2762 prefix. For example: "``c"Hello World\0A\00"``". 2763**Vector constants** 2764 Vector constants are represented with notation similar to vector 2765 type definitions (a comma separated list of elements, surrounded by 2766 less-than/greater-than's (``<>``)). For example: 2767 "``< i32 42, i32 11, i32 74, i32 100 >``". Vector constants 2768 must have :ref:`vector type <t_vector>`, and the number and types of 2769 elements must match those specified by the type. 2770**Zero initialization** 2771 The string '``zeroinitializer``' can be used to zero initialize a 2772 value to zero of *any* type, including scalar and 2773 :ref:`aggregate <t_aggregate>` types. This is often used to avoid 2774 having to print large zero initializers (e.g. for large arrays) and 2775 is always exactly equivalent to using explicit zero initializers. 2776**Metadata node** 2777 A metadata node is a constant tuple without types. For example: 2778 "``!{!0, !{!2, !0}, !"test"}``". Metadata can reference constant values, 2779 for example: "``!{!0, i32 0, i8* @global, i64 (i64)* @function, !"str"}``". 2780 Unlike other typed constants that are meant to be interpreted as part of 2781 the instruction stream, metadata is a place to attach additional 2782 information such as debug info. 2783 2784Global Variable and Function Addresses 2785-------------------------------------- 2786 2787The addresses of :ref:`global variables <globalvars>` and 2788:ref:`functions <functionstructure>` are always implicitly valid 2789(link-time) constants. These constants are explicitly referenced when 2790the :ref:`identifier for the global <identifiers>` is used and always have 2791:ref:`pointer <t_pointer>` type. For example, the following is a legal LLVM 2792file: 2793 2794.. code-block:: llvm 2795 2796 @X = global i32 17 2797 @Y = global i32 42 2798 @Z = global [2 x i32*] [ i32* @X, i32* @Y ] 2799 2800.. _undefvalues: 2801 2802Undefined Values 2803---------------- 2804 2805The string '``undef``' can be used anywhere a constant is expected, and 2806indicates that the user of the value may receive an unspecified 2807bit-pattern. Undefined values may be of any type (other than '``label``' 2808or '``void``') and be used anywhere a constant is permitted. 2809 2810Undefined values are useful because they indicate to the compiler that 2811the program is well defined no matter what value is used. This gives the 2812compiler more freedom to optimize. Here are some examples of 2813(potentially surprising) transformations that are valid (in pseudo IR): 2814 2815.. code-block:: llvm 2816 2817 %A = add %X, undef 2818 %B = sub %X, undef 2819 %C = xor %X, undef 2820 Safe: 2821 %A = undef 2822 %B = undef 2823 %C = undef 2824 2825This is safe because all of the output bits are affected by the undef 2826bits. Any output bit can have a zero or one depending on the input bits. 2827 2828.. code-block:: llvm 2829 2830 %A = or %X, undef 2831 %B = and %X, undef 2832 Safe: 2833 %A = -1 2834 %B = 0 2835 Safe: 2836 %A = %X ;; By choosing undef as 0 2837 %B = %X ;; By choosing undef as -1 2838 Unsafe: 2839 %A = undef 2840 %B = undef 2841 2842These logical operations have bits that are not always affected by the 2843input. For example, if ``%X`` has a zero bit, then the output of the 2844'``and``' operation will always be a zero for that bit, no matter what 2845the corresponding bit from the '``undef``' is. As such, it is unsafe to 2846optimize or assume that the result of the '``and``' is '``undef``'. 2847However, it is safe to assume that all bits of the '``undef``' could be 28480, and optimize the '``and``' to 0. Likewise, it is safe to assume that 2849all the bits of the '``undef``' operand to the '``or``' could be set, 2850allowing the '``or``' to be folded to -1. 2851 2852.. code-block:: llvm 2853 2854 %A = select undef, %X, %Y 2855 %B = select undef, 42, %Y 2856 %C = select %X, %Y, undef 2857 Safe: 2858 %A = %X (or %Y) 2859 %B = 42 (or %Y) 2860 %C = %Y 2861 Unsafe: 2862 %A = undef 2863 %B = undef 2864 %C = undef 2865 2866This set of examples shows that undefined '``select``' (and conditional 2867branch) conditions can go *either way*, but they have to come from one 2868of the two operands. In the ``%A`` example, if ``%X`` and ``%Y`` were 2869both known to have a clear low bit, then ``%A`` would have to have a 2870cleared low bit. However, in the ``%C`` example, the optimizer is 2871allowed to assume that the '``undef``' operand could be the same as 2872``%Y``, allowing the whole '``select``' to be eliminated. 2873 2874.. code-block:: text 2875 2876 %A = xor undef, undef 2877 2878 %B = undef 2879 %C = xor %B, %B 2880 2881 %D = undef 2882 %E = icmp slt %D, 4 2883 %F = icmp gte %D, 4 2884 2885 Safe: 2886 %A = undef 2887 %B = undef 2888 %C = undef 2889 %D = undef 2890 %E = undef 2891 %F = undef 2892 2893This example points out that two '``undef``' operands are not 2894necessarily the same. This can be surprising to people (and also matches 2895C semantics) where they assume that "``X^X``" is always zero, even if 2896``X`` is undefined. This isn't true for a number of reasons, but the 2897short answer is that an '``undef``' "variable" can arbitrarily change 2898its value over its "live range". This is true because the variable 2899doesn't actually *have a live range*. Instead, the value is logically 2900read from arbitrary registers that happen to be around when needed, so 2901the value is not necessarily consistent over time. In fact, ``%A`` and 2902``%C`` need to have the same semantics or the core LLVM "replace all 2903uses with" concept would not hold. 2904 2905.. code-block:: llvm 2906 2907 %A = fdiv undef, %X 2908 %B = fdiv %X, undef 2909 Safe: 2910 %A = undef 2911 b: unreachable 2912 2913These examples show the crucial difference between an *undefined value* 2914and *undefined behavior*. An undefined value (like '``undef``') is 2915allowed to have an arbitrary bit-pattern. This means that the ``%A`` 2916operation can be constant folded to '``undef``', because the '``undef``' 2917could be an SNaN, and ``fdiv`` is not (currently) defined on SNaN's. 2918However, in the second example, we can make a more aggressive 2919assumption: because the ``undef`` is allowed to be an arbitrary value, 2920we are allowed to assume that it could be zero. Since a divide by zero 2921has *undefined behavior*, we are allowed to assume that the operation 2922does not execute at all. This allows us to delete the divide and all 2923code after it. Because the undefined operation "can't happen", the 2924optimizer can assume that it occurs in dead code. 2925 2926.. code-block:: text 2927 2928 a: store undef -> %X 2929 b: store %X -> undef 2930 Safe: 2931 a: <deleted> 2932 b: unreachable 2933 2934These examples reiterate the ``fdiv`` example: a store *of* an undefined 2935value can be assumed to not have any effect; we can assume that the 2936value is overwritten with bits that happen to match what was already 2937there. However, a store *to* an undefined location could clobber 2938arbitrary memory, therefore, it has undefined behavior. 2939 2940.. _poisonvalues: 2941 2942Poison Values 2943------------- 2944 2945Poison values are similar to :ref:`undef values <undefvalues>`, however 2946they also represent the fact that an instruction or constant expression 2947that cannot evoke side effects has nevertheless detected a condition 2948that results in undefined behavior. 2949 2950There is currently no way of representing a poison value in the IR; they 2951only exist when produced by operations such as :ref:`add <i_add>` with 2952the ``nsw`` flag. 2953 2954Poison value behavior is defined in terms of value *dependence*: 2955 2956- Values other than :ref:`phi <i_phi>` nodes depend on their operands. 2957- :ref:`Phi <i_phi>` nodes depend on the operand corresponding to 2958 their dynamic predecessor basic block. 2959- Function arguments depend on the corresponding actual argument values 2960 in the dynamic callers of their functions. 2961- :ref:`Call <i_call>` instructions depend on the :ref:`ret <i_ret>` 2962 instructions that dynamically transfer control back to them. 2963- :ref:`Invoke <i_invoke>` instructions depend on the 2964 :ref:`ret <i_ret>`, :ref:`resume <i_resume>`, or exception-throwing 2965 call instructions that dynamically transfer control back to them. 2966- Non-volatile loads and stores depend on the most recent stores to all 2967 of the referenced memory addresses, following the order in the IR 2968 (including loads and stores implied by intrinsics such as 2969 :ref:`@llvm.memcpy <int_memcpy>`.) 2970- An instruction with externally visible side effects depends on the 2971 most recent preceding instruction with externally visible side 2972 effects, following the order in the IR. (This includes :ref:`volatile 2973 operations <volatile>`.) 2974- An instruction *control-depends* on a :ref:`terminator 2975 instruction <terminators>` if the terminator instruction has 2976 multiple successors and the instruction is always executed when 2977 control transfers to one of the successors, and may not be executed 2978 when control is transferred to another. 2979- Additionally, an instruction also *control-depends* on a terminator 2980 instruction if the set of instructions it otherwise depends on would 2981 be different if the terminator had transferred control to a different 2982 successor. 2983- Dependence is transitive. 2984 2985Poison values have the same behavior as :ref:`undef values <undefvalues>`, 2986with the additional effect that any instruction that has a *dependence* 2987on a poison value has undefined behavior. 2988 2989Here are some examples: 2990 2991.. code-block:: llvm 2992 2993 entry: 2994 %poison = sub nuw i32 0, 1 ; Results in a poison value. 2995 %still_poison = and i32 %poison, 0 ; 0, but also poison. 2996 %poison_yet_again = getelementptr i32, i32* @h, i32 %still_poison 2997 store i32 0, i32* %poison_yet_again ; memory at @h[0] is poisoned 2998 2999 store i32 %poison, i32* @g ; Poison value stored to memory. 3000 %poison2 = load i32, i32* @g ; Poison value loaded back from memory. 3001 3002 store volatile i32 %poison, i32* @g ; External observation; undefined behavior. 3003 3004 %narrowaddr = bitcast i32* @g to i16* 3005 %wideaddr = bitcast i32* @g to i64* 3006 %poison3 = load i16, i16* %narrowaddr ; Returns a poison value. 3007 %poison4 = load i64, i64* %wideaddr ; Returns a poison value. 3008 3009 %cmp = icmp slt i32 %poison, 0 ; Returns a poison value. 3010 br i1 %cmp, label %true, label %end ; Branch to either destination. 3011 3012 true: 3013 store volatile i32 0, i32* @g ; This is control-dependent on %cmp, so 3014 ; it has undefined behavior. 3015 br label %end 3016 3017 end: 3018 %p = phi i32 [ 0, %entry ], [ 1, %true ] 3019 ; Both edges into this PHI are 3020 ; control-dependent on %cmp, so this 3021 ; always results in a poison value. 3022 3023 store volatile i32 0, i32* @g ; This would depend on the store in %true 3024 ; if %cmp is true, or the store in %entry 3025 ; otherwise, so this is undefined behavior. 3026 3027 br i1 %cmp, label %second_true, label %second_end 3028 ; The same branch again, but this time the 3029 ; true block doesn't have side effects. 3030 3031 second_true: 3032 ; No side effects! 3033 ret void 3034 3035 second_end: 3036 store volatile i32 0, i32* @g ; This time, the instruction always depends 3037 ; on the store in %end. Also, it is 3038 ; control-equivalent to %end, so this is 3039 ; well-defined (ignoring earlier undefined 3040 ; behavior in this example). 3041 3042.. _blockaddress: 3043 3044Addresses of Basic Blocks 3045------------------------- 3046 3047``blockaddress(@function, %block)`` 3048 3049The '``blockaddress``' constant computes the address of the specified 3050basic block in the specified function, and always has an ``i8*`` type. 3051Taking the address of the entry block is illegal. 3052 3053This value only has defined behavior when used as an operand to the 3054':ref:`indirectbr <i_indirectbr>`' instruction, or for comparisons 3055against null. Pointer equality tests between labels addresses results in 3056undefined behavior --- though, again, comparison against null is ok, and 3057no label is equal to the null pointer. This may be passed around as an 3058opaque pointer sized value as long as the bits are not inspected. This 3059allows ``ptrtoint`` and arithmetic to be performed on these values so 3060long as the original value is reconstituted before the ``indirectbr`` 3061instruction. 3062 3063Finally, some targets may provide defined semantics when using the value 3064as the operand to an inline assembly, but that is target specific. 3065 3066.. _constantexprs: 3067 3068Constant Expressions 3069-------------------- 3070 3071Constant expressions are used to allow expressions involving other 3072constants to be used as constants. Constant expressions may be of any 3073:ref:`first class <t_firstclass>` type and may involve any LLVM operation 3074that does not have side effects (e.g. load and call are not supported). 3075The following is the syntax for constant expressions: 3076 3077``trunc (CST to TYPE)`` 3078 Truncate a constant to another type. The bit size of CST must be 3079 larger than the bit size of TYPE. Both types must be integers. 3080``zext (CST to TYPE)`` 3081 Zero extend a constant to another type. The bit size of CST must be 3082 smaller than the bit size of TYPE. Both types must be integers. 3083``sext (CST to TYPE)`` 3084 Sign extend a constant to another type. The bit size of CST must be 3085 smaller than the bit size of TYPE. Both types must be integers. 3086``fptrunc (CST to TYPE)`` 3087 Truncate a floating point constant to another floating point type. 3088 The size of CST must be larger than the size of TYPE. Both types 3089 must be floating point. 3090``fpext (CST to TYPE)`` 3091 Floating point extend a constant to another type. The size of CST 3092 must be smaller or equal to the size of TYPE. Both types must be 3093 floating point. 3094``fptoui (CST to TYPE)`` 3095 Convert a floating point constant to the corresponding unsigned 3096 integer constant. TYPE must be a scalar or vector integer type. CST 3097 must be of scalar or vector floating point type. Both CST and TYPE 3098 must be scalars, or vectors of the same number of elements. If the 3099 value won't fit in the integer type, the results are undefined. 3100``fptosi (CST to TYPE)`` 3101 Convert a floating point constant to the corresponding signed 3102 integer constant. TYPE must be a scalar or vector integer type. CST 3103 must be of scalar or vector floating point type. Both CST and TYPE 3104 must be scalars, or vectors of the same number of elements. If the 3105 value won't fit in the integer type, the results are undefined. 3106``uitofp (CST to TYPE)`` 3107 Convert an unsigned integer constant to the corresponding floating 3108 point constant. TYPE must be a scalar or vector floating point type. 3109 CST must be of scalar or vector integer type. Both CST and TYPE must 3110 be scalars, or vectors of the same number of elements. If the value 3111 won't fit in the floating point type, the results are undefined. 3112``sitofp (CST to TYPE)`` 3113 Convert a signed integer constant to the corresponding floating 3114 point constant. TYPE must be a scalar or vector floating point type. 3115 CST must be of scalar or vector integer type. Both CST and TYPE must 3116 be scalars, or vectors of the same number of elements. If the value 3117 won't fit in the floating point type, the results are undefined. 3118``ptrtoint (CST to TYPE)`` 3119 Convert a pointer typed constant to the corresponding integer 3120 constant. ``TYPE`` must be an integer type. ``CST`` must be of 3121 pointer type. The ``CST`` value is zero extended, truncated, or 3122 unchanged to make it fit in ``TYPE``. 3123``inttoptr (CST to TYPE)`` 3124 Convert an integer constant to a pointer constant. TYPE must be a 3125 pointer type. CST must be of integer type. The CST value is zero 3126 extended, truncated, or unchanged to make it fit in a pointer size. 3127 This one is *really* dangerous! 3128``bitcast (CST to TYPE)`` 3129 Convert a constant, CST, to another TYPE. The constraints of the 3130 operands are the same as those for the :ref:`bitcast 3131 instruction <i_bitcast>`. 3132``addrspacecast (CST to TYPE)`` 3133 Convert a constant pointer or constant vector of pointer, CST, to another 3134 TYPE in a different address space. The constraints of the operands are the 3135 same as those for the :ref:`addrspacecast instruction <i_addrspacecast>`. 3136``getelementptr (TY, CSTPTR, IDX0, IDX1, ...)``, ``getelementptr inbounds (TY, CSTPTR, IDX0, IDX1, ...)`` 3137 Perform the :ref:`getelementptr operation <i_getelementptr>` on 3138 constants. As with the :ref:`getelementptr <i_getelementptr>` 3139 instruction, the index list may have zero or more indexes, which are 3140 required to make sense for the type of "pointer to TY". 3141``select (COND, VAL1, VAL2)`` 3142 Perform the :ref:`select operation <i_select>` on constants. 3143``icmp COND (VAL1, VAL2)`` 3144 Performs the :ref:`icmp operation <i_icmp>` on constants. 3145``fcmp COND (VAL1, VAL2)`` 3146 Performs the :ref:`fcmp operation <i_fcmp>` on constants. 3147``extractelement (VAL, IDX)`` 3148 Perform the :ref:`extractelement operation <i_extractelement>` on 3149 constants. 3150``insertelement (VAL, ELT, IDX)`` 3151 Perform the :ref:`insertelement operation <i_insertelement>` on 3152 constants. 3153``shufflevector (VEC1, VEC2, IDXMASK)`` 3154 Perform the :ref:`shufflevector operation <i_shufflevector>` on 3155 constants. 3156``extractvalue (VAL, IDX0, IDX1, ...)`` 3157 Perform the :ref:`extractvalue operation <i_extractvalue>` on 3158 constants. The index list is interpreted in a similar manner as 3159 indices in a ':ref:`getelementptr <i_getelementptr>`' operation. At 3160 least one index value must be specified. 3161``insertvalue (VAL, ELT, IDX0, IDX1, ...)`` 3162 Perform the :ref:`insertvalue operation <i_insertvalue>` on constants. 3163 The index list is interpreted in a similar manner as indices in a 3164 ':ref:`getelementptr <i_getelementptr>`' operation. At least one index 3165 value must be specified. 3166``OPCODE (LHS, RHS)`` 3167 Perform the specified operation of the LHS and RHS constants. OPCODE 3168 may be any of the :ref:`binary <binaryops>` or :ref:`bitwise 3169 binary <bitwiseops>` operations. The constraints on operands are 3170 the same as those for the corresponding instruction (e.g. no bitwise 3171 operations on floating point values are allowed). 3172 3173Other Values 3174============ 3175 3176.. _inlineasmexprs: 3177 3178Inline Assembler Expressions 3179---------------------------- 3180 3181LLVM supports inline assembler expressions (as opposed to :ref:`Module-Level 3182Inline Assembly <moduleasm>`) through the use of a special value. This value 3183represents the inline assembler as a template string (containing the 3184instructions to emit), a list of operand constraints (stored as a string), a 3185flag that indicates whether or not the inline asm expression has side effects, 3186and a flag indicating whether the function containing the asm needs to align its 3187stack conservatively. 3188 3189The template string supports argument substitution of the operands using "``$``" 3190followed by a number, to indicate substitution of the given register/memory 3191location, as specified by the constraint string. "``${NUM:MODIFIER}``" may also 3192be used, where ``MODIFIER`` is a target-specific annotation for how to print the 3193operand (See :ref:`inline-asm-modifiers`). 3194 3195A literal "``$``" may be included by using "``$$``" in the template. To include 3196other special characters into the output, the usual "``\XX``" escapes may be 3197used, just as in other strings. Note that after template substitution, the 3198resulting assembly string is parsed by LLVM's integrated assembler unless it is 3199disabled -- even when emitting a ``.s`` file -- and thus must contain assembly 3200syntax known to LLVM. 3201 3202LLVM's support for inline asm is modeled closely on the requirements of Clang's 3203GCC-compatible inline-asm support. Thus, the feature-set and the constraint and 3204modifier codes listed here are similar or identical to those in GCC's inline asm 3205support. However, to be clear, the syntax of the template and constraint strings 3206described here is *not* the same as the syntax accepted by GCC and Clang, and, 3207while most constraint letters are passed through as-is by Clang, some get 3208translated to other codes when converting from the C source to the LLVM 3209assembly. 3210 3211An example inline assembler expression is: 3212 3213.. code-block:: llvm 3214 3215 i32 (i32) asm "bswap $0", "=r,r" 3216 3217Inline assembler expressions may **only** be used as the callee operand 3218of a :ref:`call <i_call>` or an :ref:`invoke <i_invoke>` instruction. 3219Thus, typically we have: 3220 3221.. code-block:: llvm 3222 3223 %X = call i32 asm "bswap $0", "=r,r"(i32 %Y) 3224 3225Inline asms with side effects not visible in the constraint list must be 3226marked as having side effects. This is done through the use of the 3227'``sideeffect``' keyword, like so: 3228 3229.. code-block:: llvm 3230 3231 call void asm sideeffect "eieio", ""() 3232 3233In some cases inline asms will contain code that will not work unless 3234the stack is aligned in some way, such as calls or SSE instructions on 3235x86, yet will not contain code that does that alignment within the asm. 3236The compiler should make conservative assumptions about what the asm 3237might contain and should generate its usual stack alignment code in the 3238prologue if the '``alignstack``' keyword is present: 3239 3240.. code-block:: llvm 3241 3242 call void asm alignstack "eieio", ""() 3243 3244Inline asms also support using non-standard assembly dialects. The 3245assumed dialect is ATT. When the '``inteldialect``' keyword is present, 3246the inline asm is using the Intel dialect. Currently, ATT and Intel are 3247the only supported dialects. An example is: 3248 3249.. code-block:: llvm 3250 3251 call void asm inteldialect "eieio", ""() 3252 3253If multiple keywords appear the '``sideeffect``' keyword must come 3254first, the '``alignstack``' keyword second and the '``inteldialect``' 3255keyword last. 3256 3257Inline Asm Constraint String 3258^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 3259 3260The constraint list is a comma-separated string, each element containing one or 3261more constraint codes. 3262 3263For each element in the constraint list an appropriate register or memory 3264operand will be chosen, and it will be made available to assembly template 3265string expansion as ``$0`` for the first constraint in the list, ``$1`` for the 3266second, etc. 3267 3268There are three different types of constraints, which are distinguished by a 3269prefix symbol in front of the constraint code: Output, Input, and Clobber. The 3270constraints must always be given in that order: outputs first, then inputs, then 3271clobbers. They cannot be intermingled. 3272 3273There are also three different categories of constraint codes: 3274 3275- Register constraint. This is either a register class, or a fixed physical 3276 register. This kind of constraint will allocate a register, and if necessary, 3277 bitcast the argument or result to the appropriate type. 3278- Memory constraint. This kind of constraint is for use with an instruction 3279 taking a memory operand. Different constraints allow for different addressing 3280 modes used by the target. 3281- Immediate value constraint. This kind of constraint is for an integer or other 3282 immediate value which can be rendered directly into an instruction. The 3283 various target-specific constraints allow the selection of a value in the 3284 proper range for the instruction you wish to use it with. 3285 3286Output constraints 3287"""""""""""""""""" 3288 3289Output constraints are specified by an "``=``" prefix (e.g. "``=r``"). This 3290indicates that the assembly will write to this operand, and the operand will 3291then be made available as a return value of the ``asm`` expression. Output 3292constraints do not consume an argument from the call instruction. (Except, see 3293below about indirect outputs). 3294 3295Normally, it is expected that no output locations are written to by the assembly 3296expression until *all* of the inputs have been read. As such, LLVM may assign 3297the same register to an output and an input. If this is not safe (e.g. if the 3298assembly contains two instructions, where the first writes to one output, and 3299the second reads an input and writes to a second output), then the "``&``" 3300modifier must be used (e.g. "``=&r``") to specify that the output is an 3301"early-clobber" output. Marking an output as "early-clobber" ensures that LLVM 3302will not use the same register for any inputs (other than an input tied to this 3303output). 3304 3305Input constraints 3306""""""""""""""""" 3307 3308Input constraints do not have a prefix -- just the constraint codes. Each input 3309constraint will consume one argument from the call instruction. It is not 3310permitted for the asm to write to any input register or memory location (unless 3311that input is tied to an output). Note also that multiple inputs may all be 3312assigned to the same register, if LLVM can determine that they necessarily all 3313contain the same value. 3314 3315Instead of providing a Constraint Code, input constraints may also "tie" 3316themselves to an output constraint, by providing an integer as the constraint 3317string. Tied inputs still consume an argument from the call instruction, and 3318take up a position in the asm template numbering as is usual -- they will simply 3319be constrained to always use the same register as the output they've been tied 3320to. For example, a constraint string of "``=r,0``" says to assign a register for 3321output, and use that register as an input as well (it being the 0'th 3322constraint). 3323 3324It is permitted to tie an input to an "early-clobber" output. In that case, no 3325*other* input may share the same register as the input tied to the early-clobber 3326(even when the other input has the same value). 3327 3328You may only tie an input to an output which has a register constraint, not a 3329memory constraint. Only a single input may be tied to an output. 3330 3331There is also an "interesting" feature which deserves a bit of explanation: if a 3332register class constraint allocates a register which is too small for the value 3333type operand provided as input, the input value will be split into multiple 3334registers, and all of them passed to the inline asm. 3335 3336However, this feature is often not as useful as you might think. 3337 3338Firstly, the registers are *not* guaranteed to be consecutive. So, on those 3339architectures that have instructions which operate on multiple consecutive 3340instructions, this is not an appropriate way to support them. (e.g. the 32-bit 3341SparcV8 has a 64-bit load, which instruction takes a single 32-bit register. The 3342hardware then loads into both the named register, and the next register. This 3343feature of inline asm would not be useful to support that.) 3344 3345A few of the targets provide a template string modifier allowing explicit access 3346to the second register of a two-register operand (e.g. MIPS ``L``, ``M``, and 3347``D``). On such an architecture, you can actually access the second allocated 3348register (yet, still, not any subsequent ones). But, in that case, you're still 3349probably better off simply splitting the value into two separate operands, for 3350clarity. (e.g. see the description of the ``A`` constraint on X86, which, 3351despite existing only for use with this feature, is not really a good idea to 3352use) 3353 3354Indirect inputs and outputs 3355""""""""""""""""""""""""""" 3356 3357Indirect output or input constraints can be specified by the "``*``" modifier 3358(which goes after the "``=``" in case of an output). This indicates that the asm 3359will write to or read from the contents of an *address* provided as an input 3360argument. (Note that in this way, indirect outputs act more like an *input* than 3361an output: just like an input, they consume an argument of the call expression, 3362rather than producing a return value. An indirect output constraint is an 3363"output" only in that the asm is expected to write to the contents of the input 3364memory location, instead of just read from it). 3365 3366This is most typically used for memory constraint, e.g. "``=*m``", to pass the 3367address of a variable as a value. 3368 3369It is also possible to use an indirect *register* constraint, but only on output 3370(e.g. "``=*r``"). This will cause LLVM to allocate a register for an output 3371value normally, and then, separately emit a store to the address provided as 3372input, after the provided inline asm. (It's not clear what value this 3373functionality provides, compared to writing the store explicitly after the asm 3374statement, and it can only produce worse code, since it bypasses many 3375optimization passes. I would recommend not using it.) 3376 3377 3378Clobber constraints 3379""""""""""""""""""" 3380 3381A clobber constraint is indicated by a "``~``" prefix. A clobber does not 3382consume an input operand, nor generate an output. Clobbers cannot use any of the 3383general constraint code letters -- they may use only explicit register 3384constraints, e.g. "``~{eax}``". The one exception is that a clobber string of 3385"``~{memory}``" indicates that the assembly writes to arbitrary undeclared 3386memory locations -- not only the memory pointed to by a declared indirect 3387output. 3388 3389Note that clobbering named registers that are also present in output 3390constraints is not legal. 3391 3392 3393Constraint Codes 3394"""""""""""""""" 3395After a potential prefix comes constraint code, or codes. 3396 3397A Constraint Code is either a single letter (e.g. "``r``"), a "``^``" character 3398followed by two letters (e.g. "``^wc``"), or "``{``" register-name "``}``" 3399(e.g. "``{eax}``"). 3400 3401The one and two letter constraint codes are typically chosen to be the same as 3402GCC's constraint codes. 3403 3404A single constraint may include one or more than constraint code in it, leaving 3405it up to LLVM to choose which one to use. This is included mainly for 3406compatibility with the translation of GCC inline asm coming from clang. 3407 3408There are two ways to specify alternatives, and either or both may be used in an 3409inline asm constraint list: 3410 34111) Append the codes to each other, making a constraint code set. E.g. "``im``" 3412 or "``{eax}m``". This means "choose any of the options in the set". The 3413 choice of constraint is made independently for each constraint in the 3414 constraint list. 3415 34162) Use "``|``" between constraint code sets, creating alternatives. Every 3417 constraint in the constraint list must have the same number of alternative 3418 sets. With this syntax, the same alternative in *all* of the items in the 3419 constraint list will be chosen together. 3420 3421Putting those together, you might have a two operand constraint string like 3422``"rm|r,ri|rm"``. This indicates that if operand 0 is ``r`` or ``m``, then 3423operand 1 may be one of ``r`` or ``i``. If operand 0 is ``r``, then operand 1 3424may be one of ``r`` or ``m``. But, operand 0 and 1 cannot both be of type m. 3425 3426However, the use of either of the alternatives features is *NOT* recommended, as 3427LLVM is not able to make an intelligent choice about which one to use. (At the 3428point it currently needs to choose, not enough information is available to do so 3429in a smart way.) Thus, it simply tries to make a choice that's most likely to 3430compile, not one that will be optimal performance. (e.g., given "``rm``", it'll 3431always choose to use memory, not registers). And, if given multiple registers, 3432or multiple register classes, it will simply choose the first one. (In fact, it 3433doesn't currently even ensure explicitly specified physical registers are 3434unique, so specifying multiple physical registers as alternatives, like 3435``{r11}{r12},{r11}{r12}``, will assign r11 to both operands, not at all what was 3436intended.) 3437 3438Supported Constraint Code List 3439"""""""""""""""""""""""""""""" 3440 3441The constraint codes are, in general, expected to behave the same way they do in 3442GCC. LLVM's support is often implemented on an 'as-needed' basis, to support C 3443inline asm code which was supported by GCC. A mismatch in behavior between LLVM 3444and GCC likely indicates a bug in LLVM. 3445 3446Some constraint codes are typically supported by all targets: 3447 3448- ``r``: A register in the target's general purpose register class. 3449- ``m``: A memory address operand. It is target-specific what addressing modes 3450 are supported, typical examples are register, or register + register offset, 3451 or register + immediate offset (of some target-specific size). 3452- ``i``: An integer constant (of target-specific width). Allows either a simple 3453 immediate, or a relocatable value. 3454- ``n``: An integer constant -- *not* including relocatable values. 3455- ``s``: An integer constant, but allowing *only* relocatable values. 3456- ``X``: Allows an operand of any kind, no constraint whatsoever. Typically 3457 useful to pass a label for an asm branch or call. 3458 3459 .. FIXME: but that surely isn't actually okay to jump out of an asm 3460 block without telling llvm about the control transfer???) 3461 3462- ``{register-name}``: Requires exactly the named physical register. 3463 3464Other constraints are target-specific: 3465 3466AArch64: 3467 3468- ``z``: An immediate integer 0. Outputs ``WZR`` or ``XZR``, as appropriate. 3469- ``I``: An immediate integer valid for an ``ADD`` or ``SUB`` instruction, 3470 i.e. 0 to 4095 with optional shift by 12. 3471- ``J``: An immediate integer that, when negated, is valid for an ``ADD`` or 3472 ``SUB`` instruction, i.e. -1 to -4095 with optional left shift by 12. 3473- ``K``: An immediate integer that is valid for the 'bitmask immediate 32' of a 3474 logical instruction like ``AND``, ``EOR``, or ``ORR`` with a 32-bit register. 3475- ``L``: An immediate integer that is valid for the 'bitmask immediate 64' of a 3476 logical instruction like ``AND``, ``EOR``, or ``ORR`` with a 64-bit register. 3477- ``M``: An immediate integer for use with the ``MOV`` assembly alias on a 3478 32-bit register. This is a superset of ``K``: in addition to the bitmask 3479 immediate, also allows immediate integers which can be loaded with a single 3480 ``MOVZ`` or ``MOVL`` instruction. 3481- ``N``: An immediate integer for use with the ``MOV`` assembly alias on a 3482 64-bit register. This is a superset of ``L``. 3483- ``Q``: Memory address operand must be in a single register (no 3484 offsets). (However, LLVM currently does this for the ``m`` constraint as 3485 well.) 3486- ``r``: A 32 or 64-bit integer register (W* or X*). 3487- ``w``: A 32, 64, or 128-bit floating-point/SIMD register. 3488- ``x``: A lower 128-bit floating-point/SIMD register (``V0`` to ``V15``). 3489 3490AMDGPU: 3491 3492- ``r``: A 32 or 64-bit integer register. 3493- ``[0-9]v``: The 32-bit VGPR register, number 0-9. 3494- ``[0-9]s``: The 32-bit SGPR register, number 0-9. 3495 3496 3497All ARM modes: 3498 3499- ``Q``, ``Um``, ``Un``, ``Uq``, ``Us``, ``Ut``, ``Uv``, ``Uy``: Memory address 3500 operand. Treated the same as operand ``m``, at the moment. 3501 3502ARM and ARM's Thumb2 mode: 3503 3504- ``j``: An immediate integer between 0 and 65535 (valid for ``MOVW``) 3505- ``I``: An immediate integer valid for a data-processing instruction. 3506- ``J``: An immediate integer between -4095 and 4095. 3507- ``K``: An immediate integer whose bitwise inverse is valid for a 3508 data-processing instruction. (Can be used with template modifier "``B``" to 3509 print the inverted value). 3510- ``L``: An immediate integer whose negation is valid for a data-processing 3511 instruction. (Can be used with template modifier "``n``" to print the negated 3512 value). 3513- ``M``: A power of two or a integer between 0 and 32. 3514- ``N``: Invalid immediate constraint. 3515- ``O``: Invalid immediate constraint. 3516- ``r``: A general-purpose 32-bit integer register (``r0-r15``). 3517- ``l``: In Thumb2 mode, low 32-bit GPR registers (``r0-r7``). In ARM mode, same 3518 as ``r``. 3519- ``h``: In Thumb2 mode, a high 32-bit GPR register (``r8-r15``). In ARM mode, 3520 invalid. 3521- ``w``: A 32, 64, or 128-bit floating-point/SIMD register: ``s0-s31``, 3522 ``d0-d31``, or ``q0-q15``. 3523- ``x``: A 32, 64, or 128-bit floating-point/SIMD register: ``s0-s15``, 3524 ``d0-d7``, or ``q0-q3``. 3525- ``t``: A floating-point/SIMD register, only supports 32-bit values: 3526 ``s0-s31``. 3527 3528ARM's Thumb1 mode: 3529 3530- ``I``: An immediate integer between 0 and 255. 3531- ``J``: An immediate integer between -255 and -1. 3532- ``K``: An immediate integer between 0 and 255, with optional left-shift by 3533 some amount. 3534- ``L``: An immediate integer between -7 and 7. 3535- ``M``: An immediate integer which is a multiple of 4 between 0 and 1020. 3536- ``N``: An immediate integer between 0 and 31. 3537- ``O``: An immediate integer which is a multiple of 4 between -508 and 508. 3538- ``r``: A low 32-bit GPR register (``r0-r7``). 3539- ``l``: A low 32-bit GPR register (``r0-r7``). 3540- ``h``: A high GPR register (``r0-r7``). 3541- ``w``: A 32, 64, or 128-bit floating-point/SIMD register: ``s0-s31``, 3542 ``d0-d31``, or ``q0-q15``. 3543- ``x``: A 32, 64, or 128-bit floating-point/SIMD register: ``s0-s15``, 3544 ``d0-d7``, or ``q0-q3``. 3545- ``t``: A floating-point/SIMD register, only supports 32-bit values: 3546 ``s0-s31``. 3547 3548 3549Hexagon: 3550 3551- ``o``, ``v``: A memory address operand, treated the same as constraint ``m``, 3552 at the moment. 3553- ``r``: A 32 or 64-bit register. 3554 3555MSP430: 3556 3557- ``r``: An 8 or 16-bit register. 3558 3559MIPS: 3560 3561- ``I``: An immediate signed 16-bit integer. 3562- ``J``: An immediate integer zero. 3563- ``K``: An immediate unsigned 16-bit integer. 3564- ``L``: An immediate 32-bit integer, where the lower 16 bits are 0. 3565- ``N``: An immediate integer between -65535 and -1. 3566- ``O``: An immediate signed 15-bit integer. 3567- ``P``: An immediate integer between 1 and 65535. 3568- ``m``: A memory address operand. In MIPS-SE mode, allows a base address 3569 register plus 16-bit immediate offset. In MIPS mode, just a base register. 3570- ``R``: A memory address operand. In MIPS-SE mode, allows a base address 3571 register plus a 9-bit signed offset. In MIPS mode, the same as constraint 3572 ``m``. 3573- ``ZC``: A memory address operand, suitable for use in a ``pref``, ``ll``, or 3574 ``sc`` instruction on the given subtarget (details vary). 3575- ``r``, ``d``, ``y``: A 32 or 64-bit GPR register. 3576- ``f``: A 32 or 64-bit FPU register (``F0-F31``), or a 128-bit MSA register 3577 (``W0-W31``). In the case of MSA registers, it is recommended to use the ``w`` 3578 argument modifier for compatibility with GCC. 3579- ``c``: A 32-bit or 64-bit GPR register suitable for indirect jump (always 3580 ``25``). 3581- ``l``: The ``lo`` register, 32 or 64-bit. 3582- ``x``: Invalid. 3583 3584NVPTX: 3585 3586- ``b``: A 1-bit integer register. 3587- ``c`` or ``h``: A 16-bit integer register. 3588- ``r``: A 32-bit integer register. 3589- ``l`` or ``N``: A 64-bit integer register. 3590- ``f``: A 32-bit float register. 3591- ``d``: A 64-bit float register. 3592 3593 3594PowerPC: 3595 3596- ``I``: An immediate signed 16-bit integer. 3597- ``J``: An immediate unsigned 16-bit integer, shifted left 16 bits. 3598- ``K``: An immediate unsigned 16-bit integer. 3599- ``L``: An immediate signed 16-bit integer, shifted left 16 bits. 3600- ``M``: An immediate integer greater than 31. 3601- ``N``: An immediate integer that is an exact power of 2. 3602- ``O``: The immediate integer constant 0. 3603- ``P``: An immediate integer constant whose negation is a signed 16-bit 3604 constant. 3605- ``es``, ``o``, ``Q``, ``Z``, ``Zy``: A memory address operand, currently 3606 treated the same as ``m``. 3607- ``r``: A 32 or 64-bit integer register. 3608- ``b``: A 32 or 64-bit integer register, excluding ``R0`` (that is: 3609 ``R1-R31``). 3610- ``f``: A 32 or 64-bit float register (``F0-F31``), or when QPX is enabled, a 3611 128 or 256-bit QPX register (``Q0-Q31``; aliases the ``F`` registers). 3612- ``v``: For ``4 x f32`` or ``4 x f64`` types, when QPX is enabled, a 3613 128 or 256-bit QPX register (``Q0-Q31``), otherwise a 128-bit 3614 altivec vector register (``V0-V31``). 3615 3616 .. FIXME: is this a bug that v accepts QPX registers? I think this 3617 is supposed to only use the altivec vector registers? 3618 3619- ``y``: Condition register (``CR0-CR7``). 3620- ``wc``: An individual CR bit in a CR register. 3621- ``wa``, ``wd``, ``wf``: Any 128-bit VSX vector register, from the full VSX 3622 register set (overlapping both the floating-point and vector register files). 3623- ``ws``: A 32 or 64-bit floating point register, from the full VSX register 3624 set. 3625 3626Sparc: 3627 3628- ``I``: An immediate 13-bit signed integer. 3629- ``r``: A 32-bit integer register. 3630 3631SystemZ: 3632 3633- ``I``: An immediate unsigned 8-bit integer. 3634- ``J``: An immediate unsigned 12-bit integer. 3635- ``K``: An immediate signed 16-bit integer. 3636- ``L``: An immediate signed 20-bit integer. 3637- ``M``: An immediate integer 0x7fffffff. 3638- ``Q``: A memory address operand with a base address and a 12-bit immediate 3639 unsigned displacement. 3640- ``R``: A memory address operand with a base address, a 12-bit immediate 3641 unsigned displacement, and an index register. 3642- ``S``: A memory address operand with a base address and a 20-bit immediate 3643 signed displacement. 3644- ``T``: A memory address operand with a base address, a 20-bit immediate 3645 signed displacement, and an index register. 3646- ``r`` or ``d``: A 32, 64, or 128-bit integer register. 3647- ``a``: A 32, 64, or 128-bit integer address register (excludes R0, which in an 3648 address context evaluates as zero). 3649- ``h``: A 32-bit value in the high part of a 64bit data register 3650 (LLVM-specific) 3651- ``f``: A 32, 64, or 128-bit floating point register. 3652 3653X86: 3654 3655- ``I``: An immediate integer between 0 and 31. 3656- ``J``: An immediate integer between 0 and 64. 3657- ``K``: An immediate signed 8-bit integer. 3658- ``L``: An immediate integer, 0xff or 0xffff or (in 64-bit mode only) 3659 0xffffffff. 3660- ``M``: An immediate integer between 0 and 3. 3661- ``N``: An immediate unsigned 8-bit integer. 3662- ``O``: An immediate integer between 0 and 127. 3663- ``e``: An immediate 32-bit signed integer. 3664- ``Z``: An immediate 32-bit unsigned integer. 3665- ``o``, ``v``: Treated the same as ``m``, at the moment. 3666- ``q``: An 8, 16, 32, or 64-bit register which can be accessed as an 8-bit 3667 ``l`` integer register. On X86-32, this is the ``a``, ``b``, ``c``, and ``d`` 3668 registers, and on X86-64, it is all of the integer registers. 3669- ``Q``: An 8, 16, 32, or 64-bit register which can be accessed as an 8-bit 3670 ``h`` integer register. This is the ``a``, ``b``, ``c``, and ``d`` registers. 3671- ``r`` or ``l``: An 8, 16, 32, or 64-bit integer register. 3672- ``R``: An 8, 16, 32, or 64-bit "legacy" integer register -- one which has 3673 existed since i386, and can be accessed without the REX prefix. 3674- ``f``: A 32, 64, or 80-bit '387 FPU stack pseudo-register. 3675- ``y``: A 64-bit MMX register, if MMX is enabled. 3676- ``x``: If SSE is enabled: a 32 or 64-bit scalar operand, or 128-bit vector 3677 operand in a SSE register. If AVX is also enabled, can also be a 256-bit 3678 vector operand in an AVX register. If AVX-512 is also enabled, can also be a 3679 512-bit vector operand in an AVX512 register, Otherwise, an error. 3680- ``Y``: The same as ``x``, if *SSE2* is enabled, otherwise an error. 3681- ``A``: Special case: allocates EAX first, then EDX, for a single operand (in 3682 32-bit mode, a 64-bit integer operand will get split into two registers). It 3683 is not recommended to use this constraint, as in 64-bit mode, the 64-bit 3684 operand will get allocated only to RAX -- if two 32-bit operands are needed, 3685 you're better off splitting it yourself, before passing it to the asm 3686 statement. 3687 3688XCore: 3689 3690- ``r``: A 32-bit integer register. 3691 3692 3693.. _inline-asm-modifiers: 3694 3695Asm template argument modifiers 3696^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 3697 3698In the asm template string, modifiers can be used on the operand reference, like 3699"``${0:n}``". 3700 3701The modifiers are, in general, expected to behave the same way they do in 3702GCC. LLVM's support is often implemented on an 'as-needed' basis, to support C 3703inline asm code which was supported by GCC. A mismatch in behavior between LLVM 3704and GCC likely indicates a bug in LLVM. 3705 3706Target-independent: 3707 3708- ``c``: Print an immediate integer constant unadorned, without 3709 the target-specific immediate punctuation (e.g. no ``$`` prefix). 3710- ``n``: Negate and print immediate integer constant unadorned, without the 3711 target-specific immediate punctuation (e.g. no ``$`` prefix). 3712- ``l``: Print as an unadorned label, without the target-specific label 3713 punctuation (e.g. no ``$`` prefix). 3714 3715AArch64: 3716 3717- ``w``: Print a GPR register with a ``w*`` name instead of ``x*`` name. E.g., 3718 instead of ``x30``, print ``w30``. 3719- ``x``: Print a GPR register with a ``x*`` name. (this is the default, anyhow). 3720- ``b``, ``h``, ``s``, ``d``, ``q``: Print a floating-point/SIMD register with a 3721 ``b*``, ``h*``, ``s*``, ``d*``, or ``q*`` name, rather than the default of 3722 ``v*``. 3723 3724AMDGPU: 3725 3726- ``r``: No effect. 3727 3728ARM: 3729 3730- ``a``: Print an operand as an address (with ``[`` and ``]`` surrounding a 3731 register). 3732- ``P``: No effect. 3733- ``q``: No effect. 3734- ``y``: Print a VFP single-precision register as an indexed double (e.g. print 3735 as ``d4[1]`` instead of ``s9``) 3736- ``B``: Bitwise invert and print an immediate integer constant without ``#`` 3737 prefix. 3738- ``L``: Print the low 16-bits of an immediate integer constant. 3739- ``M``: Print as a register set suitable for ldm/stm. Also prints *all* 3740 register operands subsequent to the specified one (!), so use carefully. 3741- ``Q``: Print the low-order register of a register-pair, or the low-order 3742 register of a two-register operand. 3743- ``R``: Print the high-order register of a register-pair, or the high-order 3744 register of a two-register operand. 3745- ``H``: Print the second register of a register-pair. (On a big-endian system, 3746 ``H`` is equivalent to ``Q``, and on little-endian system, ``H`` is equivalent 3747 to ``R``.) 3748 3749 .. FIXME: H doesn't currently support printing the second register 3750 of a two-register operand. 3751 3752- ``e``: Print the low doubleword register of a NEON quad register. 3753- ``f``: Print the high doubleword register of a NEON quad register. 3754- ``m``: Print the base register of a memory operand without the ``[`` and ``]`` 3755 adornment. 3756 3757Hexagon: 3758 3759- ``L``: Print the second register of a two-register operand. Requires that it 3760 has been allocated consecutively to the first. 3761 3762 .. FIXME: why is it restricted to consecutive ones? And there's 3763 nothing that ensures that happens, is there? 3764 3765- ``I``: Print the letter 'i' if the operand is an integer constant, otherwise 3766 nothing. Used to print 'addi' vs 'add' instructions. 3767 3768MSP430: 3769 3770No additional modifiers. 3771 3772MIPS: 3773 3774- ``X``: Print an immediate integer as hexadecimal 3775- ``x``: Print the low 16 bits of an immediate integer as hexadecimal. 3776- ``d``: Print an immediate integer as decimal. 3777- ``m``: Subtract one and print an immediate integer as decimal. 3778- ``z``: Print $0 if an immediate zero, otherwise print normally. 3779- ``L``: Print the low-order register of a two-register operand, or prints the 3780 address of the low-order word of a double-word memory operand. 3781 3782 .. FIXME: L seems to be missing memory operand support. 3783 3784- ``M``: Print the high-order register of a two-register operand, or prints the 3785 address of the high-order word of a double-word memory operand. 3786 3787 .. FIXME: M seems to be missing memory operand support. 3788 3789- ``D``: Print the second register of a two-register operand, or prints the 3790 second word of a double-word memory operand. (On a big-endian system, ``D`` is 3791 equivalent to ``L``, and on little-endian system, ``D`` is equivalent to 3792 ``M``.) 3793- ``w``: No effect. Provided for compatibility with GCC which requires this 3794 modifier in order to print MSA registers (``W0-W31``) with the ``f`` 3795 constraint. 3796 3797NVPTX: 3798 3799- ``r``: No effect. 3800 3801PowerPC: 3802 3803- ``L``: Print the second register of a two-register operand. Requires that it 3804 has been allocated consecutively to the first. 3805 3806 .. FIXME: why is it restricted to consecutive ones? And there's 3807 nothing that ensures that happens, is there? 3808 3809- ``I``: Print the letter 'i' if the operand is an integer constant, otherwise 3810 nothing. Used to print 'addi' vs 'add' instructions. 3811- ``y``: For a memory operand, prints formatter for a two-register X-form 3812 instruction. (Currently always prints ``r0,OPERAND``). 3813- ``U``: Prints 'u' if the memory operand is an update form, and nothing 3814 otherwise. (NOTE: LLVM does not support update form, so this will currently 3815 always print nothing) 3816- ``X``: Prints 'x' if the memory operand is an indexed form. (NOTE: LLVM does 3817 not support indexed form, so this will currently always print nothing) 3818 3819Sparc: 3820 3821- ``r``: No effect. 3822 3823SystemZ: 3824 3825SystemZ implements only ``n``, and does *not* support any of the other 3826target-independent modifiers. 3827 3828X86: 3829 3830- ``c``: Print an unadorned integer or symbol name. (The latter is 3831 target-specific behavior for this typically target-independent modifier). 3832- ``A``: Print a register name with a '``*``' before it. 3833- ``b``: Print an 8-bit register name (e.g. ``al``); do nothing on a memory 3834 operand. 3835- ``h``: Print the upper 8-bit register name (e.g. ``ah``); do nothing on a 3836 memory operand. 3837- ``w``: Print the 16-bit register name (e.g. ``ax``); do nothing on a memory 3838 operand. 3839- ``k``: Print the 32-bit register name (e.g. ``eax``); do nothing on a memory 3840 operand. 3841- ``q``: Print the 64-bit register name (e.g. ``rax``), if 64-bit registers are 3842 available, otherwise the 32-bit register name; do nothing on a memory operand. 3843- ``n``: Negate and print an unadorned integer, or, for operands other than an 3844 immediate integer (e.g. a relocatable symbol expression), print a '-' before 3845 the operand. (The behavior for relocatable symbol expressions is a 3846 target-specific behavior for this typically target-independent modifier) 3847- ``H``: Print a memory reference with additional offset +8. 3848- ``P``: Print a memory reference or operand for use as the argument of a call 3849 instruction. (E.g. omit ``(rip)``, even though it's PC-relative.) 3850 3851XCore: 3852 3853No additional modifiers. 3854 3855 3856Inline Asm Metadata 3857^^^^^^^^^^^^^^^^^^^ 3858 3859The call instructions that wrap inline asm nodes may have a 3860"``!srcloc``" MDNode attached to it that contains a list of constant 3861integers. If present, the code generator will use the integer as the 3862location cookie value when report errors through the ``LLVMContext`` 3863error reporting mechanisms. This allows a front-end to correlate backend 3864errors that occur with inline asm back to the source code that produced 3865it. For example: 3866 3867.. code-block:: llvm 3868 3869 call void asm sideeffect "something bad", ""(), !srcloc !42 3870 ... 3871 !42 = !{ i32 1234567 } 3872 3873It is up to the front-end to make sense of the magic numbers it places 3874in the IR. If the MDNode contains multiple constants, the code generator 3875will use the one that corresponds to the line of the asm that the error 3876occurs on. 3877 3878.. _metadata: 3879 3880Metadata 3881======== 3882 3883LLVM IR allows metadata to be attached to instructions in the program 3884that can convey extra information about the code to the optimizers and 3885code generator. One example application of metadata is source-level 3886debug information. There are two metadata primitives: strings and nodes. 3887 3888Metadata does not have a type, and is not a value. If referenced from a 3889``call`` instruction, it uses the ``metadata`` type. 3890 3891All metadata are identified in syntax by a exclamation point ('``!``'). 3892 3893.. _metadata-string: 3894 3895Metadata Nodes and Metadata Strings 3896----------------------------------- 3897 3898A metadata string is a string surrounded by double quotes. It can 3899contain any character by escaping non-printable characters with 3900"``\xx``" where "``xx``" is the two digit hex code. For example: 3901"``!"test\00"``". 3902 3903Metadata nodes are represented with notation similar to structure 3904constants (a comma separated list of elements, surrounded by braces and 3905preceded by an exclamation point). Metadata nodes can have any values as 3906their operand. For example: 3907 3908.. code-block:: llvm 3909 3910 !{ !"test\00", i32 10} 3911 3912Metadata nodes that aren't uniqued use the ``distinct`` keyword. For example: 3913 3914.. code-block:: text 3915 3916 !0 = distinct !{!"test\00", i32 10} 3917 3918``distinct`` nodes are useful when nodes shouldn't be merged based on their 3919content. They can also occur when transformations cause uniquing collisions 3920when metadata operands change. 3921 3922A :ref:`named metadata <namedmetadatastructure>` is a collection of 3923metadata nodes, which can be looked up in the module symbol table. For 3924example: 3925 3926.. code-block:: llvm 3927 3928 !foo = !{!4, !3} 3929 3930Metadata can be used as function arguments. Here ``llvm.dbg.value`` 3931function is using two metadata arguments: 3932 3933.. code-block:: llvm 3934 3935 call void @llvm.dbg.value(metadata !24, i64 0, metadata !25) 3936 3937Metadata can be attached to an instruction. Here metadata ``!21`` is attached 3938to the ``add`` instruction using the ``!dbg`` identifier: 3939 3940.. code-block:: llvm 3941 3942 %indvar.next = add i64 %indvar, 1, !dbg !21 3943 3944Metadata can also be attached to a function definition. Here metadata ``!22`` 3945is attached to the ``foo`` function using the ``!dbg`` identifier: 3946 3947.. code-block:: llvm 3948 3949 define void @foo() !dbg !22 { 3950 ret void 3951 } 3952 3953More information about specific metadata nodes recognized by the 3954optimizers and code generator is found below. 3955 3956.. _specialized-metadata: 3957 3958Specialized Metadata Nodes 3959^^^^^^^^^^^^^^^^^^^^^^^^^^ 3960 3961Specialized metadata nodes are custom data structures in metadata (as opposed 3962to generic tuples). Their fields are labelled, and can be specified in any 3963order. 3964 3965These aren't inherently debug info centric, but currently all the specialized 3966metadata nodes are related to debug info. 3967 3968.. _DICompileUnit: 3969 3970DICompileUnit 3971""""""""""""" 3972 3973``DICompileUnit`` nodes represent a compile unit. The ``enums:``, 3974``retainedTypes:``, ``subprograms:``, ``globals:``, ``imports:`` and ``macros:`` 3975fields are tuples containing the debug info to be emitted along with the compile 3976unit, regardless of code optimizations (some nodes are only emitted if there are 3977references to them from instructions). 3978 3979.. code-block:: text 3980 3981 !0 = !DICompileUnit(language: DW_LANG_C99, file: !1, producer: "clang", 3982 isOptimized: true, flags: "-O2", runtimeVersion: 2, 3983 splitDebugFilename: "abc.debug", emissionKind: FullDebug, 3984 enums: !2, retainedTypes: !3, subprograms: !4, 3985 globals: !5, imports: !6, macros: !7, dwoId: 0x0abcd) 3986 3987Compile unit descriptors provide the root scope for objects declared in a 3988specific compilation unit. File descriptors are defined using this scope. 3989These descriptors are collected by a named metadata ``!llvm.dbg.cu``. They 3990keep track of subprograms, global variables, type information, and imported 3991entities (declarations and namespaces). 3992 3993.. _DIFile: 3994 3995DIFile 3996"""""" 3997 3998``DIFile`` nodes represent files. The ``filename:`` can include slashes. 3999 4000.. code-block:: llvm 4001 4002 !0 = !DIFile(filename: "path/to/file", directory: "/path/to/dir", 4003 checksumkind: CSK_MD5, 4004 checksum: "000102030405060708090a0b0c0d0e0f") 4005 4006Files are sometimes used in ``scope:`` fields, and are the only valid target 4007for ``file:`` fields. 4008Valid values for ``checksumkind:`` field are: {CSK_None, CSK_MD5, CSK_SHA1} 4009 4010.. _DIBasicType: 4011 4012DIBasicType 4013""""""""""" 4014 4015``DIBasicType`` nodes represent primitive types, such as ``int``, ``bool`` and 4016``float``. ``tag:`` defaults to ``DW_TAG_base_type``. 4017 4018.. code-block:: text 4019 4020 !0 = !DIBasicType(name: "unsigned char", size: 8, align: 8, 4021 encoding: DW_ATE_unsigned_char) 4022 !1 = !DIBasicType(tag: DW_TAG_unspecified_type, name: "decltype(nullptr)") 4023 4024The ``encoding:`` describes the details of the type. Usually it's one of the 4025following: 4026 4027.. code-block:: text 4028 4029 DW_ATE_address = 1 4030 DW_ATE_boolean = 2 4031 DW_ATE_float = 4 4032 DW_ATE_signed = 5 4033 DW_ATE_signed_char = 6 4034 DW_ATE_unsigned = 7 4035 DW_ATE_unsigned_char = 8 4036 4037.. _DISubroutineType: 4038 4039DISubroutineType 4040"""""""""""""""" 4041 4042``DISubroutineType`` nodes represent subroutine types. Their ``types:`` field 4043refers to a tuple; the first operand is the return type, while the rest are the 4044types of the formal arguments in order. If the first operand is ``null``, that 4045represents a function with no return value (such as ``void foo() {}`` in C++). 4046 4047.. code-block:: text 4048 4049 !0 = !BasicType(name: "int", size: 32, align: 32, DW_ATE_signed) 4050 !1 = !BasicType(name: "char", size: 8, align: 8, DW_ATE_signed_char) 4051 !2 = !DISubroutineType(types: !{null, !0, !1}) ; void (int, char) 4052 4053.. _DIDerivedType: 4054 4055DIDerivedType 4056""""""""""""" 4057 4058``DIDerivedType`` nodes represent types derived from other types, such as 4059qualified types. 4060 4061.. code-block:: text 4062 4063 !0 = !DIBasicType(name: "unsigned char", size: 8, align: 8, 4064 encoding: DW_ATE_unsigned_char) 4065 !1 = !DIDerivedType(tag: DW_TAG_pointer_type, baseType: !0, size: 32, 4066 align: 32) 4067 4068The following ``tag:`` values are valid: 4069 4070.. code-block:: text 4071 4072 DW_TAG_member = 13 4073 DW_TAG_pointer_type = 15 4074 DW_TAG_reference_type = 16 4075 DW_TAG_typedef = 22 4076 DW_TAG_inheritance = 28 4077 DW_TAG_ptr_to_member_type = 31 4078 DW_TAG_const_type = 38 4079 DW_TAG_friend = 42 4080 DW_TAG_volatile_type = 53 4081 DW_TAG_restrict_type = 55 4082 DW_TAG_atomic_type = 71 4083 4084.. _DIDerivedTypeMember: 4085 4086``DW_TAG_member`` is used to define a member of a :ref:`composite type 4087<DICompositeType>`. The type of the member is the ``baseType:``. The 4088``offset:`` is the member's bit offset. If the composite type has an ODR 4089``identifier:`` and does not set ``flags: DIFwdDecl``, then the member is 4090uniqued based only on its ``name:`` and ``scope:``. 4091 4092``DW_TAG_inheritance`` and ``DW_TAG_friend`` are used in the ``elements:`` 4093field of :ref:`composite types <DICompositeType>` to describe parents and 4094friends. 4095 4096``DW_TAG_typedef`` is used to provide a name for the ``baseType:``. 4097 4098``DW_TAG_pointer_type``, ``DW_TAG_reference_type``, ``DW_TAG_const_type``, 4099``DW_TAG_volatile_type``, ``DW_TAG_restrict_type`` and ``DW_TAG_atomic_type`` 4100are used to qualify the ``baseType:``. 4101 4102Note that the ``void *`` type is expressed as a type derived from NULL. 4103 4104.. _DICompositeType: 4105 4106DICompositeType 4107""""""""""""""" 4108 4109``DICompositeType`` nodes represent types composed of other types, like 4110structures and unions. ``elements:`` points to a tuple of the composed types. 4111 4112If the source language supports ODR, the ``identifier:`` field gives the unique 4113identifier used for type merging between modules. When specified, 4114:ref:`subprogram declarations <DISubprogramDeclaration>` and :ref:`member 4115derived types <DIDerivedTypeMember>` that reference the ODR-type in their 4116``scope:`` change uniquing rules. 4117 4118For a given ``identifier:``, there should only be a single composite type that 4119does not have ``flags: DIFlagFwdDecl`` set. LLVM tools that link modules 4120together will unique such definitions at parse time via the ``identifier:`` 4121field, even if the nodes are ``distinct``. 4122 4123.. code-block:: text 4124 4125 !0 = !DIEnumerator(name: "SixKind", value: 7) 4126 !1 = !DIEnumerator(name: "SevenKind", value: 7) 4127 !2 = !DIEnumerator(name: "NegEightKind", value: -8) 4128 !3 = !DICompositeType(tag: DW_TAG_enumeration_type, name: "Enum", file: !12, 4129 line: 2, size: 32, align: 32, identifier: "_M4Enum", 4130 elements: !{!0, !1, !2}) 4131 4132The following ``tag:`` values are valid: 4133 4134.. code-block:: text 4135 4136 DW_TAG_array_type = 1 4137 DW_TAG_class_type = 2 4138 DW_TAG_enumeration_type = 4 4139 DW_TAG_structure_type = 19 4140 DW_TAG_union_type = 23 4141 4142For ``DW_TAG_array_type``, the ``elements:`` should be :ref:`subrange 4143descriptors <DISubrange>`, each representing the range of subscripts at that 4144level of indexing. The ``DIFlagVector`` flag to ``flags:`` indicates that an 4145array type is a native packed vector. 4146 4147For ``DW_TAG_enumeration_type``, the ``elements:`` should be :ref:`enumerator 4148descriptors <DIEnumerator>`, each representing the definition of an enumeration 4149value for the set. All enumeration type descriptors are collected in the 4150``enums:`` field of the :ref:`compile unit <DICompileUnit>`. 4151 4152For ``DW_TAG_structure_type``, ``DW_TAG_class_type``, and 4153``DW_TAG_union_type``, the ``elements:`` should be :ref:`derived types 4154<DIDerivedType>` with ``tag: DW_TAG_member``, ``tag: DW_TAG_inheritance``, or 4155``tag: DW_TAG_friend``; or :ref:`subprograms <DISubprogram>` with 4156``isDefinition: false``. 4157 4158.. _DISubrange: 4159 4160DISubrange 4161"""""""""" 4162 4163``DISubrange`` nodes are the elements for ``DW_TAG_array_type`` variants of 4164:ref:`DICompositeType`. ``count: -1`` indicates an empty array. 4165 4166.. code-block:: llvm 4167 4168 !0 = !DISubrange(count: 5, lowerBound: 0) ; array counting from 0 4169 !1 = !DISubrange(count: 5, lowerBound: 1) ; array counting from 1 4170 !2 = !DISubrange(count: -1) ; empty array. 4171 4172.. _DIEnumerator: 4173 4174DIEnumerator 4175"""""""""""" 4176 4177``DIEnumerator`` nodes are the elements for ``DW_TAG_enumeration_type`` 4178variants of :ref:`DICompositeType`. 4179 4180.. code-block:: llvm 4181 4182 !0 = !DIEnumerator(name: "SixKind", value: 7) 4183 !1 = !DIEnumerator(name: "SevenKind", value: 7) 4184 !2 = !DIEnumerator(name: "NegEightKind", value: -8) 4185 4186DITemplateTypeParameter 4187""""""""""""""""""""""" 4188 4189``DITemplateTypeParameter`` nodes represent type parameters to generic source 4190language constructs. They are used (optionally) in :ref:`DICompositeType` and 4191:ref:`DISubprogram` ``templateParams:`` fields. 4192 4193.. code-block:: llvm 4194 4195 !0 = !DITemplateTypeParameter(name: "Ty", type: !1) 4196 4197DITemplateValueParameter 4198"""""""""""""""""""""""" 4199 4200``DITemplateValueParameter`` nodes represent value parameters to generic source 4201language constructs. ``tag:`` defaults to ``DW_TAG_template_value_parameter``, 4202but if specified can also be set to ``DW_TAG_GNU_template_template_param`` or 4203``DW_TAG_GNU_template_param_pack``. They are used (optionally) in 4204:ref:`DICompositeType` and :ref:`DISubprogram` ``templateParams:`` fields. 4205 4206.. code-block:: llvm 4207 4208 !0 = !DITemplateValueParameter(name: "Ty", type: !1, value: i32 7) 4209 4210DINamespace 4211""""""""""" 4212 4213``DINamespace`` nodes represent namespaces in the source language. 4214 4215.. code-block:: llvm 4216 4217 !0 = !DINamespace(name: "myawesomeproject", scope: !1, file: !2, line: 7) 4218 4219DIGlobalVariable 4220"""""""""""""""" 4221 4222``DIGlobalVariable`` nodes represent global variables in the source language. 4223 4224.. code-block:: llvm 4225 4226 !0 = !DIGlobalVariable(name: "foo", linkageName: "foo", scope: !1, 4227 file: !2, line: 7, type: !3, isLocal: true, 4228 isDefinition: false, variable: i32* @foo, 4229 declaration: !4) 4230 4231All global variables should be referenced by the `globals:` field of a 4232:ref:`compile unit <DICompileUnit>`. 4233 4234.. _DISubprogram: 4235 4236DISubprogram 4237"""""""""""" 4238 4239``DISubprogram`` nodes represent functions from the source language. A 4240``DISubprogram`` may be attached to a function definition using ``!dbg`` 4241metadata. The ``variables:`` field points at :ref:`variables <DILocalVariable>` 4242that must be retained, even if their IR counterparts are optimized out of 4243the IR. The ``type:`` field must point at an :ref:`DISubroutineType`. 4244 4245.. _DISubprogramDeclaration: 4246 4247When ``isDefinition: false``, subprograms describe a declaration in the type 4248tree as opposed to a definition of a function. If the scope is a composite 4249type with an ODR ``identifier:`` and that does not set ``flags: DIFwdDecl``, 4250then the subprogram declaration is uniqued based only on its ``linkageName:`` 4251and ``scope:``. 4252 4253.. code-block:: text 4254 4255 define void @_Z3foov() !dbg !0 { 4256 ... 4257 } 4258 4259 !0 = distinct !DISubprogram(name: "foo", linkageName: "_Zfoov", scope: !1, 4260 file: !2, line: 7, type: !3, isLocal: true, 4261 isDefinition: true, scopeLine: 8, 4262 containingType: !4, 4263 virtuality: DW_VIRTUALITY_pure_virtual, 4264 virtualIndex: 10, flags: DIFlagPrototyped, 4265 isOptimized: true, templateParams: !5, 4266 declaration: !6, variables: !7) 4267 4268.. _DILexicalBlock: 4269 4270DILexicalBlock 4271"""""""""""""" 4272 4273``DILexicalBlock`` nodes describe nested blocks within a :ref:`subprogram 4274<DISubprogram>`. The line number and column numbers are used to distinguish 4275two lexical blocks at same depth. They are valid targets for ``scope:`` 4276fields. 4277 4278.. code-block:: text 4279 4280 !0 = distinct !DILexicalBlock(scope: !1, file: !2, line: 7, column: 35) 4281 4282Usually lexical blocks are ``distinct`` to prevent node merging based on 4283operands. 4284 4285.. _DILexicalBlockFile: 4286 4287DILexicalBlockFile 4288"""""""""""""""""" 4289 4290``DILexicalBlockFile`` nodes are used to discriminate between sections of a 4291:ref:`lexical block <DILexicalBlock>`. The ``file:`` field can be changed to 4292indicate textual inclusion, or the ``discriminator:`` field can be used to 4293discriminate between control flow within a single block in the source language. 4294 4295.. code-block:: llvm 4296 4297 !0 = !DILexicalBlock(scope: !3, file: !4, line: 7, column: 35) 4298 !1 = !DILexicalBlockFile(scope: !0, file: !4, discriminator: 0) 4299 !2 = !DILexicalBlockFile(scope: !0, file: !4, discriminator: 1) 4300 4301.. _DILocation: 4302 4303DILocation 4304"""""""""" 4305 4306``DILocation`` nodes represent source debug locations. The ``scope:`` field is 4307mandatory, and points at an :ref:`DILexicalBlockFile`, an 4308:ref:`DILexicalBlock`, or an :ref:`DISubprogram`. 4309 4310.. code-block:: llvm 4311 4312 !0 = !DILocation(line: 2900, column: 42, scope: !1, inlinedAt: !2) 4313 4314.. _DILocalVariable: 4315 4316DILocalVariable 4317""""""""""""""" 4318 4319``DILocalVariable`` nodes represent local variables in the source language. If 4320the ``arg:`` field is set to non-zero, then this variable is a subprogram 4321parameter, and it will be included in the ``variables:`` field of its 4322:ref:`DISubprogram`. 4323 4324.. code-block:: text 4325 4326 !0 = !DILocalVariable(name: "this", arg: 1, scope: !3, file: !2, line: 7, 4327 type: !3, flags: DIFlagArtificial) 4328 !1 = !DILocalVariable(name: "x", arg: 2, scope: !4, file: !2, line: 7, 4329 type: !3) 4330 !2 = !DILocalVariable(name: "y", scope: !5, file: !2, line: 7, type: !3) 4331 4332DIExpression 4333"""""""""""" 4334 4335``DIExpression`` nodes represent DWARF expression sequences. They are used in 4336:ref:`debug intrinsics<dbg_intrinsics>` (such as ``llvm.dbg.declare``) to 4337describe how the referenced LLVM variable relates to the source language 4338variable. 4339 4340The current supported vocabulary is limited: 4341 4342- ``DW_OP_deref`` dereferences the working expression. 4343- ``DW_OP_plus, 93`` adds ``93`` to the working expression. 4344- ``DW_OP_bit_piece, 16, 8`` specifies the offset and size (``16`` and ``8`` 4345 here, respectively) of the variable piece from the working expression. 4346 4347.. code-block:: text 4348 4349 !0 = !DIExpression(DW_OP_deref) 4350 !1 = !DIExpression(DW_OP_plus, 3) 4351 !2 = !DIExpression(DW_OP_bit_piece, 3, 7) 4352 !3 = !DIExpression(DW_OP_deref, DW_OP_plus, 3, DW_OP_bit_piece, 3, 7) 4353 4354DIObjCProperty 4355"""""""""""""" 4356 4357``DIObjCProperty`` nodes represent Objective-C property nodes. 4358 4359.. code-block:: llvm 4360 4361 !3 = !DIObjCProperty(name: "foo", file: !1, line: 7, setter: "setFoo", 4362 getter: "getFoo", attributes: 7, type: !2) 4363 4364DIImportedEntity 4365"""""""""""""""" 4366 4367``DIImportedEntity`` nodes represent entities (such as modules) imported into a 4368compile unit. 4369 4370.. code-block:: text 4371 4372 !2 = !DIImportedEntity(tag: DW_TAG_imported_module, name: "foo", scope: !0, 4373 entity: !1, line: 7) 4374 4375DIMacro 4376""""""" 4377 4378``DIMacro`` nodes represent definition or undefinition of a macro identifiers. 4379The ``name:`` field is the macro identifier, followed by macro parameters when 4380defining a function-like macro, and the ``value`` field is the token-string 4381used to expand the macro identifier. 4382 4383.. code-block:: text 4384 4385 !2 = !DIMacro(macinfo: DW_MACINFO_define, line: 7, name: "foo(x)", 4386 value: "((x) + 1)") 4387 !3 = !DIMacro(macinfo: DW_MACINFO_undef, line: 30, name: "foo") 4388 4389DIMacroFile 4390""""""""""" 4391 4392``DIMacroFile`` nodes represent inclusion of source files. 4393The ``nodes:`` field is a list of ``DIMacro`` and ``DIMacroFile`` nodes that 4394appear in the included source file. 4395 4396.. code-block:: text 4397 4398 !2 = !DIMacroFile(macinfo: DW_MACINFO_start_file, line: 7, file: !2, 4399 nodes: !3) 4400 4401'``tbaa``' Metadata 4402^^^^^^^^^^^^^^^^^^^ 4403 4404In LLVM IR, memory does not have types, so LLVM's own type system is not 4405suitable for doing TBAA. Instead, metadata is added to the IR to 4406describe a type system of a higher level language. This can be used to 4407implement typical C/C++ TBAA, but it can also be used to implement 4408custom alias analysis behavior for other languages. 4409 4410The current metadata format is very simple. TBAA metadata nodes have up 4411to three fields, e.g.: 4412 4413.. code-block:: llvm 4414 4415 !0 = !{ !"an example type tree" } 4416 !1 = !{ !"int", !0 } 4417 !2 = !{ !"float", !0 } 4418 !3 = !{ !"const float", !2, i64 1 } 4419 4420The first field is an identity field. It can be any value, usually a 4421metadata string, which uniquely identifies the type. The most important 4422name in the tree is the name of the root node. Two trees with different 4423root node names are entirely disjoint, even if they have leaves with 4424common names. 4425 4426The second field identifies the type's parent node in the tree, or is 4427null or omitted for a root node. A type is considered to alias all of 4428its descendants and all of its ancestors in the tree. Also, a type is 4429considered to alias all types in other trees, so that bitcode produced 4430from multiple front-ends is handled conservatively. 4431 4432If the third field is present, it's an integer which if equal to 1 4433indicates that the type is "constant" (meaning 4434``pointsToConstantMemory`` should return true; see `other useful 4435AliasAnalysis methods <AliasAnalysis.html#OtherItfs>`_). 4436 4437'``tbaa.struct``' Metadata 4438^^^^^^^^^^^^^^^^^^^^^^^^^^ 4439 4440The :ref:`llvm.memcpy <int_memcpy>` is often used to implement 4441aggregate assignment operations in C and similar languages, however it 4442is defined to copy a contiguous region of memory, which is more than 4443strictly necessary for aggregate types which contain holes due to 4444padding. Also, it doesn't contain any TBAA information about the fields 4445of the aggregate. 4446 4447``!tbaa.struct`` metadata can describe which memory subregions in a 4448memcpy are padding and what the TBAA tags of the struct are. 4449 4450The current metadata format is very simple. ``!tbaa.struct`` metadata 4451nodes are a list of operands which are in conceptual groups of three. 4452For each group of three, the first operand gives the byte offset of a 4453field in bytes, the second gives its size in bytes, and the third gives 4454its tbaa tag. e.g.: 4455 4456.. code-block:: llvm 4457 4458 !4 = !{ i64 0, i64 4, !1, i64 8, i64 4, !2 } 4459 4460This describes a struct with two fields. The first is at offset 0 bytes 4461with size 4 bytes, and has tbaa tag !1. The second is at offset 8 bytes 4462and has size 4 bytes and has tbaa tag !2. 4463 4464Note that the fields need not be contiguous. In this example, there is a 44654 byte gap between the two fields. This gap represents padding which 4466does not carry useful data and need not be preserved. 4467 4468'``noalias``' and '``alias.scope``' Metadata 4469^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 4470 4471``noalias`` and ``alias.scope`` metadata provide the ability to specify generic 4472noalias memory-access sets. This means that some collection of memory access 4473instructions (loads, stores, memory-accessing calls, etc.) that carry 4474``noalias`` metadata can specifically be specified not to alias with some other 4475collection of memory access instructions that carry ``alias.scope`` metadata. 4476Each type of metadata specifies a list of scopes where each scope has an id and 4477a domain. 4478 4479When evaluating an aliasing query, if for some domain, the set 4480of scopes with that domain in one instruction's ``alias.scope`` list is a 4481subset of (or equal to) the set of scopes for that domain in another 4482instruction's ``noalias`` list, then the two memory accesses are assumed not to 4483alias. 4484 4485Because scopes in one domain don't affect scopes in other domains, separate 4486domains can be used to compose multiple independent noalias sets. This is 4487used for example during inlining. As the noalias function parameters are 4488turned into noalias scope metadata, a new domain is used every time the 4489function is inlined. 4490 4491The metadata identifying each domain is itself a list containing one or two 4492entries. The first entry is the name of the domain. Note that if the name is a 4493string then it can be combined across functions and translation units. A 4494self-reference can be used to create globally unique domain names. A 4495descriptive string may optionally be provided as a second list entry. 4496 4497The metadata identifying each scope is also itself a list containing two or 4498three entries. The first entry is the name of the scope. Note that if the name 4499is a string then it can be combined across functions and translation units. A 4500self-reference can be used to create globally unique scope names. A metadata 4501reference to the scope's domain is the second entry. A descriptive string may 4502optionally be provided as a third list entry. 4503 4504For example, 4505 4506.. code-block:: llvm 4507 4508 ; Two scope domains: 4509 !0 = !{!0} 4510 !1 = !{!1} 4511 4512 ; Some scopes in these domains: 4513 !2 = !{!2, !0} 4514 !3 = !{!3, !0} 4515 !4 = !{!4, !1} 4516 4517 ; Some scope lists: 4518 !5 = !{!4} ; A list containing only scope !4 4519 !6 = !{!4, !3, !2} 4520 !7 = !{!3} 4521 4522 ; These two instructions don't alias: 4523 %0 = load float, float* %c, align 4, !alias.scope !5 4524 store float %0, float* %arrayidx.i, align 4, !noalias !5 4525 4526 ; These two instructions also don't alias (for domain !1, the set of scopes 4527 ; in the !alias.scope equals that in the !noalias list): 4528 %2 = load float, float* %c, align 4, !alias.scope !5 4529 store float %2, float* %arrayidx.i2, align 4, !noalias !6 4530 4531 ; These two instructions may alias (for domain !0, the set of scopes in 4532 ; the !noalias list is not a superset of, or equal to, the scopes in the 4533 ; !alias.scope list): 4534 %2 = load float, float* %c, align 4, !alias.scope !6 4535 store float %0, float* %arrayidx.i, align 4, !noalias !7 4536 4537'``fpmath``' Metadata 4538^^^^^^^^^^^^^^^^^^^^^ 4539 4540``fpmath`` metadata may be attached to any instruction of floating point 4541type. It can be used to express the maximum acceptable error in the 4542result of that instruction, in ULPs, thus potentially allowing the 4543compiler to use a more efficient but less accurate method of computing 4544it. ULP is defined as follows: 4545 4546 If ``x`` is a real number that lies between two finite consecutive 4547 floating-point numbers ``a`` and ``b``, without being equal to one 4548 of them, then ``ulp(x) = |b - a|``, otherwise ``ulp(x)`` is the 4549 distance between the two non-equal finite floating-point numbers 4550 nearest ``x``. Moreover, ``ulp(NaN)`` is ``NaN``. 4551 4552The metadata node shall consist of a single positive float type number 4553representing the maximum relative error, for example: 4554 4555.. code-block:: llvm 4556 4557 !0 = !{ float 2.5 } ; maximum acceptable inaccuracy is 2.5 ULPs 4558 4559.. _range-metadata: 4560 4561'``range``' Metadata 4562^^^^^^^^^^^^^^^^^^^^ 4563 4564``range`` metadata may be attached only to ``load``, ``call`` and ``invoke`` of 4565integer types. It expresses the possible ranges the loaded value or the value 4566returned by the called function at this call site is in. The ranges are 4567represented with a flattened list of integers. The loaded value or the value 4568returned is known to be in the union of the ranges defined by each consecutive 4569pair. Each pair has the following properties: 4570 4571- The type must match the type loaded by the instruction. 4572- The pair ``a,b`` represents the range ``[a,b)``. 4573- Both ``a`` and ``b`` are constants. 4574- The range is allowed to wrap. 4575- The range should not represent the full or empty set. That is, 4576 ``a!=b``. 4577 4578In addition, the pairs must be in signed order of the lower bound and 4579they must be non-contiguous. 4580 4581Examples: 4582 4583.. code-block:: llvm 4584 4585 %a = load i8, i8* %x, align 1, !range !0 ; Can only be 0 or 1 4586 %b = load i8, i8* %y, align 1, !range !1 ; Can only be 255 (-1), 0 or 1 4587 %c = call i8 @foo(), !range !2 ; Can only be 0, 1, 3, 4 or 5 4588 %d = invoke i8 @bar() to label %cont 4589 unwind label %lpad, !range !3 ; Can only be -2, -1, 3, 4 or 5 4590 ... 4591 !0 = !{ i8 0, i8 2 } 4592 !1 = !{ i8 255, i8 2 } 4593 !2 = !{ i8 0, i8 2, i8 3, i8 6 } 4594 !3 = !{ i8 -2, i8 0, i8 3, i8 6 } 4595 4596'``absolute_symbol``' Metadata 4597^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 4598 4599``absolute_symbol`` metadata may be attached to a global variable 4600declaration. It marks the declaration as a reference to an absolute symbol, 4601which causes the backend to use absolute relocations for the symbol even 4602in position independent code, and expresses the possible ranges that the 4603global variable's *address* (not its value) is in, in the same format as 4604``range`` metadata. 4605 4606Example: 4607 4608.. code-block:: llvm 4609 4610 @a = external global i8, !absolute_symbol !0 ; Absolute symbol in range [0,256) 4611 4612 ... 4613 !0 = !{ i64 0, i64 256 } 4614 4615'``unpredictable``' Metadata 4616^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 4617 4618``unpredictable`` metadata may be attached to any branch or switch 4619instruction. It can be used to express the unpredictability of control 4620flow. Similar to the llvm.expect intrinsic, it may be used to alter 4621optimizations related to compare and branch instructions. The metadata 4622is treated as a boolean value; if it exists, it signals that the branch 4623or switch that it is attached to is completely unpredictable. 4624 4625'``llvm.loop``' 4626^^^^^^^^^^^^^^^ 4627 4628It is sometimes useful to attach information to loop constructs. Currently, 4629loop metadata is implemented as metadata attached to the branch instruction 4630in the loop latch block. This type of metadata refer to a metadata node that is 4631guaranteed to be separate for each loop. The loop identifier metadata is 4632specified with the name ``llvm.loop``. 4633 4634The loop identifier metadata is implemented using a metadata that refers to 4635itself to avoid merging it with any other identifier metadata, e.g., 4636during module linkage or function inlining. That is, each loop should refer 4637to their own identification metadata even if they reside in separate functions. 4638The following example contains loop identifier metadata for two separate loop 4639constructs: 4640 4641.. code-block:: llvm 4642 4643 !0 = !{!0} 4644 !1 = !{!1} 4645 4646The loop identifier metadata can be used to specify additional 4647per-loop metadata. Any operands after the first operand can be treated 4648as user-defined metadata. For example the ``llvm.loop.unroll.count`` 4649suggests an unroll factor to the loop unroller: 4650 4651.. code-block:: llvm 4652 4653 br i1 %exitcond, label %._crit_edge, label %.lr.ph, !llvm.loop !0 4654 ... 4655 !0 = !{!0, !1} 4656 !1 = !{!"llvm.loop.unroll.count", i32 4} 4657 4658'``llvm.loop.vectorize``' and '``llvm.loop.interleave``' 4659^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 4660 4661Metadata prefixed with ``llvm.loop.vectorize`` or ``llvm.loop.interleave`` are 4662used to control per-loop vectorization and interleaving parameters such as 4663vectorization width and interleave count. These metadata should be used in 4664conjunction with ``llvm.loop`` loop identification metadata. The 4665``llvm.loop.vectorize`` and ``llvm.loop.interleave`` metadata are only 4666optimization hints and the optimizer will only interleave and vectorize loops if 4667it believes it is safe to do so. The ``llvm.mem.parallel_loop_access`` metadata 4668which contains information about loop-carried memory dependencies can be helpful 4669in determining the safety of these transformations. 4670 4671'``llvm.loop.interleave.count``' Metadata 4672^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 4673 4674This metadata suggests an interleave count to the loop interleaver. 4675The first operand is the string ``llvm.loop.interleave.count`` and the 4676second operand is an integer specifying the interleave count. For 4677example: 4678 4679.. code-block:: llvm 4680 4681 !0 = !{!"llvm.loop.interleave.count", i32 4} 4682 4683Note that setting ``llvm.loop.interleave.count`` to 1 disables interleaving 4684multiple iterations of the loop. If ``llvm.loop.interleave.count`` is set to 0 4685then the interleave count will be determined automatically. 4686 4687'``llvm.loop.vectorize.enable``' Metadata 4688^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 4689 4690This metadata selectively enables or disables vectorization for the loop. The 4691first operand is the string ``llvm.loop.vectorize.enable`` and the second operand 4692is a bit. If the bit operand value is 1 vectorization is enabled. A value of 46930 disables vectorization: 4694 4695.. code-block:: llvm 4696 4697 !0 = !{!"llvm.loop.vectorize.enable", i1 0} 4698 !1 = !{!"llvm.loop.vectorize.enable", i1 1} 4699 4700'``llvm.loop.vectorize.width``' Metadata 4701^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 4702 4703This metadata sets the target width of the vectorizer. The first 4704operand is the string ``llvm.loop.vectorize.width`` and the second 4705operand is an integer specifying the width. For example: 4706 4707.. code-block:: llvm 4708 4709 !0 = !{!"llvm.loop.vectorize.width", i32 4} 4710 4711Note that setting ``llvm.loop.vectorize.width`` to 1 disables 4712vectorization of the loop. If ``llvm.loop.vectorize.width`` is set to 47130 or if the loop does not have this metadata the width will be 4714determined automatically. 4715 4716'``llvm.loop.unroll``' 4717^^^^^^^^^^^^^^^^^^^^^^ 4718 4719Metadata prefixed with ``llvm.loop.unroll`` are loop unrolling 4720optimization hints such as the unroll factor. ``llvm.loop.unroll`` 4721metadata should be used in conjunction with ``llvm.loop`` loop 4722identification metadata. The ``llvm.loop.unroll`` metadata are only 4723optimization hints and the unrolling will only be performed if the 4724optimizer believes it is safe to do so. 4725 4726'``llvm.loop.unroll.count``' Metadata 4727^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 4728 4729This metadata suggests an unroll factor to the loop unroller. The 4730first operand is the string ``llvm.loop.unroll.count`` and the second 4731operand is a positive integer specifying the unroll factor. For 4732example: 4733 4734.. code-block:: llvm 4735 4736 !0 = !{!"llvm.loop.unroll.count", i32 4} 4737 4738If the trip count of the loop is less than the unroll count the loop 4739will be partially unrolled. 4740 4741'``llvm.loop.unroll.disable``' Metadata 4742^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 4743 4744This metadata disables loop unrolling. The metadata has a single operand 4745which is the string ``llvm.loop.unroll.disable``. For example: 4746 4747.. code-block:: llvm 4748 4749 !0 = !{!"llvm.loop.unroll.disable"} 4750 4751'``llvm.loop.unroll.runtime.disable``' Metadata 4752^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 4753 4754This metadata disables runtime loop unrolling. The metadata has a single 4755operand which is the string ``llvm.loop.unroll.runtime.disable``. For example: 4756 4757.. code-block:: llvm 4758 4759 !0 = !{!"llvm.loop.unroll.runtime.disable"} 4760 4761'``llvm.loop.unroll.enable``' Metadata 4762^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 4763 4764This metadata suggests that the loop should be fully unrolled if the trip count 4765is known at compile time and partially unrolled if the trip count is not known 4766at compile time. The metadata has a single operand which is the string 4767``llvm.loop.unroll.enable``. For example: 4768 4769.. code-block:: llvm 4770 4771 !0 = !{!"llvm.loop.unroll.enable"} 4772 4773'``llvm.loop.unroll.full``' Metadata 4774^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 4775 4776This metadata suggests that the loop should be unrolled fully. The 4777metadata has a single operand which is the string ``llvm.loop.unroll.full``. 4778For example: 4779 4780.. code-block:: llvm 4781 4782 !0 = !{!"llvm.loop.unroll.full"} 4783 4784'``llvm.loop.licm_versioning.disable``' Metadata 4785^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 4786 4787This metadata indicates that the loop should not be versioned for the purpose 4788of enabling loop-invariant code motion (LICM). The metadata has a single operand 4789which is the string ``llvm.loop.licm_versioning.disable``. For example: 4790 4791.. code-block:: llvm 4792 4793 !0 = !{!"llvm.loop.licm_versioning.disable"} 4794 4795'``llvm.loop.distribute.enable``' Metadata 4796^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 4797 4798Loop distribution allows splitting a loop into multiple loops. Currently, 4799this is only performed if the entire loop cannot be vectorized due to unsafe 4800memory dependencies. The transformation will atempt to isolate the unsafe 4801dependencies into their own loop. 4802 4803This metadata can be used to selectively enable or disable distribution of the 4804loop. The first operand is the string ``llvm.loop.distribute.enable`` and the 4805second operand is a bit. If the bit operand value is 1 distribution is 4806enabled. A value of 0 disables distribution: 4807 4808.. code-block:: llvm 4809 4810 !0 = !{!"llvm.loop.distribute.enable", i1 0} 4811 !1 = !{!"llvm.loop.distribute.enable", i1 1} 4812 4813This metadata should be used in conjunction with ``llvm.loop`` loop 4814identification metadata. 4815 4816'``llvm.mem``' 4817^^^^^^^^^^^^^^^ 4818 4819Metadata types used to annotate memory accesses with information helpful 4820for optimizations are prefixed with ``llvm.mem``. 4821 4822'``llvm.mem.parallel_loop_access``' Metadata 4823^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 4824 4825The ``llvm.mem.parallel_loop_access`` metadata refers to a loop identifier, 4826or metadata containing a list of loop identifiers for nested loops. 4827The metadata is attached to memory accessing instructions and denotes that 4828no loop carried memory dependence exist between it and other instructions denoted 4829with the same loop identifier. The metadata on memory reads also implies that 4830if conversion (i.e. speculative execution within a loop iteration) is safe. 4831 4832Precisely, given two instructions ``m1`` and ``m2`` that both have the 4833``llvm.mem.parallel_loop_access`` metadata, with ``L1`` and ``L2`` being the 4834set of loops associated with that metadata, respectively, then there is no loop 4835carried dependence between ``m1`` and ``m2`` for loops in both ``L1`` and 4836``L2``. 4837 4838As a special case, if all memory accessing instructions in a loop have 4839``llvm.mem.parallel_loop_access`` metadata that refers to that loop, then the 4840loop has no loop carried memory dependences and is considered to be a parallel 4841loop. 4842 4843Note that if not all memory access instructions have such metadata referring to 4844the loop, then the loop is considered not being trivially parallel. Additional 4845memory dependence analysis is required to make that determination. As a fail 4846safe mechanism, this causes loops that were originally parallel to be considered 4847sequential (if optimization passes that are unaware of the parallel semantics 4848insert new memory instructions into the loop body). 4849 4850Example of a loop that is considered parallel due to its correct use of 4851both ``llvm.loop`` and ``llvm.mem.parallel_loop_access`` 4852metadata types that refer to the same loop identifier metadata. 4853 4854.. code-block:: llvm 4855 4856 for.body: 4857 ... 4858 %val0 = load i32, i32* %arrayidx, !llvm.mem.parallel_loop_access !0 4859 ... 4860 store i32 %val0, i32* %arrayidx1, !llvm.mem.parallel_loop_access !0 4861 ... 4862 br i1 %exitcond, label %for.end, label %for.body, !llvm.loop !0 4863 4864 for.end: 4865 ... 4866 !0 = !{!0} 4867 4868It is also possible to have nested parallel loops. In that case the 4869memory accesses refer to a list of loop identifier metadata nodes instead of 4870the loop identifier metadata node directly: 4871 4872.. code-block:: llvm 4873 4874 outer.for.body: 4875 ... 4876 %val1 = load i32, i32* %arrayidx3, !llvm.mem.parallel_loop_access !2 4877 ... 4878 br label %inner.for.body 4879 4880 inner.for.body: 4881 ... 4882 %val0 = load i32, i32* %arrayidx1, !llvm.mem.parallel_loop_access !0 4883 ... 4884 store i32 %val0, i32* %arrayidx2, !llvm.mem.parallel_loop_access !0 4885 ... 4886 br i1 %exitcond, label %inner.for.end, label %inner.for.body, !llvm.loop !1 4887 4888 inner.for.end: 4889 ... 4890 store i32 %val1, i32* %arrayidx4, !llvm.mem.parallel_loop_access !2 4891 ... 4892 br i1 %exitcond, label %outer.for.end, label %outer.for.body, !llvm.loop !2 4893 4894 outer.for.end: ; preds = %for.body 4895 ... 4896 !0 = !{!1, !2} ; a list of loop identifiers 4897 !1 = !{!1} ; an identifier for the inner loop 4898 !2 = !{!2} ; an identifier for the outer loop 4899 4900'``invariant.group``' Metadata 4901^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 4902 4903The ``invariant.group`` metadata may be attached to ``load``/``store`` instructions. 4904The existence of the ``invariant.group`` metadata on the instruction tells 4905the optimizer that every ``load`` and ``store`` to the same pointer operand 4906within the same invariant group can be assumed to load or store the same 4907value (but see the ``llvm.invariant.group.barrier`` intrinsic which affects 4908when two pointers are considered the same). Pointers returned by bitcast or 4909getelementptr with only zero indices are considered the same. 4910 4911Examples: 4912 4913.. code-block:: llvm 4914 4915 @unknownPtr = external global i8 4916 ... 4917 %ptr = alloca i8 4918 store i8 42, i8* %ptr, !invariant.group !0 4919 call void @foo(i8* %ptr) 4920 4921 %a = load i8, i8* %ptr, !invariant.group !0 ; Can assume that value under %ptr didn't change 4922 call void @foo(i8* %ptr) 4923 %b = load i8, i8* %ptr, !invariant.group !1 ; Can't assume anything, because group changed 4924 4925 %newPtr = call i8* @getPointer(i8* %ptr) 4926 %c = load i8, i8* %newPtr, !invariant.group !0 ; Can't assume anything, because we only have information about %ptr 4927 4928 %unknownValue = load i8, i8* @unknownPtr 4929 store i8 %unknownValue, i8* %ptr, !invariant.group !0 ; Can assume that %unknownValue == 42 4930 4931 call void @foo(i8* %ptr) 4932 %newPtr2 = call i8* @llvm.invariant.group.barrier(i8* %ptr) 4933 %d = load i8, i8* %newPtr2, !invariant.group !0 ; Can't step through invariant.group.barrier to get value of %ptr 4934 4935 ... 4936 declare void @foo(i8*) 4937 declare i8* @getPointer(i8*) 4938 declare i8* @llvm.invariant.group.barrier(i8*) 4939 4940 !0 = !{!"magic ptr"} 4941 !1 = !{!"other ptr"} 4942 4943'``type``' Metadata 4944^^^^^^^^^^^^^^^^^^^ 4945 4946See :doc:`TypeMetadata`. 4947 4948 4949Module Flags Metadata 4950===================== 4951 4952Information about the module as a whole is difficult to convey to LLVM's 4953subsystems. The LLVM IR isn't sufficient to transmit this information. 4954The ``llvm.module.flags`` named metadata exists in order to facilitate 4955this. These flags are in the form of key / value pairs --- much like a 4956dictionary --- making it easy for any subsystem who cares about a flag to 4957look it up. 4958 4959The ``llvm.module.flags`` metadata contains a list of metadata triplets. 4960Each triplet has the following form: 4961 4962- The first element is a *behavior* flag, which specifies the behavior 4963 when two (or more) modules are merged together, and it encounters two 4964 (or more) metadata with the same ID. The supported behaviors are 4965 described below. 4966- The second element is a metadata string that is a unique ID for the 4967 metadata. Each module may only have one flag entry for each unique ID (not 4968 including entries with the **Require** behavior). 4969- The third element is the value of the flag. 4970 4971When two (or more) modules are merged together, the resulting 4972``llvm.module.flags`` metadata is the union of the modules' flags. That is, for 4973each unique metadata ID string, there will be exactly one entry in the merged 4974modules ``llvm.module.flags`` metadata table, and the value for that entry will 4975be determined by the merge behavior flag, as described below. The only exception 4976is that entries with the *Require* behavior are always preserved. 4977 4978The following behaviors are supported: 4979 4980.. list-table:: 4981 :header-rows: 1 4982 :widths: 10 90 4983 4984 * - Value 4985 - Behavior 4986 4987 * - 1 4988 - **Error** 4989 Emits an error if two values disagree, otherwise the resulting value 4990 is that of the operands. 4991 4992 * - 2 4993 - **Warning** 4994 Emits a warning if two values disagree. The result value will be the 4995 operand for the flag from the first module being linked. 4996 4997 * - 3 4998 - **Require** 4999 Adds a requirement that another module flag be present and have a 5000 specified value after linking is performed. The value must be a 5001 metadata pair, where the first element of the pair is the ID of the 5002 module flag to be restricted, and the second element of the pair is 5003 the value the module flag should be restricted to. This behavior can 5004 be used to restrict the allowable results (via triggering of an 5005 error) of linking IDs with the **Override** behavior. 5006 5007 * - 4 5008 - **Override** 5009 Uses the specified value, regardless of the behavior or value of the 5010 other module. If both modules specify **Override**, but the values 5011 differ, an error will be emitted. 5012 5013 * - 5 5014 - **Append** 5015 Appends the two values, which are required to be metadata nodes. 5016 5017 * - 6 5018 - **AppendUnique** 5019 Appends the two values, which are required to be metadata 5020 nodes. However, duplicate entries in the second list are dropped 5021 during the append operation. 5022 5023It is an error for a particular unique flag ID to have multiple behaviors, 5024except in the case of **Require** (which adds restrictions on another metadata 5025value) or **Override**. 5026 5027An example of module flags: 5028 5029.. code-block:: llvm 5030 5031 !0 = !{ i32 1, !"foo", i32 1 } 5032 !1 = !{ i32 4, !"bar", i32 37 } 5033 !2 = !{ i32 2, !"qux", i32 42 } 5034 !3 = !{ i32 3, !"qux", 5035 !{ 5036 !"foo", i32 1 5037 } 5038 } 5039 !llvm.module.flags = !{ !0, !1, !2, !3 } 5040 5041- Metadata ``!0`` has the ID ``!"foo"`` and the value '1'. The behavior 5042 if two or more ``!"foo"`` flags are seen is to emit an error if their 5043 values are not equal. 5044 5045- Metadata ``!1`` has the ID ``!"bar"`` and the value '37'. The 5046 behavior if two or more ``!"bar"`` flags are seen is to use the value 5047 '37'. 5048 5049- Metadata ``!2`` has the ID ``!"qux"`` and the value '42'. The 5050 behavior if two or more ``!"qux"`` flags are seen is to emit a 5051 warning if their values are not equal. 5052 5053- Metadata ``!3`` has the ID ``!"qux"`` and the value: 5054 5055 :: 5056 5057 !{ !"foo", i32 1 } 5058 5059 The behavior is to emit an error if the ``llvm.module.flags`` does not 5060 contain a flag with the ID ``!"foo"`` that has the value '1' after linking is 5061 performed. 5062 5063Objective-C Garbage Collection Module Flags Metadata 5064---------------------------------------------------- 5065 5066On the Mach-O platform, Objective-C stores metadata about garbage 5067collection in a special section called "image info". The metadata 5068consists of a version number and a bitmask specifying what types of 5069garbage collection are supported (if any) by the file. If two or more 5070modules are linked together their garbage collection metadata needs to 5071be merged rather than appended together. 5072 5073The Objective-C garbage collection module flags metadata consists of the 5074following key-value pairs: 5075 5076.. list-table:: 5077 :header-rows: 1 5078 :widths: 30 70 5079 5080 * - Key 5081 - Value 5082 5083 * - ``Objective-C Version`` 5084 - **[Required]** --- The Objective-C ABI version. Valid values are 1 and 2. 5085 5086 * - ``Objective-C Image Info Version`` 5087 - **[Required]** --- The version of the image info section. Currently 5088 always 0. 5089 5090 * - ``Objective-C Image Info Section`` 5091 - **[Required]** --- The section to place the metadata. Valid values are 5092 ``"__OBJC, __image_info, regular"`` for Objective-C ABI version 1, and 5093 ``"__DATA,__objc_imageinfo, regular, no_dead_strip"`` for 5094 Objective-C ABI version 2. 5095 5096 * - ``Objective-C Garbage Collection`` 5097 - **[Required]** --- Specifies whether garbage collection is supported or 5098 not. Valid values are 0, for no garbage collection, and 2, for garbage 5099 collection supported. 5100 5101 * - ``Objective-C GC Only`` 5102 - **[Optional]** --- Specifies that only garbage collection is supported. 5103 If present, its value must be 6. This flag requires that the 5104 ``Objective-C Garbage Collection`` flag have the value 2. 5105 5106Some important flag interactions: 5107 5108- If a module with ``Objective-C Garbage Collection`` set to 0 is 5109 merged with a module with ``Objective-C Garbage Collection`` set to 5110 2, then the resulting module has the 5111 ``Objective-C Garbage Collection`` flag set to 0. 5112- A module with ``Objective-C Garbage Collection`` set to 0 cannot be 5113 merged with a module with ``Objective-C GC Only`` set to 6. 5114 5115Automatic Linker Flags Module Flags Metadata 5116-------------------------------------------- 5117 5118Some targets support embedding flags to the linker inside individual object 5119files. Typically this is used in conjunction with language extensions which 5120allow source files to explicitly declare the libraries they depend on, and have 5121these automatically be transmitted to the linker via object files. 5122 5123These flags are encoded in the IR using metadata in the module flags section, 5124using the ``Linker Options`` key. The merge behavior for this flag is required 5125to be ``AppendUnique``, and the value for the key is expected to be a metadata 5126node which should be a list of other metadata nodes, each of which should be a 5127list of metadata strings defining linker options. 5128 5129For example, the following metadata section specifies two separate sets of 5130linker options, presumably to link against ``libz`` and the ``Cocoa`` 5131framework:: 5132 5133 !0 = !{ i32 6, !"Linker Options", 5134 !{ 5135 !{ !"-lz" }, 5136 !{ !"-framework", !"Cocoa" } } } 5137 !llvm.module.flags = !{ !0 } 5138 5139The metadata encoding as lists of lists of options, as opposed to a collapsed 5140list of options, is chosen so that the IR encoding can use multiple option 5141strings to specify e.g., a single library, while still having that specifier be 5142preserved as an atomic element that can be recognized by a target specific 5143assembly writer or object file emitter. 5144 5145Each individual option is required to be either a valid option for the target's 5146linker, or an option that is reserved by the target specific assembly writer or 5147object file emitter. No other aspect of these options is defined by the IR. 5148 5149C type width Module Flags Metadata 5150---------------------------------- 5151 5152The ARM backend emits a section into each generated object file describing the 5153options that it was compiled with (in a compiler-independent way) to prevent 5154linking incompatible objects, and to allow automatic library selection. Some 5155of these options are not visible at the IR level, namely wchar_t width and enum 5156width. 5157 5158To pass this information to the backend, these options are encoded in module 5159flags metadata, using the following key-value pairs: 5160 5161.. list-table:: 5162 :header-rows: 1 5163 :widths: 30 70 5164 5165 * - Key 5166 - Value 5167 5168 * - short_wchar 5169 - * 0 --- sizeof(wchar_t) == 4 5170 * 1 --- sizeof(wchar_t) == 2 5171 5172 * - short_enum 5173 - * 0 --- Enums are at least as large as an ``int``. 5174 * 1 --- Enums are stored in the smallest integer type which can 5175 represent all of its values. 5176 5177For example, the following metadata section specifies that the module was 5178compiled with a ``wchar_t`` width of 4 bytes, and the underlying type of an 5179enum is the smallest type which can represent all of its values:: 5180 5181 !llvm.module.flags = !{!0, !1} 5182 !0 = !{i32 1, !"short_wchar", i32 1} 5183 !1 = !{i32 1, !"short_enum", i32 0} 5184 5185.. _intrinsicglobalvariables: 5186 5187Intrinsic Global Variables 5188========================== 5189 5190LLVM has a number of "magic" global variables that contain data that 5191affect code generation or other IR semantics. These are documented here. 5192All globals of this sort should have a section specified as 5193"``llvm.metadata``". This section and all globals that start with 5194"``llvm.``" are reserved for use by LLVM. 5195 5196.. _gv_llvmused: 5197 5198The '``llvm.used``' Global Variable 5199----------------------------------- 5200 5201The ``@llvm.used`` global is an array which has 5202:ref:`appending linkage <linkage_appending>`. This array contains a list of 5203pointers to named global variables, functions and aliases which may optionally 5204have a pointer cast formed of bitcast or getelementptr. For example, a legal 5205use of it is: 5206 5207.. code-block:: llvm 5208 5209 @X = global i8 4 5210 @Y = global i32 123 5211 5212 @llvm.used = appending global [2 x i8*] [ 5213 i8* @X, 5214 i8* bitcast (i32* @Y to i8*) 5215 ], section "llvm.metadata" 5216 5217If a symbol appears in the ``@llvm.used`` list, then the compiler, assembler, 5218and linker are required to treat the symbol as if there is a reference to the 5219symbol that it cannot see (which is why they have to be named). For example, if 5220a variable has internal linkage and no references other than that from the 5221``@llvm.used`` list, it cannot be deleted. This is commonly used to represent 5222references from inline asms and other things the compiler cannot "see", and 5223corresponds to "``attribute((used))``" in GNU C. 5224 5225On some targets, the code generator must emit a directive to the 5226assembler or object file to prevent the assembler and linker from 5227molesting the symbol. 5228 5229.. _gv_llvmcompilerused: 5230 5231The '``llvm.compiler.used``' Global Variable 5232-------------------------------------------- 5233 5234The ``@llvm.compiler.used`` directive is the same as the ``@llvm.used`` 5235directive, except that it only prevents the compiler from touching the 5236symbol. On targets that support it, this allows an intelligent linker to 5237optimize references to the symbol without being impeded as it would be 5238by ``@llvm.used``. 5239 5240This is a rare construct that should only be used in rare circumstances, 5241and should not be exposed to source languages. 5242 5243.. _gv_llvmglobalctors: 5244 5245The '``llvm.global_ctors``' Global Variable 5246------------------------------------------- 5247 5248.. code-block:: llvm 5249 5250 %0 = type { i32, void ()*, i8* } 5251 @llvm.global_ctors = appending global [1 x %0] [%0 { i32 65535, void ()* @ctor, i8* @data }] 5252 5253The ``@llvm.global_ctors`` array contains a list of constructor 5254functions, priorities, and an optional associated global or function. 5255The functions referenced by this array will be called in ascending order 5256of priority (i.e. lowest first) when the module is loaded. The order of 5257functions with the same priority is not defined. 5258 5259If the third field is present, non-null, and points to a global variable 5260or function, the initializer function will only run if the associated 5261data from the current module is not discarded. 5262 5263.. _llvmglobaldtors: 5264 5265The '``llvm.global_dtors``' Global Variable 5266------------------------------------------- 5267 5268.. code-block:: llvm 5269 5270 %0 = type { i32, void ()*, i8* } 5271 @llvm.global_dtors = appending global [1 x %0] [%0 { i32 65535, void ()* @dtor, i8* @data }] 5272 5273The ``@llvm.global_dtors`` array contains a list of destructor 5274functions, priorities, and an optional associated global or function. 5275The functions referenced by this array will be called in descending 5276order of priority (i.e. highest first) when the module is unloaded. The 5277order of functions with the same priority is not defined. 5278 5279If the third field is present, non-null, and points to a global variable 5280or function, the destructor function will only run if the associated 5281data from the current module is not discarded. 5282 5283Instruction Reference 5284===================== 5285 5286The LLVM instruction set consists of several different classifications 5287of instructions: :ref:`terminator instructions <terminators>`, :ref:`binary 5288instructions <binaryops>`, :ref:`bitwise binary 5289instructions <bitwiseops>`, :ref:`memory instructions <memoryops>`, and 5290:ref:`other instructions <otherops>`. 5291 5292.. _terminators: 5293 5294Terminator Instructions 5295----------------------- 5296 5297As mentioned :ref:`previously <functionstructure>`, every basic block in a 5298program ends with a "Terminator" instruction, which indicates which 5299block should be executed after the current block is finished. These 5300terminator instructions typically yield a '``void``' value: they produce 5301control flow, not values (the one exception being the 5302':ref:`invoke <i_invoke>`' instruction). 5303 5304The terminator instructions are: ':ref:`ret <i_ret>`', 5305':ref:`br <i_br>`', ':ref:`switch <i_switch>`', 5306':ref:`indirectbr <i_indirectbr>`', ':ref:`invoke <i_invoke>`', 5307':ref:`resume <i_resume>`', ':ref:`catchswitch <i_catchswitch>`', 5308':ref:`catchret <i_catchret>`', 5309':ref:`cleanupret <i_cleanupret>`', 5310and ':ref:`unreachable <i_unreachable>`'. 5311 5312.. _i_ret: 5313 5314'``ret``' Instruction 5315^^^^^^^^^^^^^^^^^^^^^ 5316 5317Syntax: 5318""""""" 5319 5320:: 5321 5322 ret <type> <value> ; Return a value from a non-void function 5323 ret void ; Return from void function 5324 5325Overview: 5326""""""""" 5327 5328The '``ret``' instruction is used to return control flow (and optionally 5329a value) from a function back to the caller. 5330 5331There are two forms of the '``ret``' instruction: one that returns a 5332value and then causes control flow, and one that just causes control 5333flow to occur. 5334 5335Arguments: 5336"""""""""" 5337 5338The '``ret``' instruction optionally accepts a single argument, the 5339return value. The type of the return value must be a ':ref:`first 5340class <t_firstclass>`' type. 5341 5342A function is not :ref:`well formed <wellformed>` if it it has a non-void 5343return type and contains a '``ret``' instruction with no return value or 5344a return value with a type that does not match its type, or if it has a 5345void return type and contains a '``ret``' instruction with a return 5346value. 5347 5348Semantics: 5349"""""""""" 5350 5351When the '``ret``' instruction is executed, control flow returns back to 5352the calling function's context. If the caller is a 5353":ref:`call <i_call>`" instruction, execution continues at the 5354instruction after the call. If the caller was an 5355":ref:`invoke <i_invoke>`" instruction, execution continues at the 5356beginning of the "normal" destination block. If the instruction returns 5357a value, that value shall set the call or invoke instruction's return 5358value. 5359 5360Example: 5361"""""""" 5362 5363.. code-block:: llvm 5364 5365 ret i32 5 ; Return an integer value of 5 5366 ret void ; Return from a void function 5367 ret { i32, i8 } { i32 4, i8 2 } ; Return a struct of values 4 and 2 5368 5369.. _i_br: 5370 5371'``br``' Instruction 5372^^^^^^^^^^^^^^^^^^^^ 5373 5374Syntax: 5375""""""" 5376 5377:: 5378 5379 br i1 <cond>, label <iftrue>, label <iffalse> 5380 br label <dest> ; Unconditional branch 5381 5382Overview: 5383""""""""" 5384 5385The '``br``' instruction is used to cause control flow to transfer to a 5386different basic block in the current function. There are two forms of 5387this instruction, corresponding to a conditional branch and an 5388unconditional branch. 5389 5390Arguments: 5391"""""""""" 5392 5393The conditional branch form of the '``br``' instruction takes a single 5394'``i1``' value and two '``label``' values. The unconditional form of the 5395'``br``' instruction takes a single '``label``' value as a target. 5396 5397Semantics: 5398"""""""""" 5399 5400Upon execution of a conditional '``br``' instruction, the '``i1``' 5401argument is evaluated. If the value is ``true``, control flows to the 5402'``iftrue``' ``label`` argument. If "cond" is ``false``, control flows 5403to the '``iffalse``' ``label`` argument. 5404 5405Example: 5406"""""""" 5407 5408.. code-block:: llvm 5409 5410 Test: 5411 %cond = icmp eq i32 %a, %b 5412 br i1 %cond, label %IfEqual, label %IfUnequal 5413 IfEqual: 5414 ret i32 1 5415 IfUnequal: 5416 ret i32 0 5417 5418.. _i_switch: 5419 5420'``switch``' Instruction 5421^^^^^^^^^^^^^^^^^^^^^^^^ 5422 5423Syntax: 5424""""""" 5425 5426:: 5427 5428 switch <intty> <value>, label <defaultdest> [ <intty> <val>, label <dest> ... ] 5429 5430Overview: 5431""""""""" 5432 5433The '``switch``' instruction is used to transfer control flow to one of 5434several different places. It is a generalization of the '``br``' 5435instruction, allowing a branch to occur to one of many possible 5436destinations. 5437 5438Arguments: 5439"""""""""" 5440 5441The '``switch``' instruction uses three parameters: an integer 5442comparison value '``value``', a default '``label``' destination, and an 5443array of pairs of comparison value constants and '``label``'s. The table 5444is not allowed to contain duplicate constant entries. 5445 5446Semantics: 5447"""""""""" 5448 5449The ``switch`` instruction specifies a table of values and destinations. 5450When the '``switch``' instruction is executed, this table is searched 5451for the given value. If the value is found, control flow is transferred 5452to the corresponding destination; otherwise, control flow is transferred 5453to the default destination. 5454 5455Implementation: 5456""""""""""""""" 5457 5458Depending on properties of the target machine and the particular 5459``switch`` instruction, this instruction may be code generated in 5460different ways. For example, it could be generated as a series of 5461chained conditional branches or with a lookup table. 5462 5463Example: 5464"""""""" 5465 5466.. code-block:: llvm 5467 5468 ; Emulate a conditional br instruction 5469 %Val = zext i1 %value to i32 5470 switch i32 %Val, label %truedest [ i32 0, label %falsedest ] 5471 5472 ; Emulate an unconditional br instruction 5473 switch i32 0, label %dest [ ] 5474 5475 ; Implement a jump table: 5476 switch i32 %val, label %otherwise [ i32 0, label %onzero 5477 i32 1, label %onone 5478 i32 2, label %ontwo ] 5479 5480.. _i_indirectbr: 5481 5482'``indirectbr``' Instruction 5483^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 5484 5485Syntax: 5486""""""" 5487 5488:: 5489 5490 indirectbr <somety>* <address>, [ label <dest1>, label <dest2>, ... ] 5491 5492Overview: 5493""""""""" 5494 5495The '``indirectbr``' instruction implements an indirect branch to a 5496label within the current function, whose address is specified by 5497"``address``". Address must be derived from a 5498:ref:`blockaddress <blockaddress>` constant. 5499 5500Arguments: 5501"""""""""" 5502 5503The '``address``' argument is the address of the label to jump to. The 5504rest of the arguments indicate the full set of possible destinations 5505that the address may point to. Blocks are allowed to occur multiple 5506times in the destination list, though this isn't particularly useful. 5507 5508This destination list is required so that dataflow analysis has an 5509accurate understanding of the CFG. 5510 5511Semantics: 5512"""""""""" 5513 5514Control transfers to the block specified in the address argument. All 5515possible destination blocks must be listed in the label list, otherwise 5516this instruction has undefined behavior. This implies that jumps to 5517labels defined in other functions have undefined behavior as well. 5518 5519Implementation: 5520""""""""""""""" 5521 5522This is typically implemented with a jump through a register. 5523 5524Example: 5525"""""""" 5526 5527.. code-block:: llvm 5528 5529 indirectbr i8* %Addr, [ label %bb1, label %bb2, label %bb3 ] 5530 5531.. _i_invoke: 5532 5533'``invoke``' Instruction 5534^^^^^^^^^^^^^^^^^^^^^^^^ 5535 5536Syntax: 5537""""""" 5538 5539:: 5540 5541 <result> = invoke [cconv] [ret attrs] <ty>|<fnty> <fnptrval>(<function args>) [fn attrs] 5542 [operand bundles] to label <normal label> unwind label <exception label> 5543 5544Overview: 5545""""""""" 5546 5547The '``invoke``' instruction causes control to transfer to a specified 5548function, with the possibility of control flow transfer to either the 5549'``normal``' label or the '``exception``' label. If the callee function 5550returns with the "``ret``" instruction, control flow will return to the 5551"normal" label. If the callee (or any indirect callees) returns via the 5552":ref:`resume <i_resume>`" instruction or other exception handling 5553mechanism, control is interrupted and continued at the dynamically 5554nearest "exception" label. 5555 5556The '``exception``' label is a `landing 5557pad <ExceptionHandling.html#overview>`_ for the exception. As such, 5558'``exception``' label is required to have the 5559":ref:`landingpad <i_landingpad>`" instruction, which contains the 5560information about the behavior of the program after unwinding happens, 5561as its first non-PHI instruction. The restrictions on the 5562"``landingpad``" instruction's tightly couples it to the "``invoke``" 5563instruction, so that the important information contained within the 5564"``landingpad``" instruction can't be lost through normal code motion. 5565 5566Arguments: 5567"""""""""" 5568 5569This instruction requires several arguments: 5570 5571#. The optional "cconv" marker indicates which :ref:`calling 5572 convention <callingconv>` the call should use. If none is 5573 specified, the call defaults to using C calling conventions. 5574#. The optional :ref:`Parameter Attributes <paramattrs>` list for return 5575 values. Only '``zeroext``', '``signext``', and '``inreg``' attributes 5576 are valid here. 5577#. '``ty``': the type of the call instruction itself which is also the 5578 type of the return value. Functions that return no value are marked 5579 ``void``. 5580#. '``fnty``': shall be the signature of the function being invoked. The 5581 argument types must match the types implied by this signature. This 5582 type can be omitted if the function is not varargs. 5583#. '``fnptrval``': An LLVM value containing a pointer to a function to 5584 be invoked. In most cases, this is a direct function invocation, but 5585 indirect ``invoke``'s are just as possible, calling an arbitrary pointer 5586 to function value. 5587#. '``function args``': argument list whose types match the function 5588 signature argument types and parameter attributes. All arguments must 5589 be of :ref:`first class <t_firstclass>` type. If the function signature 5590 indicates the function accepts a variable number of arguments, the 5591 extra arguments can be specified. 5592#. '``normal label``': the label reached when the called function 5593 executes a '``ret``' instruction. 5594#. '``exception label``': the label reached when a callee returns via 5595 the :ref:`resume <i_resume>` instruction or other exception handling 5596 mechanism. 5597#. The optional :ref:`function attributes <fnattrs>` list. Only 5598 '``noreturn``', '``nounwind``', '``readonly``' and '``readnone``' 5599 attributes are valid here. 5600#. The optional :ref:`operand bundles <opbundles>` list. 5601 5602Semantics: 5603"""""""""" 5604 5605This instruction is designed to operate as a standard '``call``' 5606instruction in most regards. The primary difference is that it 5607establishes an association with a label, which is used by the runtime 5608library to unwind the stack. 5609 5610This instruction is used in languages with destructors to ensure that 5611proper cleanup is performed in the case of either a ``longjmp`` or a 5612thrown exception. Additionally, this is important for implementation of 5613'``catch``' clauses in high-level languages that support them. 5614 5615For the purposes of the SSA form, the definition of the value returned 5616by the '``invoke``' instruction is deemed to occur on the edge from the 5617current block to the "normal" label. If the callee unwinds then no 5618return value is available. 5619 5620Example: 5621"""""""" 5622 5623.. code-block:: llvm 5624 5625 %retval = invoke i32 @Test(i32 15) to label %Continue 5626 unwind label %TestCleanup ; i32:retval set 5627 %retval = invoke coldcc i32 %Testfnptr(i32 15) to label %Continue 5628 unwind label %TestCleanup ; i32:retval set 5629 5630.. _i_resume: 5631 5632'``resume``' Instruction 5633^^^^^^^^^^^^^^^^^^^^^^^^ 5634 5635Syntax: 5636""""""" 5637 5638:: 5639 5640 resume <type> <value> 5641 5642Overview: 5643""""""""" 5644 5645The '``resume``' instruction is a terminator instruction that has no 5646successors. 5647 5648Arguments: 5649"""""""""" 5650 5651The '``resume``' instruction requires one argument, which must have the 5652same type as the result of any '``landingpad``' instruction in the same 5653function. 5654 5655Semantics: 5656"""""""""" 5657 5658The '``resume``' instruction resumes propagation of an existing 5659(in-flight) exception whose unwinding was interrupted with a 5660:ref:`landingpad <i_landingpad>` instruction. 5661 5662Example: 5663"""""""" 5664 5665.. code-block:: llvm 5666 5667 resume { i8*, i32 } %exn 5668 5669.. _i_catchswitch: 5670 5671'``catchswitch``' Instruction 5672^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 5673 5674Syntax: 5675""""""" 5676 5677:: 5678 5679 <resultval> = catchswitch within <parent> [ label <handler1>, label <handler2>, ... ] unwind to caller 5680 <resultval> = catchswitch within <parent> [ label <handler1>, label <handler2>, ... ] unwind label <default> 5681 5682Overview: 5683""""""""" 5684 5685The '``catchswitch``' instruction is used by `LLVM's exception handling system 5686<ExceptionHandling.html#overview>`_ to describe the set of possible catch handlers 5687that may be executed by the :ref:`EH personality routine <personalityfn>`. 5688 5689Arguments: 5690"""""""""" 5691 5692The ``parent`` argument is the token of the funclet that contains the 5693``catchswitch`` instruction. If the ``catchswitch`` is not inside a funclet, 5694this operand may be the token ``none``. 5695 5696The ``default`` argument is the label of another basic block beginning with 5697either a ``cleanuppad`` or ``catchswitch`` instruction. This unwind destination 5698must be a legal target with respect to the ``parent`` links, as described in 5699the `exception handling documentation\ <ExceptionHandling.html#wineh-constraints>`_. 5700 5701The ``handlers`` are a nonempty list of successor blocks that each begin with a 5702:ref:`catchpad <i_catchpad>` instruction. 5703 5704Semantics: 5705"""""""""" 5706 5707Executing this instruction transfers control to one of the successors in 5708``handlers``, if appropriate, or continues to unwind via the unwind label if 5709present. 5710 5711The ``catchswitch`` is both a terminator and a "pad" instruction, meaning that 5712it must be both the first non-phi instruction and last instruction in the basic 5713block. Therefore, it must be the only non-phi instruction in the block. 5714 5715Example: 5716"""""""" 5717 5718.. code-block:: text 5719 5720 dispatch1: 5721 %cs1 = catchswitch within none [label %handler0, label %handler1] unwind to caller 5722 dispatch2: 5723 %cs2 = catchswitch within %parenthandler [label %handler0] unwind label %cleanup 5724 5725.. _i_catchret: 5726 5727'``catchret``' Instruction 5728^^^^^^^^^^^^^^^^^^^^^^^^^^ 5729 5730Syntax: 5731""""""" 5732 5733:: 5734 5735 catchret from <token> to label <normal> 5736 5737Overview: 5738""""""""" 5739 5740The '``catchret``' instruction is a terminator instruction that has a 5741single successor. 5742 5743 5744Arguments: 5745"""""""""" 5746 5747The first argument to a '``catchret``' indicates which ``catchpad`` it 5748exits. It must be a :ref:`catchpad <i_catchpad>`. 5749The second argument to a '``catchret``' specifies where control will 5750transfer to next. 5751 5752Semantics: 5753"""""""""" 5754 5755The '``catchret``' instruction ends an existing (in-flight) exception whose 5756unwinding was interrupted with a :ref:`catchpad <i_catchpad>` instruction. The 5757:ref:`personality function <personalityfn>` gets a chance to execute arbitrary 5758code to, for example, destroy the active exception. Control then transfers to 5759``normal``. 5760 5761The ``token`` argument must be a token produced by a ``catchpad`` instruction. 5762If the specified ``catchpad`` is not the most-recently-entered not-yet-exited 5763funclet pad (as described in the `EH documentation\ <ExceptionHandling.html#wineh-constraints>`_), 5764the ``catchret``'s behavior is undefined. 5765 5766Example: 5767"""""""" 5768 5769.. code-block:: text 5770 5771 catchret from %catch label %continue 5772 5773.. _i_cleanupret: 5774 5775'``cleanupret``' Instruction 5776^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 5777 5778Syntax: 5779""""""" 5780 5781:: 5782 5783 cleanupret from <value> unwind label <continue> 5784 cleanupret from <value> unwind to caller 5785 5786Overview: 5787""""""""" 5788 5789The '``cleanupret``' instruction is a terminator instruction that has 5790an optional successor. 5791 5792 5793Arguments: 5794"""""""""" 5795 5796The '``cleanupret``' instruction requires one argument, which indicates 5797which ``cleanuppad`` it exits, and must be a :ref:`cleanuppad <i_cleanuppad>`. 5798If the specified ``cleanuppad`` is not the most-recently-entered not-yet-exited 5799funclet pad (as described in the `EH documentation\ <ExceptionHandling.html#wineh-constraints>`_), 5800the ``cleanupret``'s behavior is undefined. 5801 5802The '``cleanupret``' instruction also has an optional successor, ``continue``, 5803which must be the label of another basic block beginning with either a 5804``cleanuppad`` or ``catchswitch`` instruction. This unwind destination must 5805be a legal target with respect to the ``parent`` links, as described in the 5806`exception handling documentation\ <ExceptionHandling.html#wineh-constraints>`_. 5807 5808Semantics: 5809"""""""""" 5810 5811The '``cleanupret``' instruction indicates to the 5812:ref:`personality function <personalityfn>` that one 5813:ref:`cleanuppad <i_cleanuppad>` it transferred control to has ended. 5814It transfers control to ``continue`` or unwinds out of the function. 5815 5816Example: 5817"""""""" 5818 5819.. code-block:: text 5820 5821 cleanupret from %cleanup unwind to caller 5822 cleanupret from %cleanup unwind label %continue 5823 5824.. _i_unreachable: 5825 5826'``unreachable``' Instruction 5827^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 5828 5829Syntax: 5830""""""" 5831 5832:: 5833 5834 unreachable 5835 5836Overview: 5837""""""""" 5838 5839The '``unreachable``' instruction has no defined semantics. This 5840instruction is used to inform the optimizer that a particular portion of 5841the code is not reachable. This can be used to indicate that the code 5842after a no-return function cannot be reached, and other facts. 5843 5844Semantics: 5845"""""""""" 5846 5847The '``unreachable``' instruction has no defined semantics. 5848 5849.. _binaryops: 5850 5851Binary Operations 5852----------------- 5853 5854Binary operators are used to do most of the computation in a program. 5855They require two operands of the same type, execute an operation on 5856them, and produce a single value. The operands might represent multiple 5857data, as is the case with the :ref:`vector <t_vector>` data type. The 5858result value has the same type as its operands. 5859 5860There are several different binary operators: 5861 5862.. _i_add: 5863 5864'``add``' Instruction 5865^^^^^^^^^^^^^^^^^^^^^ 5866 5867Syntax: 5868""""""" 5869 5870:: 5871 5872 <result> = add <ty> <op1>, <op2> ; yields ty:result 5873 <result> = add nuw <ty> <op1>, <op2> ; yields ty:result 5874 <result> = add nsw <ty> <op1>, <op2> ; yields ty:result 5875 <result> = add nuw nsw <ty> <op1>, <op2> ; yields ty:result 5876 5877Overview: 5878""""""""" 5879 5880The '``add``' instruction returns the sum of its two operands. 5881 5882Arguments: 5883"""""""""" 5884 5885The two arguments to the '``add``' instruction must be 5886:ref:`integer <t_integer>` or :ref:`vector <t_vector>` of integer values. Both 5887arguments must have identical types. 5888 5889Semantics: 5890"""""""""" 5891 5892The value produced is the integer sum of the two operands. 5893 5894If the sum has unsigned overflow, the result returned is the 5895mathematical result modulo 2\ :sup:`n`\ , where n is the bit width of 5896the result. 5897 5898Because LLVM integers use a two's complement representation, this 5899instruction is appropriate for both signed and unsigned integers. 5900 5901``nuw`` and ``nsw`` stand for "No Unsigned Wrap" and "No Signed Wrap", 5902respectively. If the ``nuw`` and/or ``nsw`` keywords are present, the 5903result value of the ``add`` is a :ref:`poison value <poisonvalues>` if 5904unsigned and/or signed overflow, respectively, occurs. 5905 5906Example: 5907"""""""" 5908 5909.. code-block:: text 5910 5911 <result> = add i32 4, %var ; yields i32:result = 4 + %var 5912 5913.. _i_fadd: 5914 5915'``fadd``' Instruction 5916^^^^^^^^^^^^^^^^^^^^^^ 5917 5918Syntax: 5919""""""" 5920 5921:: 5922 5923 <result> = fadd [fast-math flags]* <ty> <op1>, <op2> ; yields ty:result 5924 5925Overview: 5926""""""""" 5927 5928The '``fadd``' instruction returns the sum of its two operands. 5929 5930Arguments: 5931"""""""""" 5932 5933The two arguments to the '``fadd``' instruction must be :ref:`floating 5934point <t_floating>` or :ref:`vector <t_vector>` of floating point values. 5935Both arguments must have identical types. 5936 5937Semantics: 5938"""""""""" 5939 5940The value produced is the floating point sum of the two operands. This 5941instruction can also take any number of :ref:`fast-math flags <fastmath>`, 5942which are optimization hints to enable otherwise unsafe floating point 5943optimizations: 5944 5945Example: 5946"""""""" 5947 5948.. code-block:: text 5949 5950 <result> = fadd float 4.0, %var ; yields float:result = 4.0 + %var 5951 5952'``sub``' Instruction 5953^^^^^^^^^^^^^^^^^^^^^ 5954 5955Syntax: 5956""""""" 5957 5958:: 5959 5960 <result> = sub <ty> <op1>, <op2> ; yields ty:result 5961 <result> = sub nuw <ty> <op1>, <op2> ; yields ty:result 5962 <result> = sub nsw <ty> <op1>, <op2> ; yields ty:result 5963 <result> = sub nuw nsw <ty> <op1>, <op2> ; yields ty:result 5964 5965Overview: 5966""""""""" 5967 5968The '``sub``' instruction returns the difference of its two operands. 5969 5970Note that the '``sub``' instruction is used to represent the '``neg``' 5971instruction present in most other intermediate representations. 5972 5973Arguments: 5974"""""""""" 5975 5976The two arguments to the '``sub``' instruction must be 5977:ref:`integer <t_integer>` or :ref:`vector <t_vector>` of integer values. Both 5978arguments must have identical types. 5979 5980Semantics: 5981"""""""""" 5982 5983The value produced is the integer difference of the two operands. 5984 5985If the difference has unsigned overflow, the result returned is the 5986mathematical result modulo 2\ :sup:`n`\ , where n is the bit width of 5987the result. 5988 5989Because LLVM integers use a two's complement representation, this 5990instruction is appropriate for both signed and unsigned integers. 5991 5992``nuw`` and ``nsw`` stand for "No Unsigned Wrap" and "No Signed Wrap", 5993respectively. If the ``nuw`` and/or ``nsw`` keywords are present, the 5994result value of the ``sub`` is a :ref:`poison value <poisonvalues>` if 5995unsigned and/or signed overflow, respectively, occurs. 5996 5997Example: 5998"""""""" 5999 6000.. code-block:: text 6001 6002 <result> = sub i32 4, %var ; yields i32:result = 4 - %var 6003 <result> = sub i32 0, %val ; yields i32:result = -%var 6004 6005.. _i_fsub: 6006 6007'``fsub``' Instruction 6008^^^^^^^^^^^^^^^^^^^^^^ 6009 6010Syntax: 6011""""""" 6012 6013:: 6014 6015 <result> = fsub [fast-math flags]* <ty> <op1>, <op2> ; yields ty:result 6016 6017Overview: 6018""""""""" 6019 6020The '``fsub``' instruction returns the difference of its two operands. 6021 6022Note that the '``fsub``' instruction is used to represent the '``fneg``' 6023instruction present in most other intermediate representations. 6024 6025Arguments: 6026"""""""""" 6027 6028The two arguments to the '``fsub``' instruction must be :ref:`floating 6029point <t_floating>` or :ref:`vector <t_vector>` of floating point values. 6030Both arguments must have identical types. 6031 6032Semantics: 6033"""""""""" 6034 6035The value produced is the floating point difference of the two operands. 6036This instruction can also take any number of :ref:`fast-math 6037flags <fastmath>`, which are optimization hints to enable otherwise 6038unsafe floating point optimizations: 6039 6040Example: 6041"""""""" 6042 6043.. code-block:: text 6044 6045 <result> = fsub float 4.0, %var ; yields float:result = 4.0 - %var 6046 <result> = fsub float -0.0, %val ; yields float:result = -%var 6047 6048'``mul``' Instruction 6049^^^^^^^^^^^^^^^^^^^^^ 6050 6051Syntax: 6052""""""" 6053 6054:: 6055 6056 <result> = mul <ty> <op1>, <op2> ; yields ty:result 6057 <result> = mul nuw <ty> <op1>, <op2> ; yields ty:result 6058 <result> = mul nsw <ty> <op1>, <op2> ; yields ty:result 6059 <result> = mul nuw nsw <ty> <op1>, <op2> ; yields ty:result 6060 6061Overview: 6062""""""""" 6063 6064The '``mul``' instruction returns the product of its two operands. 6065 6066Arguments: 6067"""""""""" 6068 6069The two arguments to the '``mul``' instruction must be 6070:ref:`integer <t_integer>` or :ref:`vector <t_vector>` of integer values. Both 6071arguments must have identical types. 6072 6073Semantics: 6074"""""""""" 6075 6076The value produced is the integer product of the two operands. 6077 6078If the result of the multiplication has unsigned overflow, the result 6079returned is the mathematical result modulo 2\ :sup:`n`\ , where n is the 6080bit width of the result. 6081 6082Because LLVM integers use a two's complement representation, and the 6083result is the same width as the operands, this instruction returns the 6084correct result for both signed and unsigned integers. If a full product 6085(e.g. ``i32`` * ``i32`` -> ``i64``) is needed, the operands should be 6086sign-extended or zero-extended as appropriate to the width of the full 6087product. 6088 6089``nuw`` and ``nsw`` stand for "No Unsigned Wrap" and "No Signed Wrap", 6090respectively. If the ``nuw`` and/or ``nsw`` keywords are present, the 6091result value of the ``mul`` is a :ref:`poison value <poisonvalues>` if 6092unsigned and/or signed overflow, respectively, occurs. 6093 6094Example: 6095"""""""" 6096 6097.. code-block:: text 6098 6099 <result> = mul i32 4, %var ; yields i32:result = 4 * %var 6100 6101.. _i_fmul: 6102 6103'``fmul``' Instruction 6104^^^^^^^^^^^^^^^^^^^^^^ 6105 6106Syntax: 6107""""""" 6108 6109:: 6110 6111 <result> = fmul [fast-math flags]* <ty> <op1>, <op2> ; yields ty:result 6112 6113Overview: 6114""""""""" 6115 6116The '``fmul``' instruction returns the product of its two operands. 6117 6118Arguments: 6119"""""""""" 6120 6121The two arguments to the '``fmul``' instruction must be :ref:`floating 6122point <t_floating>` or :ref:`vector <t_vector>` of floating point values. 6123Both arguments must have identical types. 6124 6125Semantics: 6126"""""""""" 6127 6128The value produced is the floating point product of the two operands. 6129This instruction can also take any number of :ref:`fast-math 6130flags <fastmath>`, which are optimization hints to enable otherwise 6131unsafe floating point optimizations: 6132 6133Example: 6134"""""""" 6135 6136.. code-block:: text 6137 6138 <result> = fmul float 4.0, %var ; yields float:result = 4.0 * %var 6139 6140'``udiv``' Instruction 6141^^^^^^^^^^^^^^^^^^^^^^ 6142 6143Syntax: 6144""""""" 6145 6146:: 6147 6148 <result> = udiv <ty> <op1>, <op2> ; yields ty:result 6149 <result> = udiv exact <ty> <op1>, <op2> ; yields ty:result 6150 6151Overview: 6152""""""""" 6153 6154The '``udiv``' instruction returns the quotient of its two operands. 6155 6156Arguments: 6157"""""""""" 6158 6159The two arguments to the '``udiv``' instruction must be 6160:ref:`integer <t_integer>` or :ref:`vector <t_vector>` of integer values. Both 6161arguments must have identical types. 6162 6163Semantics: 6164"""""""""" 6165 6166The value produced is the unsigned integer quotient of the two operands. 6167 6168Note that unsigned integer division and signed integer division are 6169distinct operations; for signed integer division, use '``sdiv``'. 6170 6171Division by zero leads to undefined behavior. 6172 6173If the ``exact`` keyword is present, the result value of the ``udiv`` is 6174a :ref:`poison value <poisonvalues>` if %op1 is not a multiple of %op2 (as 6175such, "((a udiv exact b) mul b) == a"). 6176 6177Example: 6178"""""""" 6179 6180.. code-block:: text 6181 6182 <result> = udiv i32 4, %var ; yields i32:result = 4 / %var 6183 6184'``sdiv``' Instruction 6185^^^^^^^^^^^^^^^^^^^^^^ 6186 6187Syntax: 6188""""""" 6189 6190:: 6191 6192 <result> = sdiv <ty> <op1>, <op2> ; yields ty:result 6193 <result> = sdiv exact <ty> <op1>, <op2> ; yields ty:result 6194 6195Overview: 6196""""""""" 6197 6198The '``sdiv``' instruction returns the quotient of its two operands. 6199 6200Arguments: 6201"""""""""" 6202 6203The two arguments to the '``sdiv``' instruction must be 6204:ref:`integer <t_integer>` or :ref:`vector <t_vector>` of integer values. Both 6205arguments must have identical types. 6206 6207Semantics: 6208"""""""""" 6209 6210The value produced is the signed integer quotient of the two operands 6211rounded towards zero. 6212 6213Note that signed integer division and unsigned integer division are 6214distinct operations; for unsigned integer division, use '``udiv``'. 6215 6216Division by zero leads to undefined behavior. Overflow also leads to 6217undefined behavior; this is a rare case, but can occur, for example, by 6218doing a 32-bit division of -2147483648 by -1. 6219 6220If the ``exact`` keyword is present, the result value of the ``sdiv`` is 6221a :ref:`poison value <poisonvalues>` if the result would be rounded. 6222 6223Example: 6224"""""""" 6225 6226.. code-block:: text 6227 6228 <result> = sdiv i32 4, %var ; yields i32:result = 4 / %var 6229 6230.. _i_fdiv: 6231 6232'``fdiv``' Instruction 6233^^^^^^^^^^^^^^^^^^^^^^ 6234 6235Syntax: 6236""""""" 6237 6238:: 6239 6240 <result> = fdiv [fast-math flags]* <ty> <op1>, <op2> ; yields ty:result 6241 6242Overview: 6243""""""""" 6244 6245The '``fdiv``' instruction returns the quotient of its two operands. 6246 6247Arguments: 6248"""""""""" 6249 6250The two arguments to the '``fdiv``' instruction must be :ref:`floating 6251point <t_floating>` or :ref:`vector <t_vector>` of floating point values. 6252Both arguments must have identical types. 6253 6254Semantics: 6255"""""""""" 6256 6257The value produced is the floating point quotient of the two operands. 6258This instruction can also take any number of :ref:`fast-math 6259flags <fastmath>`, which are optimization hints to enable otherwise 6260unsafe floating point optimizations: 6261 6262Example: 6263"""""""" 6264 6265.. code-block:: text 6266 6267 <result> = fdiv float 4.0, %var ; yields float:result = 4.0 / %var 6268 6269'``urem``' Instruction 6270^^^^^^^^^^^^^^^^^^^^^^ 6271 6272Syntax: 6273""""""" 6274 6275:: 6276 6277 <result> = urem <ty> <op1>, <op2> ; yields ty:result 6278 6279Overview: 6280""""""""" 6281 6282The '``urem``' instruction returns the remainder from the unsigned 6283division of its two arguments. 6284 6285Arguments: 6286"""""""""" 6287 6288The two arguments to the '``urem``' instruction must be 6289:ref:`integer <t_integer>` or :ref:`vector <t_vector>` of integer values. Both 6290arguments must have identical types. 6291 6292Semantics: 6293"""""""""" 6294 6295This instruction returns the unsigned integer *remainder* of a division. 6296This instruction always performs an unsigned division to get the 6297remainder. 6298 6299Note that unsigned integer remainder and signed integer remainder are 6300distinct operations; for signed integer remainder, use '``srem``'. 6301 6302Taking the remainder of a division by zero leads to undefined behavior. 6303 6304Example: 6305"""""""" 6306 6307.. code-block:: text 6308 6309 <result> = urem i32 4, %var ; yields i32:result = 4 % %var 6310 6311'``srem``' Instruction 6312^^^^^^^^^^^^^^^^^^^^^^ 6313 6314Syntax: 6315""""""" 6316 6317:: 6318 6319 <result> = srem <ty> <op1>, <op2> ; yields ty:result 6320 6321Overview: 6322""""""""" 6323 6324The '``srem``' instruction returns the remainder from the signed 6325division of its two operands. This instruction can also take 6326:ref:`vector <t_vector>` versions of the values in which case the elements 6327must be integers. 6328 6329Arguments: 6330"""""""""" 6331 6332The two arguments to the '``srem``' instruction must be 6333:ref:`integer <t_integer>` or :ref:`vector <t_vector>` of integer values. Both 6334arguments must have identical types. 6335 6336Semantics: 6337"""""""""" 6338 6339This instruction returns the *remainder* of a division (where the result 6340is either zero or has the same sign as the dividend, ``op1``), not the 6341*modulo* operator (where the result is either zero or has the same sign 6342as the divisor, ``op2``) of a value. For more information about the 6343difference, see `The Math 6344Forum <http://mathforum.org/dr.math/problems/anne.4.28.99.html>`_. For a 6345table of how this is implemented in various languages, please see 6346`Wikipedia: modulo 6347operation <http://en.wikipedia.org/wiki/Modulo_operation>`_. 6348 6349Note that signed integer remainder and unsigned integer remainder are 6350distinct operations; for unsigned integer remainder, use '``urem``'. 6351 6352Taking the remainder of a division by zero leads to undefined behavior. 6353Overflow also leads to undefined behavior; this is a rare case, but can 6354occur, for example, by taking the remainder of a 32-bit division of 6355-2147483648 by -1. (The remainder doesn't actually overflow, but this 6356rule lets srem be implemented using instructions that return both the 6357result of the division and the remainder.) 6358 6359Example: 6360"""""""" 6361 6362.. code-block:: text 6363 6364 <result> = srem i32 4, %var ; yields i32:result = 4 % %var 6365 6366.. _i_frem: 6367 6368'``frem``' Instruction 6369^^^^^^^^^^^^^^^^^^^^^^ 6370 6371Syntax: 6372""""""" 6373 6374:: 6375 6376 <result> = frem [fast-math flags]* <ty> <op1>, <op2> ; yields ty:result 6377 6378Overview: 6379""""""""" 6380 6381The '``frem``' instruction returns the remainder from the division of 6382its two operands. 6383 6384Arguments: 6385"""""""""" 6386 6387The two arguments to the '``frem``' instruction must be :ref:`floating 6388point <t_floating>` or :ref:`vector <t_vector>` of floating point values. 6389Both arguments must have identical types. 6390 6391Semantics: 6392"""""""""" 6393 6394This instruction returns the *remainder* of a division. The remainder 6395has the same sign as the dividend. This instruction can also take any 6396number of :ref:`fast-math flags <fastmath>`, which are optimization hints 6397to enable otherwise unsafe floating point optimizations: 6398 6399Example: 6400"""""""" 6401 6402.. code-block:: text 6403 6404 <result> = frem float 4.0, %var ; yields float:result = 4.0 % %var 6405 6406.. _bitwiseops: 6407 6408Bitwise Binary Operations 6409------------------------- 6410 6411Bitwise binary operators are used to do various forms of bit-twiddling 6412in a program. They are generally very efficient instructions and can 6413commonly be strength reduced from other instructions. They require two 6414operands of the same type, execute an operation on them, and produce a 6415single value. The resulting value is the same type as its operands. 6416 6417'``shl``' Instruction 6418^^^^^^^^^^^^^^^^^^^^^ 6419 6420Syntax: 6421""""""" 6422 6423:: 6424 6425 <result> = shl <ty> <op1>, <op2> ; yields ty:result 6426 <result> = shl nuw <ty> <op1>, <op2> ; yields ty:result 6427 <result> = shl nsw <ty> <op1>, <op2> ; yields ty:result 6428 <result> = shl nuw nsw <ty> <op1>, <op2> ; yields ty:result 6429 6430Overview: 6431""""""""" 6432 6433The '``shl``' instruction returns the first operand shifted to the left 6434a specified number of bits. 6435 6436Arguments: 6437"""""""""" 6438 6439Both arguments to the '``shl``' instruction must be the same 6440:ref:`integer <t_integer>` or :ref:`vector <t_vector>` of integer type. 6441'``op2``' is treated as an unsigned value. 6442 6443Semantics: 6444"""""""""" 6445 6446The value produced is ``op1`` \* 2\ :sup:`op2` mod 2\ :sup:`n`, 6447where ``n`` is the width of the result. If ``op2`` is (statically or 6448dynamically) equal to or larger than the number of bits in 6449``op1``, the result is undefined. If the arguments are vectors, each 6450vector element of ``op1`` is shifted by the corresponding shift amount 6451in ``op2``. 6452 6453If the ``nuw`` keyword is present, then the shift produces a :ref:`poison 6454value <poisonvalues>` if it shifts out any non-zero bits. If the 6455``nsw`` keyword is present, then the shift produces a :ref:`poison 6456value <poisonvalues>` if it shifts out any bits that disagree with the 6457resultant sign bit. 6458 6459Example: 6460"""""""" 6461 6462.. code-block:: text 6463 6464 <result> = shl i32 4, %var ; yields i32: 4 << %var 6465 <result> = shl i32 4, 2 ; yields i32: 16 6466 <result> = shl i32 1, 10 ; yields i32: 1024 6467 <result> = shl i32 1, 32 ; undefined 6468 <result> = shl <2 x i32> < i32 1, i32 1>, < i32 1, i32 2> ; yields: result=<2 x i32> < i32 2, i32 4> 6469 6470'``lshr``' Instruction 6471^^^^^^^^^^^^^^^^^^^^^^ 6472 6473Syntax: 6474""""""" 6475 6476:: 6477 6478 <result> = lshr <ty> <op1>, <op2> ; yields ty:result 6479 <result> = lshr exact <ty> <op1>, <op2> ; yields ty:result 6480 6481Overview: 6482""""""""" 6483 6484The '``lshr``' instruction (logical shift right) returns the first 6485operand shifted to the right a specified number of bits with zero fill. 6486 6487Arguments: 6488"""""""""" 6489 6490Both arguments to the '``lshr``' instruction must be the same 6491:ref:`integer <t_integer>` or :ref:`vector <t_vector>` of integer type. 6492'``op2``' is treated as an unsigned value. 6493 6494Semantics: 6495"""""""""" 6496 6497This instruction always performs a logical shift right operation. The 6498most significant bits of the result will be filled with zero bits after 6499the shift. If ``op2`` is (statically or dynamically) equal to or larger 6500than the number of bits in ``op1``, the result is undefined. If the 6501arguments are vectors, each vector element of ``op1`` is shifted by the 6502corresponding shift amount in ``op2``. 6503 6504If the ``exact`` keyword is present, the result value of the ``lshr`` is 6505a :ref:`poison value <poisonvalues>` if any of the bits shifted out are 6506non-zero. 6507 6508Example: 6509"""""""" 6510 6511.. code-block:: text 6512 6513 <result> = lshr i32 4, 1 ; yields i32:result = 2 6514 <result> = lshr i32 4, 2 ; yields i32:result = 1 6515 <result> = lshr i8 4, 3 ; yields i8:result = 0 6516 <result> = lshr i8 -2, 1 ; yields i8:result = 0x7F 6517 <result> = lshr i32 1, 32 ; undefined 6518 <result> = lshr <2 x i32> < i32 -2, i32 4>, < i32 1, i32 2> ; yields: result=<2 x i32> < i32 0x7FFFFFFF, i32 1> 6519 6520'``ashr``' Instruction 6521^^^^^^^^^^^^^^^^^^^^^^ 6522 6523Syntax: 6524""""""" 6525 6526:: 6527 6528 <result> = ashr <ty> <op1>, <op2> ; yields ty:result 6529 <result> = ashr exact <ty> <op1>, <op2> ; yields ty:result 6530 6531Overview: 6532""""""""" 6533 6534The '``ashr``' instruction (arithmetic shift right) returns the first 6535operand shifted to the right a specified number of bits with sign 6536extension. 6537 6538Arguments: 6539"""""""""" 6540 6541Both arguments to the '``ashr``' instruction must be the same 6542:ref:`integer <t_integer>` or :ref:`vector <t_vector>` of integer type. 6543'``op2``' is treated as an unsigned value. 6544 6545Semantics: 6546"""""""""" 6547 6548This instruction always performs an arithmetic shift right operation, 6549The most significant bits of the result will be filled with the sign bit 6550of ``op1``. If ``op2`` is (statically or dynamically) equal to or larger 6551than the number of bits in ``op1``, the result is undefined. If the 6552arguments are vectors, each vector element of ``op1`` is shifted by the 6553corresponding shift amount in ``op2``. 6554 6555If the ``exact`` keyword is present, the result value of the ``ashr`` is 6556a :ref:`poison value <poisonvalues>` if any of the bits shifted out are 6557non-zero. 6558 6559Example: 6560"""""""" 6561 6562.. code-block:: text 6563 6564 <result> = ashr i32 4, 1 ; yields i32:result = 2 6565 <result> = ashr i32 4, 2 ; yields i32:result = 1 6566 <result> = ashr i8 4, 3 ; yields i8:result = 0 6567 <result> = ashr i8 -2, 1 ; yields i8:result = -1 6568 <result> = ashr i32 1, 32 ; undefined 6569 <result> = ashr <2 x i32> < i32 -2, i32 4>, < i32 1, i32 3> ; yields: result=<2 x i32> < i32 -1, i32 0> 6570 6571'``and``' Instruction 6572^^^^^^^^^^^^^^^^^^^^^ 6573 6574Syntax: 6575""""""" 6576 6577:: 6578 6579 <result> = and <ty> <op1>, <op2> ; yields ty:result 6580 6581Overview: 6582""""""""" 6583 6584The '``and``' instruction returns the bitwise logical and of its two 6585operands. 6586 6587Arguments: 6588"""""""""" 6589 6590The two arguments to the '``and``' instruction must be 6591:ref:`integer <t_integer>` or :ref:`vector <t_vector>` of integer values. Both 6592arguments must have identical types. 6593 6594Semantics: 6595"""""""""" 6596 6597The truth table used for the '``and``' instruction is: 6598 6599+-----+-----+-----+ 6600| In0 | In1 | Out | 6601+-----+-----+-----+ 6602| 0 | 0 | 0 | 6603+-----+-----+-----+ 6604| 0 | 1 | 0 | 6605+-----+-----+-----+ 6606| 1 | 0 | 0 | 6607+-----+-----+-----+ 6608| 1 | 1 | 1 | 6609+-----+-----+-----+ 6610 6611Example: 6612"""""""" 6613 6614.. code-block:: text 6615 6616 <result> = and i32 4, %var ; yields i32:result = 4 & %var 6617 <result> = and i32 15, 40 ; yields i32:result = 8 6618 <result> = and i32 4, 8 ; yields i32:result = 0 6619 6620'``or``' Instruction 6621^^^^^^^^^^^^^^^^^^^^ 6622 6623Syntax: 6624""""""" 6625 6626:: 6627 6628 <result> = or <ty> <op1>, <op2> ; yields ty:result 6629 6630Overview: 6631""""""""" 6632 6633The '``or``' instruction returns the bitwise logical inclusive or of its 6634two operands. 6635 6636Arguments: 6637"""""""""" 6638 6639The two arguments to the '``or``' instruction must be 6640:ref:`integer <t_integer>` or :ref:`vector <t_vector>` of integer values. Both 6641arguments must have identical types. 6642 6643Semantics: 6644"""""""""" 6645 6646The truth table used for the '``or``' instruction is: 6647 6648+-----+-----+-----+ 6649| In0 | In1 | Out | 6650+-----+-----+-----+ 6651| 0 | 0 | 0 | 6652+-----+-----+-----+ 6653| 0 | 1 | 1 | 6654+-----+-----+-----+ 6655| 1 | 0 | 1 | 6656+-----+-----+-----+ 6657| 1 | 1 | 1 | 6658+-----+-----+-----+ 6659 6660Example: 6661"""""""" 6662 6663:: 6664 6665 <result> = or i32 4, %var ; yields i32:result = 4 | %var 6666 <result> = or i32 15, 40 ; yields i32:result = 47 6667 <result> = or i32 4, 8 ; yields i32:result = 12 6668 6669'``xor``' Instruction 6670^^^^^^^^^^^^^^^^^^^^^ 6671 6672Syntax: 6673""""""" 6674 6675:: 6676 6677 <result> = xor <ty> <op1>, <op2> ; yields ty:result 6678 6679Overview: 6680""""""""" 6681 6682The '``xor``' instruction returns the bitwise logical exclusive or of 6683its two operands. The ``xor`` is used to implement the "one's 6684complement" operation, which is the "~" operator in C. 6685 6686Arguments: 6687"""""""""" 6688 6689The two arguments to the '``xor``' instruction must be 6690:ref:`integer <t_integer>` or :ref:`vector <t_vector>` of integer values. Both 6691arguments must have identical types. 6692 6693Semantics: 6694"""""""""" 6695 6696The truth table used for the '``xor``' instruction is: 6697 6698+-----+-----+-----+ 6699| In0 | In1 | Out | 6700+-----+-----+-----+ 6701| 0 | 0 | 0 | 6702+-----+-----+-----+ 6703| 0 | 1 | 1 | 6704+-----+-----+-----+ 6705| 1 | 0 | 1 | 6706+-----+-----+-----+ 6707| 1 | 1 | 0 | 6708+-----+-----+-----+ 6709 6710Example: 6711"""""""" 6712 6713.. code-block:: text 6714 6715 <result> = xor i32 4, %var ; yields i32:result = 4 ^ %var 6716 <result> = xor i32 15, 40 ; yields i32:result = 39 6717 <result> = xor i32 4, 8 ; yields i32:result = 12 6718 <result> = xor i32 %V, -1 ; yields i32:result = ~%V 6719 6720Vector Operations 6721----------------- 6722 6723LLVM supports several instructions to represent vector operations in a 6724target-independent manner. These instructions cover the element-access 6725and vector-specific operations needed to process vectors effectively. 6726While LLVM does directly support these vector operations, many 6727sophisticated algorithms will want to use target-specific intrinsics to 6728take full advantage of a specific target. 6729 6730.. _i_extractelement: 6731 6732'``extractelement``' Instruction 6733^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 6734 6735Syntax: 6736""""""" 6737 6738:: 6739 6740 <result> = extractelement <n x <ty>> <val>, <ty2> <idx> ; yields <ty> 6741 6742Overview: 6743""""""""" 6744 6745The '``extractelement``' instruction extracts a single scalar element 6746from a vector at a specified index. 6747 6748Arguments: 6749"""""""""" 6750 6751The first operand of an '``extractelement``' instruction is a value of 6752:ref:`vector <t_vector>` type. The second operand is an index indicating 6753the position from which to extract the element. The index may be a 6754variable of any integer type. 6755 6756Semantics: 6757"""""""""" 6758 6759The result is a scalar of the same type as the element type of ``val``. 6760Its value is the value at position ``idx`` of ``val``. If ``idx`` 6761exceeds the length of ``val``, the results are undefined. 6762 6763Example: 6764"""""""" 6765 6766.. code-block:: text 6767 6768 <result> = extractelement <4 x i32> %vec, i32 0 ; yields i32 6769 6770.. _i_insertelement: 6771 6772'``insertelement``' Instruction 6773^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 6774 6775Syntax: 6776""""""" 6777 6778:: 6779 6780 <result> = insertelement <n x <ty>> <val>, <ty> <elt>, <ty2> <idx> ; yields <n x <ty>> 6781 6782Overview: 6783""""""""" 6784 6785The '``insertelement``' instruction inserts a scalar element into a 6786vector at a specified index. 6787 6788Arguments: 6789"""""""""" 6790 6791The first operand of an '``insertelement``' instruction is a value of 6792:ref:`vector <t_vector>` type. The second operand is a scalar value whose 6793type must equal the element type of the first operand. The third operand 6794is an index indicating the position at which to insert the value. The 6795index may be a variable of any integer type. 6796 6797Semantics: 6798"""""""""" 6799 6800The result is a vector of the same type as ``val``. Its element values 6801are those of ``val`` except at position ``idx``, where it gets the value 6802``elt``. If ``idx`` exceeds the length of ``val``, the results are 6803undefined. 6804 6805Example: 6806"""""""" 6807 6808.. code-block:: text 6809 6810 <result> = insertelement <4 x i32> %vec, i32 1, i32 0 ; yields <4 x i32> 6811 6812.. _i_shufflevector: 6813 6814'``shufflevector``' Instruction 6815^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 6816 6817Syntax: 6818""""""" 6819 6820:: 6821 6822 <result> = shufflevector <n x <ty>> <v1>, <n x <ty>> <v2>, <m x i32> <mask> ; yields <m x <ty>> 6823 6824Overview: 6825""""""""" 6826 6827The '``shufflevector``' instruction constructs a permutation of elements 6828from two input vectors, returning a vector with the same element type as 6829the input and length that is the same as the shuffle mask. 6830 6831Arguments: 6832"""""""""" 6833 6834The first two operands of a '``shufflevector``' instruction are vectors 6835with the same type. The third argument is a shuffle mask whose element 6836type is always 'i32'. The result of the instruction is a vector whose 6837length is the same as the shuffle mask and whose element type is the 6838same as the element type of the first two operands. 6839 6840The shuffle mask operand is required to be a constant vector with either 6841constant integer or undef values. 6842 6843Semantics: 6844"""""""""" 6845 6846The elements of the two input vectors are numbered from left to right 6847across both of the vectors. The shuffle mask operand specifies, for each 6848element of the result vector, which element of the two input vectors the 6849result element gets. The element selector may be undef (meaning "don't 6850care") and the second operand may be undef if performing a shuffle from 6851only one vector. 6852 6853Example: 6854"""""""" 6855 6856.. code-block:: text 6857 6858 <result> = shufflevector <4 x i32> %v1, <4 x i32> %v2, 6859 <4 x i32> <i32 0, i32 4, i32 1, i32 5> ; yields <4 x i32> 6860 <result> = shufflevector <4 x i32> %v1, <4 x i32> undef, 6861 <4 x i32> <i32 0, i32 1, i32 2, i32 3> ; yields <4 x i32> - Identity shuffle. 6862 <result> = shufflevector <8 x i32> %v1, <8 x i32> undef, 6863 <4 x i32> <i32 0, i32 1, i32 2, i32 3> ; yields <4 x i32> 6864 <result> = shufflevector <4 x i32> %v1, <4 x i32> %v2, 6865 <8 x i32> <i32 0, i32 1, i32 2, i32 3, i32 4, i32 5, i32 6, i32 7 > ; yields <8 x i32> 6866 6867Aggregate Operations 6868-------------------- 6869 6870LLVM supports several instructions for working with 6871:ref:`aggregate <t_aggregate>` values. 6872 6873.. _i_extractvalue: 6874 6875'``extractvalue``' Instruction 6876^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 6877 6878Syntax: 6879""""""" 6880 6881:: 6882 6883 <result> = extractvalue <aggregate type> <val>, <idx>{, <idx>}* 6884 6885Overview: 6886""""""""" 6887 6888The '``extractvalue``' instruction extracts the value of a member field 6889from an :ref:`aggregate <t_aggregate>` value. 6890 6891Arguments: 6892"""""""""" 6893 6894The first operand of an '``extractvalue``' instruction is a value of 6895:ref:`struct <t_struct>` or :ref:`array <t_array>` type. The other operands are 6896constant indices to specify which value to extract in a similar manner 6897as indices in a '``getelementptr``' instruction. 6898 6899The major differences to ``getelementptr`` indexing are: 6900 6901- Since the value being indexed is not a pointer, the first index is 6902 omitted and assumed to be zero. 6903- At least one index must be specified. 6904- Not only struct indices but also array indices must be in bounds. 6905 6906Semantics: 6907"""""""""" 6908 6909The result is the value at the position in the aggregate specified by 6910the index operands. 6911 6912Example: 6913"""""""" 6914 6915.. code-block:: text 6916 6917 <result> = extractvalue {i32, float} %agg, 0 ; yields i32 6918 6919.. _i_insertvalue: 6920 6921'``insertvalue``' Instruction 6922^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 6923 6924Syntax: 6925""""""" 6926 6927:: 6928 6929 <result> = insertvalue <aggregate type> <val>, <ty> <elt>, <idx>{, <idx>}* ; yields <aggregate type> 6930 6931Overview: 6932""""""""" 6933 6934The '``insertvalue``' instruction inserts a value into a member field in 6935an :ref:`aggregate <t_aggregate>` value. 6936 6937Arguments: 6938"""""""""" 6939 6940The first operand of an '``insertvalue``' instruction is a value of 6941:ref:`struct <t_struct>` or :ref:`array <t_array>` type. The second operand is 6942a first-class value to insert. The following operands are constant 6943indices indicating the position at which to insert the value in a 6944similar manner as indices in a '``extractvalue``' instruction. The value 6945to insert must have the same type as the value identified by the 6946indices. 6947 6948Semantics: 6949"""""""""" 6950 6951The result is an aggregate of the same type as ``val``. Its value is 6952that of ``val`` except that the value at the position specified by the 6953indices is that of ``elt``. 6954 6955Example: 6956"""""""" 6957 6958.. code-block:: llvm 6959 6960 %agg1 = insertvalue {i32, float} undef, i32 1, 0 ; yields {i32 1, float undef} 6961 %agg2 = insertvalue {i32, float} %agg1, float %val, 1 ; yields {i32 1, float %val} 6962 %agg3 = insertvalue {i32, {float}} undef, float %val, 1, 0 ; yields {i32 undef, {float %val}} 6963 6964.. _memoryops: 6965 6966Memory Access and Addressing Operations 6967--------------------------------------- 6968 6969A key design point of an SSA-based representation is how it represents 6970memory. In LLVM, no memory locations are in SSA form, which makes things 6971very simple. This section describes how to read, write, and allocate 6972memory in LLVM. 6973 6974.. _i_alloca: 6975 6976'``alloca``' Instruction 6977^^^^^^^^^^^^^^^^^^^^^^^^ 6978 6979Syntax: 6980""""""" 6981 6982:: 6983 6984 <result> = alloca [inalloca] <type> [, <ty> <NumElements>] [, align <alignment>] ; yields type*:result 6985 6986Overview: 6987""""""""" 6988 6989The '``alloca``' instruction allocates memory on the stack frame of the 6990currently executing function, to be automatically released when this 6991function returns to its caller. The object is always allocated in the 6992generic address space (address space zero). 6993 6994Arguments: 6995"""""""""" 6996 6997The '``alloca``' instruction allocates ``sizeof(<type>)*NumElements`` 6998bytes of memory on the runtime stack, returning a pointer of the 6999appropriate type to the program. If "NumElements" is specified, it is 7000the number of elements allocated, otherwise "NumElements" is defaulted 7001to be one. If a constant alignment is specified, the value result of the 7002allocation is guaranteed to be aligned to at least that boundary. The 7003alignment may not be greater than ``1 << 29``. If not specified, or if 7004zero, the target can choose to align the allocation on any convenient 7005boundary compatible with the type. 7006 7007'``type``' may be any sized type. 7008 7009Semantics: 7010"""""""""" 7011 7012Memory is allocated; a pointer is returned. The operation is undefined 7013if there is insufficient stack space for the allocation. '``alloca``'d 7014memory is automatically released when the function returns. The 7015'``alloca``' instruction is commonly used to represent automatic 7016variables that must have an address available. When the function returns 7017(either with the ``ret`` or ``resume`` instructions), the memory is 7018reclaimed. Allocating zero bytes is legal, but the result is undefined. 7019The order in which memory is allocated (ie., which way the stack grows) 7020is not specified. 7021 7022Example: 7023"""""""" 7024 7025.. code-block:: llvm 7026 7027 %ptr = alloca i32 ; yields i32*:ptr 7028 %ptr = alloca i32, i32 4 ; yields i32*:ptr 7029 %ptr = alloca i32, i32 4, align 1024 ; yields i32*:ptr 7030 %ptr = alloca i32, align 1024 ; yields i32*:ptr 7031 7032.. _i_load: 7033 7034'``load``' Instruction 7035^^^^^^^^^^^^^^^^^^^^^^ 7036 7037Syntax: 7038""""""" 7039 7040:: 7041 7042 <result> = load [volatile] <ty>, <ty>* <pointer>[, align <alignment>][, !nontemporal !<index>][, !invariant.load !<index>][, !invariant.group !<index>][, !nonnull !<index>][, !dereferenceable !<deref_bytes_node>][, !dereferenceable_or_null !<deref_bytes_node>][, !align !<align_node>] 7043 <result> = load atomic [volatile] <ty>, <ty>* <pointer> [singlethread] <ordering>, align <alignment> [, !invariant.group !<index>] 7044 !<index> = !{ i32 1 } 7045 !<deref_bytes_node> = !{i64 <dereferenceable_bytes>} 7046 !<align_node> = !{ i64 <value_alignment> } 7047 7048Overview: 7049""""""""" 7050 7051The '``load``' instruction is used to read from memory. 7052 7053Arguments: 7054"""""""""" 7055 7056The argument to the ``load`` instruction specifies the memory address from which 7057to load. The type specified must be a :ref:`first class <t_firstclass>` type of 7058known size (i.e. not containing an :ref:`opaque structural type <t_opaque>`). If 7059the ``load`` is marked as ``volatile``, then the optimizer is not allowed to 7060modify the number or order of execution of this ``load`` with other 7061:ref:`volatile operations <volatile>`. 7062 7063If the ``load`` is marked as ``atomic``, it takes an extra :ref:`ordering 7064<ordering>` and optional ``singlethread`` argument. The ``release`` and 7065``acq_rel`` orderings are not valid on ``load`` instructions. Atomic loads 7066produce :ref:`defined <memmodel>` results when they may see multiple atomic 7067stores. The type of the pointee must be an integer, pointer, or floating-point 7068type whose bit width is a power of two greater than or equal to eight and less 7069than or equal to a target-specific size limit. ``align`` must be explicitly 7070specified on atomic loads, and the load has undefined behavior if the alignment 7071is not set to a value which is at least the size in bytes of the 7072pointee. ``!nontemporal`` does not have any defined semantics for atomic loads. 7073 7074The optional constant ``align`` argument specifies the alignment of the 7075operation (that is, the alignment of the memory address). A value of 0 7076or an omitted ``align`` argument means that the operation has the ABI 7077alignment for the target. It is the responsibility of the code emitter 7078to ensure that the alignment information is correct. Overestimating the 7079alignment results in undefined behavior. Underestimating the alignment 7080may produce less efficient code. An alignment of 1 is always safe. The 7081maximum possible alignment is ``1 << 29``. An alignment value higher 7082than the size of the loaded type implies memory up to the alignment 7083value bytes can be safely loaded without trapping in the default 7084address space. Access of the high bytes can interfere with debugging 7085tools, so should not be accessed if the function has the 7086``sanitize_thread`` or ``sanitize_address`` attributes. 7087 7088The optional ``!nontemporal`` metadata must reference a single 7089metadata name ``<index>`` corresponding to a metadata node with one 7090``i32`` entry of value 1. The existence of the ``!nontemporal`` 7091metadata on the instruction tells the optimizer and code generator 7092that this load is not expected to be reused in the cache. The code 7093generator may select special instructions to save cache bandwidth, such 7094as the ``MOVNT`` instruction on x86. 7095 7096The optional ``!invariant.load`` metadata must reference a single 7097metadata name ``<index>`` corresponding to a metadata node with no 7098entries. If a load instruction tagged with the ``!invariant.load`` 7099metadata is executed, the optimizer may assume the memory location 7100referenced by the load contains the same value at all points in the 7101program where the memory location is known to be dereferenceable. 7102 7103The optional ``!invariant.group`` metadata must reference a single metadata name 7104 ``<index>`` corresponding to a metadata node. See ``invariant.group`` metadata. 7105 7106The optional ``!nonnull`` metadata must reference a single 7107metadata name ``<index>`` corresponding to a metadata node with no 7108entries. The existence of the ``!nonnull`` metadata on the 7109instruction tells the optimizer that the value loaded is known to 7110never be null. This is analogous to the ``nonnull`` attribute 7111on parameters and return values. This metadata can only be applied 7112to loads of a pointer type. 7113 7114The optional ``!dereferenceable`` metadata must reference a single metadata 7115name ``<deref_bytes_node>`` corresponding to a metadata node with one ``i64`` 7116entry. The existence of the ``!dereferenceable`` metadata on the instruction 7117tells the optimizer that the value loaded is known to be dereferenceable. 7118The number of bytes known to be dereferenceable is specified by the integer 7119value in the metadata node. This is analogous to the ''dereferenceable'' 7120attribute on parameters and return values. This metadata can only be applied 7121to loads of a pointer type. 7122 7123The optional ``!dereferenceable_or_null`` metadata must reference a single 7124metadata name ``<deref_bytes_node>`` corresponding to a metadata node with one 7125``i64`` entry. The existence of the ``!dereferenceable_or_null`` metadata on the 7126instruction tells the optimizer that the value loaded is known to be either 7127dereferenceable or null. 7128The number of bytes known to be dereferenceable is specified by the integer 7129value in the metadata node. This is analogous to the ''dereferenceable_or_null'' 7130attribute on parameters and return values. This metadata can only be applied 7131to loads of a pointer type. 7132 7133The optional ``!align`` metadata must reference a single metadata name 7134``<align_node>`` corresponding to a metadata node with one ``i64`` entry. 7135The existence of the ``!align`` metadata on the instruction tells the 7136optimizer that the value loaded is known to be aligned to a boundary specified 7137by the integer value in the metadata node. The alignment must be a power of 2. 7138This is analogous to the ''align'' attribute on parameters and return values. 7139This metadata can only be applied to loads of a pointer type. 7140 7141Semantics: 7142"""""""""" 7143 7144The location of memory pointed to is loaded. If the value being loaded 7145is of scalar type then the number of bytes read does not exceed the 7146minimum number of bytes needed to hold all bits of the type. For 7147example, loading an ``i24`` reads at most three bytes. When loading a 7148value of a type like ``i20`` with a size that is not an integral number 7149of bytes, the result is undefined if the value was not originally 7150written using a store of the same type. 7151 7152Examples: 7153""""""""" 7154 7155.. code-block:: llvm 7156 7157 %ptr = alloca i32 ; yields i32*:ptr 7158 store i32 3, i32* %ptr ; yields void 7159 %val = load i32, i32* %ptr ; yields i32:val = i32 3 7160 7161.. _i_store: 7162 7163'``store``' Instruction 7164^^^^^^^^^^^^^^^^^^^^^^^ 7165 7166Syntax: 7167""""""" 7168 7169:: 7170 7171 store [volatile] <ty> <value>, <ty>* <pointer>[, align <alignment>][, !nontemporal !<index>][, !invariant.group !<index>] ; yields void 7172 store atomic [volatile] <ty> <value>, <ty>* <pointer> [singlethread] <ordering>, align <alignment> [, !invariant.group !<index>] ; yields void 7173 7174Overview: 7175""""""""" 7176 7177The '``store``' instruction is used to write to memory. 7178 7179Arguments: 7180"""""""""" 7181 7182There are two arguments to the ``store`` instruction: a value to store and an 7183address at which to store it. The type of the ``<pointer>`` operand must be a 7184pointer to the :ref:`first class <t_firstclass>` type of the ``<value>`` 7185operand. If the ``store`` is marked as ``volatile``, then the optimizer is not 7186allowed to modify the number or order of execution of this ``store`` with other 7187:ref:`volatile operations <volatile>`. Only values of :ref:`first class 7188<t_firstclass>` types of known size (i.e. not containing an :ref:`opaque 7189structural type <t_opaque>`) can be stored. 7190 7191If the ``store`` is marked as ``atomic``, it takes an extra :ref:`ordering 7192<ordering>` and optional ``singlethread`` argument. The ``acquire`` and 7193``acq_rel`` orderings aren't valid on ``store`` instructions. Atomic loads 7194produce :ref:`defined <memmodel>` results when they may see multiple atomic 7195stores. The type of the pointee must be an integer, pointer, or floating-point 7196type whose bit width is a power of two greater than or equal to eight and less 7197than or equal to a target-specific size limit. ``align`` must be explicitly 7198specified on atomic stores, and the store has undefined behavior if the 7199alignment is not set to a value which is at least the size in bytes of the 7200pointee. ``!nontemporal`` does not have any defined semantics for atomic stores. 7201 7202The optional constant ``align`` argument specifies the alignment of the 7203operation (that is, the alignment of the memory address). A value of 0 7204or an omitted ``align`` argument means that the operation has the ABI 7205alignment for the target. It is the responsibility of the code emitter 7206to ensure that the alignment information is correct. Overestimating the 7207alignment results in undefined behavior. Underestimating the 7208alignment may produce less efficient code. An alignment of 1 is always 7209safe. The maximum possible alignment is ``1 << 29``. An alignment 7210value higher than the size of the stored type implies memory up to the 7211alignment value bytes can be stored to without trapping in the default 7212address space. Storing to the higher bytes however may result in data 7213races if another thread can access the same address. Introducing a 7214data race is not allowed. Storing to the extra bytes is not allowed 7215even in situations where a data race is known to not exist if the 7216function has the ``sanitize_address`` attribute. 7217 7218The optional ``!nontemporal`` metadata must reference a single metadata 7219name ``<index>`` corresponding to a metadata node with one ``i32`` entry of 7220value 1. The existence of the ``!nontemporal`` metadata on the instruction 7221tells the optimizer and code generator that this load is not expected to 7222be reused in the cache. The code generator may select special 7223instructions to save cache bandwidth, such as the ``MOVNT`` instruction on 7224x86. 7225 7226The optional ``!invariant.group`` metadata must reference a 7227single metadata name ``<index>``. See ``invariant.group`` metadata. 7228 7229Semantics: 7230"""""""""" 7231 7232The contents of memory are updated to contain ``<value>`` at the 7233location specified by the ``<pointer>`` operand. If ``<value>`` is 7234of scalar type then the number of bytes written does not exceed the 7235minimum number of bytes needed to hold all bits of the type. For 7236example, storing an ``i24`` writes at most three bytes. When writing a 7237value of a type like ``i20`` with a size that is not an integral number 7238of bytes, it is unspecified what happens to the extra bits that do not 7239belong to the type, but they will typically be overwritten. 7240 7241Example: 7242"""""""" 7243 7244.. code-block:: llvm 7245 7246 %ptr = alloca i32 ; yields i32*:ptr 7247 store i32 3, i32* %ptr ; yields void 7248 %val = load i32, i32* %ptr ; yields i32:val = i32 3 7249 7250.. _i_fence: 7251 7252'``fence``' Instruction 7253^^^^^^^^^^^^^^^^^^^^^^^ 7254 7255Syntax: 7256""""""" 7257 7258:: 7259 7260 fence [singlethread] <ordering> ; yields void 7261 7262Overview: 7263""""""""" 7264 7265The '``fence``' instruction is used to introduce happens-before edges 7266between operations. 7267 7268Arguments: 7269"""""""""" 7270 7271'``fence``' instructions take an :ref:`ordering <ordering>` argument which 7272defines what *synchronizes-with* edges they add. They can only be given 7273``acquire``, ``release``, ``acq_rel``, and ``seq_cst`` orderings. 7274 7275Semantics: 7276"""""""""" 7277 7278A fence A which has (at least) ``release`` ordering semantics 7279*synchronizes with* a fence B with (at least) ``acquire`` ordering 7280semantics if and only if there exist atomic operations X and Y, both 7281operating on some atomic object M, such that A is sequenced before X, X 7282modifies M (either directly or through some side effect of a sequence 7283headed by X), Y is sequenced before B, and Y observes M. This provides a 7284*happens-before* dependency between A and B. Rather than an explicit 7285``fence``, one (but not both) of the atomic operations X or Y might 7286provide a ``release`` or ``acquire`` (resp.) ordering constraint and 7287still *synchronize-with* the explicit ``fence`` and establish the 7288*happens-before* edge. 7289 7290A ``fence`` which has ``seq_cst`` ordering, in addition to having both 7291``acquire`` and ``release`` semantics specified above, participates in 7292the global program order of other ``seq_cst`` operations and/or fences. 7293 7294The optional ":ref:`singlethread <singlethread>`" argument specifies 7295that the fence only synchronizes with other fences in the same thread. 7296(This is useful for interacting with signal handlers.) 7297 7298Example: 7299"""""""" 7300 7301.. code-block:: llvm 7302 7303 fence acquire ; yields void 7304 fence singlethread seq_cst ; yields void 7305 7306.. _i_cmpxchg: 7307 7308'``cmpxchg``' Instruction 7309^^^^^^^^^^^^^^^^^^^^^^^^^ 7310 7311Syntax: 7312""""""" 7313 7314:: 7315 7316 cmpxchg [weak] [volatile] <ty>* <pointer>, <ty> <cmp>, <ty> <new> [singlethread] <success ordering> <failure ordering> ; yields { ty, i1 } 7317 7318Overview: 7319""""""""" 7320 7321The '``cmpxchg``' instruction is used to atomically modify memory. It 7322loads a value in memory and compares it to a given value. If they are 7323equal, it tries to store a new value into the memory. 7324 7325Arguments: 7326"""""""""" 7327 7328There are three arguments to the '``cmpxchg``' instruction: an address 7329to operate on, a value to compare to the value currently be at that 7330address, and a new value to place at that address if the compared values 7331are equal. The type of '<cmp>' must be an integer or pointer type whose 7332bit width is a power of two greater than or equal to eight and less 7333than or equal to a target-specific size limit. '<cmp>' and '<new>' must 7334have the same type, and the type of '<pointer>' must be a pointer to 7335that type. If the ``cmpxchg`` is marked as ``volatile``, then the 7336optimizer is not allowed to modify the number or order of execution of 7337this ``cmpxchg`` with other :ref:`volatile operations <volatile>`. 7338 7339The success and failure :ref:`ordering <ordering>` arguments specify how this 7340``cmpxchg`` synchronizes with other atomic operations. Both ordering parameters 7341must be at least ``monotonic``, the ordering constraint on failure must be no 7342stronger than that on success, and the failure ordering cannot be either 7343``release`` or ``acq_rel``. 7344 7345The optional "``singlethread``" argument declares that the ``cmpxchg`` 7346is only atomic with respect to code (usually signal handlers) running in 7347the same thread as the ``cmpxchg``. Otherwise the cmpxchg is atomic with 7348respect to all other code in the system. 7349 7350The pointer passed into cmpxchg must have alignment greater than or 7351equal to the size in memory of the operand. 7352 7353Semantics: 7354"""""""""" 7355 7356The contents of memory at the location specified by the '``<pointer>``' operand 7357is read and compared to '``<cmp>``'; if the read value is the equal, the 7358'``<new>``' is written. The original value at the location is returned, together 7359with a flag indicating success (true) or failure (false). 7360 7361If the cmpxchg operation is marked as ``weak`` then a spurious failure is 7362permitted: the operation may not write ``<new>`` even if the comparison 7363matched. 7364 7365If the cmpxchg operation is strong (the default), the i1 value is 1 if and only 7366if the value loaded equals ``cmp``. 7367 7368A successful ``cmpxchg`` is a read-modify-write instruction for the purpose of 7369identifying release sequences. A failed ``cmpxchg`` is equivalent to an atomic 7370load with an ordering parameter determined the second ordering parameter. 7371 7372Example: 7373"""""""" 7374 7375.. code-block:: llvm 7376 7377 entry: 7378 %orig = load atomic i32, i32* %ptr unordered, align 4 ; yields i32 7379 br label %loop 7380 7381 loop: 7382 %cmp = phi i32 [ %orig, %entry ], [%value_loaded, %loop] 7383 %squared = mul i32 %cmp, %cmp 7384 %val_success = cmpxchg i32* %ptr, i32 %cmp, i32 %squared acq_rel monotonic ; yields { i32, i1 } 7385 %value_loaded = extractvalue { i32, i1 } %val_success, 0 7386 %success = extractvalue { i32, i1 } %val_success, 1 7387 br i1 %success, label %done, label %loop 7388 7389 done: 7390 ... 7391 7392.. _i_atomicrmw: 7393 7394'``atomicrmw``' Instruction 7395^^^^^^^^^^^^^^^^^^^^^^^^^^^ 7396 7397Syntax: 7398""""""" 7399 7400:: 7401 7402 atomicrmw [volatile] <operation> <ty>* <pointer>, <ty> <value> [singlethread] <ordering> ; yields ty 7403 7404Overview: 7405""""""""" 7406 7407The '``atomicrmw``' instruction is used to atomically modify memory. 7408 7409Arguments: 7410"""""""""" 7411 7412There are three arguments to the '``atomicrmw``' instruction: an 7413operation to apply, an address whose value to modify, an argument to the 7414operation. The operation must be one of the following keywords: 7415 7416- xchg 7417- add 7418- sub 7419- and 7420- nand 7421- or 7422- xor 7423- max 7424- min 7425- umax 7426- umin 7427 7428The type of '<value>' must be an integer type whose bit width is a power 7429of two greater than or equal to eight and less than or equal to a 7430target-specific size limit. The type of the '``<pointer>``' operand must 7431be a pointer to that type. If the ``atomicrmw`` is marked as 7432``volatile``, then the optimizer is not allowed to modify the number or 7433order of execution of this ``atomicrmw`` with other :ref:`volatile 7434operations <volatile>`. 7435 7436Semantics: 7437"""""""""" 7438 7439The contents of memory at the location specified by the '``<pointer>``' 7440operand are atomically read, modified, and written back. The original 7441value at the location is returned. The modification is specified by the 7442operation argument: 7443 7444- xchg: ``*ptr = val`` 7445- add: ``*ptr = *ptr + val`` 7446- sub: ``*ptr = *ptr - val`` 7447- and: ``*ptr = *ptr & val`` 7448- nand: ``*ptr = ~(*ptr & val)`` 7449- or: ``*ptr = *ptr | val`` 7450- xor: ``*ptr = *ptr ^ val`` 7451- max: ``*ptr = *ptr > val ? *ptr : val`` (using a signed comparison) 7452- min: ``*ptr = *ptr < val ? *ptr : val`` (using a signed comparison) 7453- umax: ``*ptr = *ptr > val ? *ptr : val`` (using an unsigned 7454 comparison) 7455- umin: ``*ptr = *ptr < val ? *ptr : val`` (using an unsigned 7456 comparison) 7457 7458Example: 7459"""""""" 7460 7461.. code-block:: llvm 7462 7463 %old = atomicrmw add i32* %ptr, i32 1 acquire ; yields i32 7464 7465.. _i_getelementptr: 7466 7467'``getelementptr``' Instruction 7468^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 7469 7470Syntax: 7471""""""" 7472 7473:: 7474 7475 <result> = getelementptr <ty>, <ty>* <ptrval>{, [inrange] <ty> <idx>}* 7476 <result> = getelementptr inbounds <ty>, <ty>* <ptrval>{, [inrange] <ty> <idx>}* 7477 <result> = getelementptr <ty>, <ptr vector> <ptrval>, [inrange] <vector index type> <idx> 7478 7479Overview: 7480""""""""" 7481 7482The '``getelementptr``' instruction is used to get the address of a 7483subelement of an :ref:`aggregate <t_aggregate>` data structure. It performs 7484address calculation only and does not access memory. The instruction can also 7485be used to calculate a vector of such addresses. 7486 7487Arguments: 7488"""""""""" 7489 7490The first argument is always a type used as the basis for the calculations. 7491The second argument is always a pointer or a vector of pointers, and is the 7492base address to start from. The remaining arguments are indices 7493that indicate which of the elements of the aggregate object are indexed. 7494The interpretation of each index is dependent on the type being indexed 7495into. The first index always indexes the pointer value given as the 7496first argument, the second index indexes a value of the type pointed to 7497(not necessarily the value directly pointed to, since the first index 7498can be non-zero), etc. The first type indexed into must be a pointer 7499value, subsequent types can be arrays, vectors, and structs. Note that 7500subsequent types being indexed into can never be pointers, since that 7501would require loading the pointer before continuing calculation. 7502 7503The type of each index argument depends on the type it is indexing into. 7504When indexing into a (optionally packed) structure, only ``i32`` integer 7505**constants** are allowed (when using a vector of indices they must all 7506be the **same** ``i32`` integer constant). When indexing into an array, 7507pointer or vector, integers of any width are allowed, and they are not 7508required to be constant. These integers are treated as signed values 7509where relevant. 7510 7511For example, let's consider a C code fragment and how it gets compiled 7512to LLVM: 7513 7514.. code-block:: c 7515 7516 struct RT { 7517 char A; 7518 int B[10][20]; 7519 char C; 7520 }; 7521 struct ST { 7522 int X; 7523 double Y; 7524 struct RT Z; 7525 }; 7526 7527 int *foo(struct ST *s) { 7528 return &s[1].Z.B[5][13]; 7529 } 7530 7531The LLVM code generated by Clang is: 7532 7533.. code-block:: llvm 7534 7535 %struct.RT = type { i8, [10 x [20 x i32]], i8 } 7536 %struct.ST = type { i32, double, %struct.RT } 7537 7538 define i32* @foo(%struct.ST* %s) nounwind uwtable readnone optsize ssp { 7539 entry: 7540 %arrayidx = getelementptr inbounds %struct.ST, %struct.ST* %s, i64 1, i32 2, i32 1, i64 5, i64 13 7541 ret i32* %arrayidx 7542 } 7543 7544Semantics: 7545"""""""""" 7546 7547In the example above, the first index is indexing into the 7548'``%struct.ST*``' type, which is a pointer, yielding a '``%struct.ST``' 7549= '``{ i32, double, %struct.RT }``' type, a structure. The second index 7550indexes into the third element of the structure, yielding a 7551'``%struct.RT``' = '``{ i8 , [10 x [20 x i32]], i8 }``' type, another 7552structure. The third index indexes into the second element of the 7553structure, yielding a '``[10 x [20 x i32]]``' type, an array. The two 7554dimensions of the array are subscripted into, yielding an '``i32``' 7555type. The '``getelementptr``' instruction returns a pointer to this 7556element, thus computing a value of '``i32*``' type. 7557 7558Note that it is perfectly legal to index partially through a structure, 7559returning a pointer to an inner element. Because of this, the LLVM code 7560for the given testcase is equivalent to: 7561 7562.. code-block:: llvm 7563 7564 define i32* @foo(%struct.ST* %s) { 7565 %t1 = getelementptr %struct.ST, %struct.ST* %s, i32 1 ; yields %struct.ST*:%t1 7566 %t2 = getelementptr %struct.ST, %struct.ST* %t1, i32 0, i32 2 ; yields %struct.RT*:%t2 7567 %t3 = getelementptr %struct.RT, %struct.RT* %t2, i32 0, i32 1 ; yields [10 x [20 x i32]]*:%t3 7568 %t4 = getelementptr [10 x [20 x i32]], [10 x [20 x i32]]* %t3, i32 0, i32 5 ; yields [20 x i32]*:%t4 7569 %t5 = getelementptr [20 x i32], [20 x i32]* %t4, i32 0, i32 13 ; yields i32*:%t5 7570 ret i32* %t5 7571 } 7572 7573If the ``inbounds`` keyword is present, the result value of the 7574``getelementptr`` is a :ref:`poison value <poisonvalues>` if the base 7575pointer is not an *in bounds* address of an allocated object, or if any 7576of the addresses that would be formed by successive addition of the 7577offsets implied by the indices to the base address with infinitely 7578precise signed arithmetic are not an *in bounds* address of that 7579allocated object. The *in bounds* addresses for an allocated object are 7580all the addresses that point into the object, plus the address one byte 7581past the end. In cases where the base is a vector of pointers the 7582``inbounds`` keyword applies to each of the computations element-wise. 7583 7584If the ``inbounds`` keyword is not present, the offsets are added to the 7585base address with silently-wrapping two's complement arithmetic. If the 7586offsets have a different width from the pointer, they are sign-extended 7587or truncated to the width of the pointer. The result value of the 7588``getelementptr`` may be outside the object pointed to by the base 7589pointer. The result value may not necessarily be used to access memory 7590though, even if it happens to point into allocated storage. See the 7591:ref:`Pointer Aliasing Rules <pointeraliasing>` section for more 7592information. 7593 7594If the ``inrange`` keyword is present before any index, loading from or 7595storing to any pointer derived from the ``getelementptr`` has undefined 7596behavior if the load or store would access memory outside of the bounds of 7597the element selected by the index marked as ``inrange``. The result of a 7598pointer comparison or ``ptrtoint`` (including ``ptrtoint``-like operations 7599involving memory) involving a pointer derived from a ``getelementptr`` with 7600the ``inrange`` keyword is undefined, with the exception of comparisons 7601in the case where both operands are in the range of the element selected 7602by the ``inrange`` keyword, inclusive of the address one past the end of 7603that element. Note that the ``inrange`` keyword is currently only allowed 7604in constant ``getelementptr`` expressions. 7605 7606The getelementptr instruction is often confusing. For some more insight 7607into how it works, see :doc:`the getelementptr FAQ <GetElementPtr>`. 7608 7609Example: 7610"""""""" 7611 7612.. code-block:: llvm 7613 7614 ; yields [12 x i8]*:aptr 7615 %aptr = getelementptr {i32, [12 x i8]}, {i32, [12 x i8]}* %saptr, i64 0, i32 1 7616 ; yields i8*:vptr 7617 %vptr = getelementptr {i32, <2 x i8>}, {i32, <2 x i8>}* %svptr, i64 0, i32 1, i32 1 7618 ; yields i8*:eptr 7619 %eptr = getelementptr [12 x i8], [12 x i8]* %aptr, i64 0, i32 1 7620 ; yields i32*:iptr 7621 %iptr = getelementptr [10 x i32], [10 x i32]* @arr, i16 0, i16 0 7622 7623Vector of pointers: 7624""""""""""""""""""" 7625 7626The ``getelementptr`` returns a vector of pointers, instead of a single address, 7627when one or more of its arguments is a vector. In such cases, all vector 7628arguments should have the same number of elements, and every scalar argument 7629will be effectively broadcast into a vector during address calculation. 7630 7631.. code-block:: llvm 7632 7633 ; All arguments are vectors: 7634 ; A[i] = ptrs[i] + offsets[i]*sizeof(i8) 7635 %A = getelementptr i8, <4 x i8*> %ptrs, <4 x i64> %offsets 7636 7637 ; Add the same scalar offset to each pointer of a vector: 7638 ; A[i] = ptrs[i] + offset*sizeof(i8) 7639 %A = getelementptr i8, <4 x i8*> %ptrs, i64 %offset 7640 7641 ; Add distinct offsets to the same pointer: 7642 ; A[i] = ptr + offsets[i]*sizeof(i8) 7643 %A = getelementptr i8, i8* %ptr, <4 x i64> %offsets 7644 7645 ; In all cases described above the type of the result is <4 x i8*> 7646 7647The two following instructions are equivalent: 7648 7649.. code-block:: llvm 7650 7651 getelementptr %struct.ST, <4 x %struct.ST*> %s, <4 x i64> %ind1, 7652 <4 x i32> <i32 2, i32 2, i32 2, i32 2>, 7653 <4 x i32> <i32 1, i32 1, i32 1, i32 1>, 7654 <4 x i32> %ind4, 7655 <4 x i64> <i64 13, i64 13, i64 13, i64 13> 7656 7657 getelementptr %struct.ST, <4 x %struct.ST*> %s, <4 x i64> %ind1, 7658 i32 2, i32 1, <4 x i32> %ind4, i64 13 7659 7660Let's look at the C code, where the vector version of ``getelementptr`` 7661makes sense: 7662 7663.. code-block:: c 7664 7665 // Let's assume that we vectorize the following loop: 7666 double *A, B; int *C; 7667 for (int i = 0; i < size; ++i) { 7668 A[i] = B[C[i]]; 7669 } 7670 7671.. code-block:: llvm 7672 7673 ; get pointers for 8 elements from array B 7674 %ptrs = getelementptr double, double* %B, <8 x i32> %C 7675 ; load 8 elements from array B into A 7676 %A = call <8 x double> @llvm.masked.gather.v8f64(<8 x double*> %ptrs, 7677 i32 8, <8 x i1> %mask, <8 x double> %passthru) 7678 7679Conversion Operations 7680--------------------- 7681 7682The instructions in this category are the conversion instructions 7683(casting) which all take a single operand and a type. They perform 7684various bit conversions on the operand. 7685 7686'``trunc .. to``' Instruction 7687^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 7688 7689Syntax: 7690""""""" 7691 7692:: 7693 7694 <result> = trunc <ty> <value> to <ty2> ; yields ty2 7695 7696Overview: 7697""""""""" 7698 7699The '``trunc``' instruction truncates its operand to the type ``ty2``. 7700 7701Arguments: 7702"""""""""" 7703 7704The '``trunc``' instruction takes a value to trunc, and a type to trunc 7705it to. Both types must be of :ref:`integer <t_integer>` types, or vectors 7706of the same number of integers. The bit size of the ``value`` must be 7707larger than the bit size of the destination type, ``ty2``. Equal sized 7708types are not allowed. 7709 7710Semantics: 7711"""""""""" 7712 7713The '``trunc``' instruction truncates the high order bits in ``value`` 7714and converts the remaining bits to ``ty2``. Since the source size must 7715be larger than the destination size, ``trunc`` cannot be a *no-op cast*. 7716It will always truncate bits. 7717 7718Example: 7719"""""""" 7720 7721.. code-block:: llvm 7722 7723 %X = trunc i32 257 to i8 ; yields i8:1 7724 %Y = trunc i32 123 to i1 ; yields i1:true 7725 %Z = trunc i32 122 to i1 ; yields i1:false 7726 %W = trunc <2 x i16> <i16 8, i16 7> to <2 x i8> ; yields <i8 8, i8 7> 7727 7728'``zext .. to``' Instruction 7729^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 7730 7731Syntax: 7732""""""" 7733 7734:: 7735 7736 <result> = zext <ty> <value> to <ty2> ; yields ty2 7737 7738Overview: 7739""""""""" 7740 7741The '``zext``' instruction zero extends its operand to type ``ty2``. 7742 7743Arguments: 7744"""""""""" 7745 7746The '``zext``' instruction takes a value to cast, and a type to cast it 7747to. Both types must be of :ref:`integer <t_integer>` types, or vectors of 7748the same number of integers. The bit size of the ``value`` must be 7749smaller than the bit size of the destination type, ``ty2``. 7750 7751Semantics: 7752"""""""""" 7753 7754The ``zext`` fills the high order bits of the ``value`` with zero bits 7755until it reaches the size of the destination type, ``ty2``. 7756 7757When zero extending from i1, the result will always be either 0 or 1. 7758 7759Example: 7760"""""""" 7761 7762.. code-block:: llvm 7763 7764 %X = zext i32 257 to i64 ; yields i64:257 7765 %Y = zext i1 true to i32 ; yields i32:1 7766 %Z = zext <2 x i16> <i16 8, i16 7> to <2 x i32> ; yields <i32 8, i32 7> 7767 7768'``sext .. to``' Instruction 7769^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 7770 7771Syntax: 7772""""""" 7773 7774:: 7775 7776 <result> = sext <ty> <value> to <ty2> ; yields ty2 7777 7778Overview: 7779""""""""" 7780 7781The '``sext``' sign extends ``value`` to the type ``ty2``. 7782 7783Arguments: 7784"""""""""" 7785 7786The '``sext``' instruction takes a value to cast, and a type to cast it 7787to. Both types must be of :ref:`integer <t_integer>` types, or vectors of 7788the same number of integers. The bit size of the ``value`` must be 7789smaller than the bit size of the destination type, ``ty2``. 7790 7791Semantics: 7792"""""""""" 7793 7794The '``sext``' instruction performs a sign extension by copying the sign 7795bit (highest order bit) of the ``value`` until it reaches the bit size 7796of the type ``ty2``. 7797 7798When sign extending from i1, the extension always results in -1 or 0. 7799 7800Example: 7801"""""""" 7802 7803.. code-block:: llvm 7804 7805 %X = sext i8 -1 to i16 ; yields i16 :65535 7806 %Y = sext i1 true to i32 ; yields i32:-1 7807 %Z = sext <2 x i16> <i16 8, i16 7> to <2 x i32> ; yields <i32 8, i32 7> 7808 7809'``fptrunc .. to``' Instruction 7810^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 7811 7812Syntax: 7813""""""" 7814 7815:: 7816 7817 <result> = fptrunc <ty> <value> to <ty2> ; yields ty2 7818 7819Overview: 7820""""""""" 7821 7822The '``fptrunc``' instruction truncates ``value`` to type ``ty2``. 7823 7824Arguments: 7825"""""""""" 7826 7827The '``fptrunc``' instruction takes a :ref:`floating point <t_floating>` 7828value to cast and a :ref:`floating point <t_floating>` type to cast it to. 7829The size of ``value`` must be larger than the size of ``ty2``. This 7830implies that ``fptrunc`` cannot be used to make a *no-op cast*. 7831 7832Semantics: 7833"""""""""" 7834 7835The '``fptrunc``' instruction casts a ``value`` from a larger 7836:ref:`floating point <t_floating>` type to a smaller :ref:`floating 7837point <t_floating>` type. If the value cannot fit (i.e. overflows) within the 7838destination type, ``ty2``, then the results are undefined. If the cast produces 7839an inexact result, how rounding is performed (e.g. truncation, also known as 7840round to zero) is undefined. 7841 7842Example: 7843"""""""" 7844 7845.. code-block:: llvm 7846 7847 %X = fptrunc double 123.0 to float ; yields float:123.0 7848 %Y = fptrunc double 1.0E+300 to float ; yields undefined 7849 7850'``fpext .. to``' Instruction 7851^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 7852 7853Syntax: 7854""""""" 7855 7856:: 7857 7858 <result> = fpext <ty> <value> to <ty2> ; yields ty2 7859 7860Overview: 7861""""""""" 7862 7863The '``fpext``' extends a floating point ``value`` to a larger floating 7864point value. 7865 7866Arguments: 7867"""""""""" 7868 7869The '``fpext``' instruction takes a :ref:`floating point <t_floating>` 7870``value`` to cast, and a :ref:`floating point <t_floating>` type to cast it 7871to. The source type must be smaller than the destination type. 7872 7873Semantics: 7874"""""""""" 7875 7876The '``fpext``' instruction extends the ``value`` from a smaller 7877:ref:`floating point <t_floating>` type to a larger :ref:`floating 7878point <t_floating>` type. The ``fpext`` cannot be used to make a 7879*no-op cast* because it always changes bits. Use ``bitcast`` to make a 7880*no-op cast* for a floating point cast. 7881 7882Example: 7883"""""""" 7884 7885.. code-block:: llvm 7886 7887 %X = fpext float 3.125 to double ; yields double:3.125000e+00 7888 %Y = fpext double %X to fp128 ; yields fp128:0xL00000000000000004000900000000000 7889 7890'``fptoui .. to``' Instruction 7891^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 7892 7893Syntax: 7894""""""" 7895 7896:: 7897 7898 <result> = fptoui <ty> <value> to <ty2> ; yields ty2 7899 7900Overview: 7901""""""""" 7902 7903The '``fptoui``' converts a floating point ``value`` to its unsigned 7904integer equivalent of type ``ty2``. 7905 7906Arguments: 7907"""""""""" 7908 7909The '``fptoui``' instruction takes a value to cast, which must be a 7910scalar or vector :ref:`floating point <t_floating>` value, and a type to 7911cast it to ``ty2``, which must be an :ref:`integer <t_integer>` type. If 7912``ty`` is a vector floating point type, ``ty2`` must be a vector integer 7913type with the same number of elements as ``ty`` 7914 7915Semantics: 7916"""""""""" 7917 7918The '``fptoui``' instruction converts its :ref:`floating 7919point <t_floating>` operand into the nearest (rounding towards zero) 7920unsigned integer value. If the value cannot fit in ``ty2``, the results 7921are undefined. 7922 7923Example: 7924"""""""" 7925 7926.. code-block:: llvm 7927 7928 %X = fptoui double 123.0 to i32 ; yields i32:123 7929 %Y = fptoui float 1.0E+300 to i1 ; yields undefined:1 7930 %Z = fptoui float 1.04E+17 to i8 ; yields undefined:1 7931 7932'``fptosi .. to``' Instruction 7933^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 7934 7935Syntax: 7936""""""" 7937 7938:: 7939 7940 <result> = fptosi <ty> <value> to <ty2> ; yields ty2 7941 7942Overview: 7943""""""""" 7944 7945The '``fptosi``' instruction converts :ref:`floating point <t_floating>` 7946``value`` to type ``ty2``. 7947 7948Arguments: 7949"""""""""" 7950 7951The '``fptosi``' instruction takes a value to cast, which must be a 7952scalar or vector :ref:`floating point <t_floating>` value, and a type to 7953cast it to ``ty2``, which must be an :ref:`integer <t_integer>` type. If 7954``ty`` is a vector floating point type, ``ty2`` must be a vector integer 7955type with the same number of elements as ``ty`` 7956 7957Semantics: 7958"""""""""" 7959 7960The '``fptosi``' instruction converts its :ref:`floating 7961point <t_floating>` operand into the nearest (rounding towards zero) 7962signed integer value. If the value cannot fit in ``ty2``, the results 7963are undefined. 7964 7965Example: 7966"""""""" 7967 7968.. code-block:: llvm 7969 7970 %X = fptosi double -123.0 to i32 ; yields i32:-123 7971 %Y = fptosi float 1.0E-247 to i1 ; yields undefined:1 7972 %Z = fptosi float 1.04E+17 to i8 ; yields undefined:1 7973 7974'``uitofp .. to``' Instruction 7975^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 7976 7977Syntax: 7978""""""" 7979 7980:: 7981 7982 <result> = uitofp <ty> <value> to <ty2> ; yields ty2 7983 7984Overview: 7985""""""""" 7986 7987The '``uitofp``' instruction regards ``value`` as an unsigned integer 7988and converts that value to the ``ty2`` type. 7989 7990Arguments: 7991"""""""""" 7992 7993The '``uitofp``' instruction takes a value to cast, which must be a 7994scalar or vector :ref:`integer <t_integer>` value, and a type to cast it to 7995``ty2``, which must be an :ref:`floating point <t_floating>` type. If 7996``ty`` is a vector integer type, ``ty2`` must be a vector floating point 7997type with the same number of elements as ``ty`` 7998 7999Semantics: 8000"""""""""" 8001 8002The '``uitofp``' instruction interprets its operand as an unsigned 8003integer quantity and converts it to the corresponding floating point 8004value. If the value cannot fit in the floating point value, the results 8005are undefined. 8006 8007Example: 8008"""""""" 8009 8010.. code-block:: llvm 8011 8012 %X = uitofp i32 257 to float ; yields float:257.0 8013 %Y = uitofp i8 -1 to double ; yields double:255.0 8014 8015'``sitofp .. to``' Instruction 8016^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 8017 8018Syntax: 8019""""""" 8020 8021:: 8022 8023 <result> = sitofp <ty> <value> to <ty2> ; yields ty2 8024 8025Overview: 8026""""""""" 8027 8028The '``sitofp``' instruction regards ``value`` as a signed integer and 8029converts that value to the ``ty2`` type. 8030 8031Arguments: 8032"""""""""" 8033 8034The '``sitofp``' instruction takes a value to cast, which must be a 8035scalar or vector :ref:`integer <t_integer>` value, and a type to cast it to 8036``ty2``, which must be an :ref:`floating point <t_floating>` type. If 8037``ty`` is a vector integer type, ``ty2`` must be a vector floating point 8038type with the same number of elements as ``ty`` 8039 8040Semantics: 8041"""""""""" 8042 8043The '``sitofp``' instruction interprets its operand as a signed integer 8044quantity and converts it to the corresponding floating point value. If 8045the value cannot fit in the floating point value, the results are 8046undefined. 8047 8048Example: 8049"""""""" 8050 8051.. code-block:: llvm 8052 8053 %X = sitofp i32 257 to float ; yields float:257.0 8054 %Y = sitofp i8 -1 to double ; yields double:-1.0 8055 8056.. _i_ptrtoint: 8057 8058'``ptrtoint .. to``' Instruction 8059^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 8060 8061Syntax: 8062""""""" 8063 8064:: 8065 8066 <result> = ptrtoint <ty> <value> to <ty2> ; yields ty2 8067 8068Overview: 8069""""""""" 8070 8071The '``ptrtoint``' instruction converts the pointer or a vector of 8072pointers ``value`` to the integer (or vector of integers) type ``ty2``. 8073 8074Arguments: 8075"""""""""" 8076 8077The '``ptrtoint``' instruction takes a ``value`` to cast, which must be 8078a value of type :ref:`pointer <t_pointer>` or a vector of pointers, and a 8079type to cast it to ``ty2``, which must be an :ref:`integer <t_integer>` or 8080a vector of integers type. 8081 8082Semantics: 8083"""""""""" 8084 8085The '``ptrtoint``' instruction converts ``value`` to integer type 8086``ty2`` by interpreting the pointer value as an integer and either 8087truncating or zero extending that value to the size of the integer type. 8088If ``value`` is smaller than ``ty2`` then a zero extension is done. If 8089``value`` is larger than ``ty2`` then a truncation is done. If they are 8090the same size, then nothing is done (*no-op cast*) other than a type 8091change. 8092 8093Example: 8094"""""""" 8095 8096.. code-block:: llvm 8097 8098 %X = ptrtoint i32* %P to i8 ; yields truncation on 32-bit architecture 8099 %Y = ptrtoint i32* %P to i64 ; yields zero extension on 32-bit architecture 8100 %Z = ptrtoint <4 x i32*> %P to <4 x i64>; yields vector zero extension for a vector of addresses on 32-bit architecture 8101 8102.. _i_inttoptr: 8103 8104'``inttoptr .. to``' Instruction 8105^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 8106 8107Syntax: 8108""""""" 8109 8110:: 8111 8112 <result> = inttoptr <ty> <value> to <ty2> ; yields ty2 8113 8114Overview: 8115""""""""" 8116 8117The '``inttoptr``' instruction converts an integer ``value`` to a 8118pointer type, ``ty2``. 8119 8120Arguments: 8121"""""""""" 8122 8123The '``inttoptr``' instruction takes an :ref:`integer <t_integer>` value to 8124cast, and a type to cast it to, which must be a :ref:`pointer <t_pointer>` 8125type. 8126 8127Semantics: 8128"""""""""" 8129 8130The '``inttoptr``' instruction converts ``value`` to type ``ty2`` by 8131applying either a zero extension or a truncation depending on the size 8132of the integer ``value``. If ``value`` is larger than the size of a 8133pointer then a truncation is done. If ``value`` is smaller than the size 8134of a pointer then a zero extension is done. If they are the same size, 8135nothing is done (*no-op cast*). 8136 8137Example: 8138"""""""" 8139 8140.. code-block:: llvm 8141 8142 %X = inttoptr i32 255 to i32* ; yields zero extension on 64-bit architecture 8143 %Y = inttoptr i32 255 to i32* ; yields no-op on 32-bit architecture 8144 %Z = inttoptr i64 0 to i32* ; yields truncation on 32-bit architecture 8145 %Z = inttoptr <4 x i32> %G to <4 x i8*>; yields truncation of vector G to four pointers 8146 8147.. _i_bitcast: 8148 8149'``bitcast .. to``' Instruction 8150^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 8151 8152Syntax: 8153""""""" 8154 8155:: 8156 8157 <result> = bitcast <ty> <value> to <ty2> ; yields ty2 8158 8159Overview: 8160""""""""" 8161 8162The '``bitcast``' instruction converts ``value`` to type ``ty2`` without 8163changing any bits. 8164 8165Arguments: 8166"""""""""" 8167 8168The '``bitcast``' instruction takes a value to cast, which must be a 8169non-aggregate first class value, and a type to cast it to, which must 8170also be a non-aggregate :ref:`first class <t_firstclass>` type. The 8171bit sizes of ``value`` and the destination type, ``ty2``, must be 8172identical. If the source type is a pointer, the destination type must 8173also be a pointer of the same size. This instruction supports bitwise 8174conversion of vectors to integers and to vectors of other types (as 8175long as they have the same size). 8176 8177Semantics: 8178"""""""""" 8179 8180The '``bitcast``' instruction converts ``value`` to type ``ty2``. It 8181is always a *no-op cast* because no bits change with this 8182conversion. The conversion is done as if the ``value`` had been stored 8183to memory and read back as type ``ty2``. Pointer (or vector of 8184pointers) types may only be converted to other pointer (or vector of 8185pointers) types with the same address space through this instruction. 8186To convert pointers to other types, use the :ref:`inttoptr <i_inttoptr>` 8187or :ref:`ptrtoint <i_ptrtoint>` instructions first. 8188 8189Example: 8190"""""""" 8191 8192.. code-block:: text 8193 8194 %X = bitcast i8 255 to i8 ; yields i8 :-1 8195 %Y = bitcast i32* %x to sint* ; yields sint*:%x 8196 %Z = bitcast <2 x int> %V to i64; ; yields i64: %V 8197 %Z = bitcast <2 x i32*> %V to <2 x i64*> ; yields <2 x i64*> 8198 8199.. _i_addrspacecast: 8200 8201'``addrspacecast .. to``' Instruction 8202^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 8203 8204Syntax: 8205""""""" 8206 8207:: 8208 8209 <result> = addrspacecast <pty> <ptrval> to <pty2> ; yields pty2 8210 8211Overview: 8212""""""""" 8213 8214The '``addrspacecast``' instruction converts ``ptrval`` from ``pty`` in 8215address space ``n`` to type ``pty2`` in address space ``m``. 8216 8217Arguments: 8218"""""""""" 8219 8220The '``addrspacecast``' instruction takes a pointer or vector of pointer value 8221to cast and a pointer type to cast it to, which must have a different 8222address space. 8223 8224Semantics: 8225"""""""""" 8226 8227The '``addrspacecast``' instruction converts the pointer value 8228``ptrval`` to type ``pty2``. It can be a *no-op cast* or a complex 8229value modification, depending on the target and the address space 8230pair. Pointer conversions within the same address space must be 8231performed with the ``bitcast`` instruction. Note that if the address space 8232conversion is legal then both result and operand refer to the same memory 8233location. 8234 8235Example: 8236"""""""" 8237 8238.. code-block:: llvm 8239 8240 %X = addrspacecast i32* %x to i32 addrspace(1)* ; yields i32 addrspace(1)*:%x 8241 %Y = addrspacecast i32 addrspace(1)* %y to i64 addrspace(2)* ; yields i64 addrspace(2)*:%y 8242 %Z = addrspacecast <4 x i32*> %z to <4 x float addrspace(3)*> ; yields <4 x float addrspace(3)*>:%z 8243 8244.. _otherops: 8245 8246Other Operations 8247---------------- 8248 8249The instructions in this category are the "miscellaneous" instructions, 8250which defy better classification. 8251 8252.. _i_icmp: 8253 8254'``icmp``' Instruction 8255^^^^^^^^^^^^^^^^^^^^^^ 8256 8257Syntax: 8258""""""" 8259 8260:: 8261 8262 <result> = icmp <cond> <ty> <op1>, <op2> ; yields i1 or <N x i1>:result 8263 8264Overview: 8265""""""""" 8266 8267The '``icmp``' instruction returns a boolean value or a vector of 8268boolean values based on comparison of its two integer, integer vector, 8269pointer, or pointer vector operands. 8270 8271Arguments: 8272"""""""""" 8273 8274The '``icmp``' instruction takes three operands. The first operand is 8275the condition code indicating the kind of comparison to perform. It is 8276not a value, just a keyword. The possible condition codes are: 8277 8278#. ``eq``: equal 8279#. ``ne``: not equal 8280#. ``ugt``: unsigned greater than 8281#. ``uge``: unsigned greater or equal 8282#. ``ult``: unsigned less than 8283#. ``ule``: unsigned less or equal 8284#. ``sgt``: signed greater than 8285#. ``sge``: signed greater or equal 8286#. ``slt``: signed less than 8287#. ``sle``: signed less or equal 8288 8289The remaining two arguments must be :ref:`integer <t_integer>` or 8290:ref:`pointer <t_pointer>` or integer :ref:`vector <t_vector>` typed. They 8291must also be identical types. 8292 8293Semantics: 8294"""""""""" 8295 8296The '``icmp``' compares ``op1`` and ``op2`` according to the condition 8297code given as ``cond``. The comparison performed always yields either an 8298:ref:`i1 <t_integer>` or vector of ``i1`` result, as follows: 8299 8300#. ``eq``: yields ``true`` if the operands are equal, ``false`` 8301 otherwise. No sign interpretation is necessary or performed. 8302#. ``ne``: yields ``true`` if the operands are unequal, ``false`` 8303 otherwise. No sign interpretation is necessary or performed. 8304#. ``ugt``: interprets the operands as unsigned values and yields 8305 ``true`` if ``op1`` is greater than ``op2``. 8306#. ``uge``: interprets the operands as unsigned values and yields 8307 ``true`` if ``op1`` is greater than or equal to ``op2``. 8308#. ``ult``: interprets the operands as unsigned values and yields 8309 ``true`` if ``op1`` is less than ``op2``. 8310#. ``ule``: interprets the operands as unsigned values and yields 8311 ``true`` if ``op1`` is less than or equal to ``op2``. 8312#. ``sgt``: interprets the operands as signed values and yields ``true`` 8313 if ``op1`` is greater than ``op2``. 8314#. ``sge``: interprets the operands as signed values and yields ``true`` 8315 if ``op1`` is greater than or equal to ``op2``. 8316#. ``slt``: interprets the operands as signed values and yields ``true`` 8317 if ``op1`` is less than ``op2``. 8318#. ``sle``: interprets the operands as signed values and yields ``true`` 8319 if ``op1`` is less than or equal to ``op2``. 8320 8321If the operands are :ref:`pointer <t_pointer>` typed, the pointer values 8322are compared as if they were integers. 8323 8324If the operands are integer vectors, then they are compared element by 8325element. The result is an ``i1`` vector with the same number of elements 8326as the values being compared. Otherwise, the result is an ``i1``. 8327 8328Example: 8329"""""""" 8330 8331.. code-block:: text 8332 8333 <result> = icmp eq i32 4, 5 ; yields: result=false 8334 <result> = icmp ne float* %X, %X ; yields: result=false 8335 <result> = icmp ult i16 4, 5 ; yields: result=true 8336 <result> = icmp sgt i16 4, 5 ; yields: result=false 8337 <result> = icmp ule i16 -4, 5 ; yields: result=false 8338 <result> = icmp sge i16 4, 5 ; yields: result=false 8339 8340.. _i_fcmp: 8341 8342'``fcmp``' Instruction 8343^^^^^^^^^^^^^^^^^^^^^^ 8344 8345Syntax: 8346""""""" 8347 8348:: 8349 8350 <result> = fcmp [fast-math flags]* <cond> <ty> <op1>, <op2> ; yields i1 or <N x i1>:result 8351 8352Overview: 8353""""""""" 8354 8355The '``fcmp``' instruction returns a boolean value or vector of boolean 8356values based on comparison of its operands. 8357 8358If the operands are floating point scalars, then the result type is a 8359boolean (:ref:`i1 <t_integer>`). 8360 8361If the operands are floating point vectors, then the result type is a 8362vector of boolean with the same number of elements as the operands being 8363compared. 8364 8365Arguments: 8366"""""""""" 8367 8368The '``fcmp``' instruction takes three operands. The first operand is 8369the condition code indicating the kind of comparison to perform. It is 8370not a value, just a keyword. The possible condition codes are: 8371 8372#. ``false``: no comparison, always returns false 8373#. ``oeq``: ordered and equal 8374#. ``ogt``: ordered and greater than 8375#. ``oge``: ordered and greater than or equal 8376#. ``olt``: ordered and less than 8377#. ``ole``: ordered and less than or equal 8378#. ``one``: ordered and not equal 8379#. ``ord``: ordered (no nans) 8380#. ``ueq``: unordered or equal 8381#. ``ugt``: unordered or greater than 8382#. ``uge``: unordered or greater than or equal 8383#. ``ult``: unordered or less than 8384#. ``ule``: unordered or less than or equal 8385#. ``une``: unordered or not equal 8386#. ``uno``: unordered (either nans) 8387#. ``true``: no comparison, always returns true 8388 8389*Ordered* means that neither operand is a QNAN while *unordered* means 8390that either operand may be a QNAN. 8391 8392Each of ``val1`` and ``val2`` arguments must be either a :ref:`floating 8393point <t_floating>` type or a :ref:`vector <t_vector>` of floating point 8394type. They must have identical types. 8395 8396Semantics: 8397"""""""""" 8398 8399The '``fcmp``' instruction compares ``op1`` and ``op2`` according to the 8400condition code given as ``cond``. If the operands are vectors, then the 8401vectors are compared element by element. Each comparison performed 8402always yields an :ref:`i1 <t_integer>` result, as follows: 8403 8404#. ``false``: always yields ``false``, regardless of operands. 8405#. ``oeq``: yields ``true`` if both operands are not a QNAN and ``op1`` 8406 is equal to ``op2``. 8407#. ``ogt``: yields ``true`` if both operands are not a QNAN and ``op1`` 8408 is greater than ``op2``. 8409#. ``oge``: yields ``true`` if both operands are not a QNAN and ``op1`` 8410 is greater than or equal to ``op2``. 8411#. ``olt``: yields ``true`` if both operands are not a QNAN and ``op1`` 8412 is less than ``op2``. 8413#. ``ole``: yields ``true`` if both operands are not a QNAN and ``op1`` 8414 is less than or equal to ``op2``. 8415#. ``one``: yields ``true`` if both operands are not a QNAN and ``op1`` 8416 is not equal to ``op2``. 8417#. ``ord``: yields ``true`` if both operands are not a QNAN. 8418#. ``ueq``: yields ``true`` if either operand is a QNAN or ``op1`` is 8419 equal to ``op2``. 8420#. ``ugt``: yields ``true`` if either operand is a QNAN or ``op1`` is 8421 greater than ``op2``. 8422#. ``uge``: yields ``true`` if either operand is a QNAN or ``op1`` is 8423 greater than or equal to ``op2``. 8424#. ``ult``: yields ``true`` if either operand is a QNAN or ``op1`` is 8425 less than ``op2``. 8426#. ``ule``: yields ``true`` if either operand is a QNAN or ``op1`` is 8427 less than or equal to ``op2``. 8428#. ``une``: yields ``true`` if either operand is a QNAN or ``op1`` is 8429 not equal to ``op2``. 8430#. ``uno``: yields ``true`` if either operand is a QNAN. 8431#. ``true``: always yields ``true``, regardless of operands. 8432 8433The ``fcmp`` instruction can also optionally take any number of 8434:ref:`fast-math flags <fastmath>`, which are optimization hints to enable 8435otherwise unsafe floating point optimizations. 8436 8437Any set of fast-math flags are legal on an ``fcmp`` instruction, but the 8438only flags that have any effect on its semantics are those that allow 8439assumptions to be made about the values of input arguments; namely 8440``nnan``, ``ninf``, and ``nsz``. See :ref:`fastmath` for more information. 8441 8442Example: 8443"""""""" 8444 8445.. code-block:: text 8446 8447 <result> = fcmp oeq float 4.0, 5.0 ; yields: result=false 8448 <result> = fcmp one float 4.0, 5.0 ; yields: result=true 8449 <result> = fcmp olt float 4.0, 5.0 ; yields: result=true 8450 <result> = fcmp ueq double 1.0, 2.0 ; yields: result=false 8451 8452.. _i_phi: 8453 8454'``phi``' Instruction 8455^^^^^^^^^^^^^^^^^^^^^ 8456 8457Syntax: 8458""""""" 8459 8460:: 8461 8462 <result> = phi <ty> [ <val0>, <label0>], ... 8463 8464Overview: 8465""""""""" 8466 8467The '``phi``' instruction is used to implement the φ node in the SSA 8468graph representing the function. 8469 8470Arguments: 8471"""""""""" 8472 8473The type of the incoming values is specified with the first type field. 8474After this, the '``phi``' instruction takes a list of pairs as 8475arguments, with one pair for each predecessor basic block of the current 8476block. Only values of :ref:`first class <t_firstclass>` type may be used as 8477the value arguments to the PHI node. Only labels may be used as the 8478label arguments. 8479 8480There must be no non-phi instructions between the start of a basic block 8481and the PHI instructions: i.e. PHI instructions must be first in a basic 8482block. 8483 8484For the purposes of the SSA form, the use of each incoming value is 8485deemed to occur on the edge from the corresponding predecessor block to 8486the current block (but after any definition of an '``invoke``' 8487instruction's return value on the same edge). 8488 8489Semantics: 8490"""""""""" 8491 8492At runtime, the '``phi``' instruction logically takes on the value 8493specified by the pair corresponding to the predecessor basic block that 8494executed just prior to the current block. 8495 8496Example: 8497"""""""" 8498 8499.. code-block:: llvm 8500 8501 Loop: ; Infinite loop that counts from 0 on up... 8502 %indvar = phi i32 [ 0, %LoopHeader ], [ %nextindvar, %Loop ] 8503 %nextindvar = add i32 %indvar, 1 8504 br label %Loop 8505 8506.. _i_select: 8507 8508'``select``' Instruction 8509^^^^^^^^^^^^^^^^^^^^^^^^ 8510 8511Syntax: 8512""""""" 8513 8514:: 8515 8516 <result> = select selty <cond>, <ty> <val1>, <ty> <val2> ; yields ty 8517 8518 selty is either i1 or {<N x i1>} 8519 8520Overview: 8521""""""""" 8522 8523The '``select``' instruction is used to choose one value based on a 8524condition, without IR-level branching. 8525 8526Arguments: 8527"""""""""" 8528 8529The '``select``' instruction requires an 'i1' value or a vector of 'i1' 8530values indicating the condition, and two values of the same :ref:`first 8531class <t_firstclass>` type. 8532 8533Semantics: 8534"""""""""" 8535 8536If the condition is an i1 and it evaluates to 1, the instruction returns 8537the first value argument; otherwise, it returns the second value 8538argument. 8539 8540If the condition is a vector of i1, then the value arguments must be 8541vectors of the same size, and the selection is done element by element. 8542 8543If the condition is an i1 and the value arguments are vectors of the 8544same size, then an entire vector is selected. 8545 8546Example: 8547"""""""" 8548 8549.. code-block:: llvm 8550 8551 %X = select i1 true, i8 17, i8 42 ; yields i8:17 8552 8553.. _i_call: 8554 8555'``call``' Instruction 8556^^^^^^^^^^^^^^^^^^^^^^ 8557 8558Syntax: 8559""""""" 8560 8561:: 8562 8563 <result> = [tail | musttail | notail ] call [fast-math flags] [cconv] [ret attrs] <ty>|<fnty> <fnptrval>(<function args>) [fn attrs] 8564 [ operand bundles ] 8565 8566Overview: 8567""""""""" 8568 8569The '``call``' instruction represents a simple function call. 8570 8571Arguments: 8572"""""""""" 8573 8574This instruction requires several arguments: 8575 8576#. The optional ``tail`` and ``musttail`` markers indicate that the optimizers 8577 should perform tail call optimization. The ``tail`` marker is a hint that 8578 `can be ignored <CodeGenerator.html#sibcallopt>`_. The ``musttail`` marker 8579 means that the call must be tail call optimized in order for the program to 8580 be correct. The ``musttail`` marker provides these guarantees: 8581 8582 #. The call will not cause unbounded stack growth if it is part of a 8583 recursive cycle in the call graph. 8584 #. Arguments with the :ref:`inalloca <attr_inalloca>` attribute are 8585 forwarded in place. 8586 8587 Both markers imply that the callee does not access allocas or varargs from 8588 the caller. Calls marked ``musttail`` must obey the following additional 8589 rules: 8590 8591 - The call must immediately precede a :ref:`ret <i_ret>` instruction, 8592 or a pointer bitcast followed by a ret instruction. 8593 - The ret instruction must return the (possibly bitcasted) value 8594 produced by the call or void. 8595 - The caller and callee prototypes must match. Pointer types of 8596 parameters or return types may differ in pointee type, but not 8597 in address space. 8598 - The calling conventions of the caller and callee must match. 8599 - All ABI-impacting function attributes, such as sret, byval, inreg, 8600 returned, and inalloca, must match. 8601 - The callee must be varargs iff the caller is varargs. Bitcasting a 8602 non-varargs function to the appropriate varargs type is legal so 8603 long as the non-varargs prefixes obey the other rules. 8604 8605 Tail call optimization for calls marked ``tail`` is guaranteed to occur if 8606 the following conditions are met: 8607 8608 - Caller and callee both have the calling convention ``fastcc``. 8609 - The call is in tail position (ret immediately follows call and ret 8610 uses value of call or is void). 8611 - Option ``-tailcallopt`` is enabled, or 8612 ``llvm::GuaranteedTailCallOpt`` is ``true``. 8613 - `Platform-specific constraints are 8614 met. <CodeGenerator.html#tailcallopt>`_ 8615 8616#. The optional ``notail`` marker indicates that the optimizers should not add 8617 ``tail`` or ``musttail`` markers to the call. It is used to prevent tail 8618 call optimization from being performed on the call. 8619 8620#. The optional ``fast-math flags`` marker indicates that the call has one or more 8621 :ref:`fast-math flags <fastmath>`, which are optimization hints to enable 8622 otherwise unsafe floating-point optimizations. Fast-math flags are only valid 8623 for calls that return a floating-point scalar or vector type. 8624 8625#. The optional "cconv" marker indicates which :ref:`calling 8626 convention <callingconv>` the call should use. If none is 8627 specified, the call defaults to using C calling conventions. The 8628 calling convention of the call must match the calling convention of 8629 the target function, or else the behavior is undefined. 8630#. The optional :ref:`Parameter Attributes <paramattrs>` list for return 8631 values. Only '``zeroext``', '``signext``', and '``inreg``' attributes 8632 are valid here. 8633#. '``ty``': the type of the call instruction itself which is also the 8634 type of the return value. Functions that return no value are marked 8635 ``void``. 8636#. '``fnty``': shall be the signature of the function being called. The 8637 argument types must match the types implied by this signature. This 8638 type can be omitted if the function is not varargs. 8639#. '``fnptrval``': An LLVM value containing a pointer to a function to 8640 be called. In most cases, this is a direct function call, but 8641 indirect ``call``'s are just as possible, calling an arbitrary pointer 8642 to function value. 8643#. '``function args``': argument list whose types match the function 8644 signature argument types and parameter attributes. All arguments must 8645 be of :ref:`first class <t_firstclass>` type. If the function signature 8646 indicates the function accepts a variable number of arguments, the 8647 extra arguments can be specified. 8648#. The optional :ref:`function attributes <fnattrs>` list. Only 8649 '``noreturn``', '``nounwind``', '``readonly``' , '``readnone``', 8650 and '``convergent``' attributes are valid here. 8651#. The optional :ref:`operand bundles <opbundles>` list. 8652 8653Semantics: 8654"""""""""" 8655 8656The '``call``' instruction is used to cause control flow to transfer to 8657a specified function, with its incoming arguments bound to the specified 8658values. Upon a '``ret``' instruction in the called function, control 8659flow continues with the instruction after the function call, and the 8660return value of the function is bound to the result argument. 8661 8662Example: 8663"""""""" 8664 8665.. code-block:: llvm 8666 8667 %retval = call i32 @test(i32 %argc) 8668 call i32 (i8*, ...)* @printf(i8* %msg, i32 12, i8 42) ; yields i32 8669 %X = tail call i32 @foo() ; yields i32 8670 %Y = tail call fastcc i32 @foo() ; yields i32 8671 call void %foo(i8 97 signext) 8672 8673 %struct.A = type { i32, i8 } 8674 %r = call %struct.A @foo() ; yields { i32, i8 } 8675 %gr = extractvalue %struct.A %r, 0 ; yields i32 8676 %gr1 = extractvalue %struct.A %r, 1 ; yields i8 8677 %Z = call void @foo() noreturn ; indicates that %foo never returns normally 8678 %ZZ = call zeroext i32 @bar() ; Return value is %zero extended 8679 8680llvm treats calls to some functions with names and arguments that match 8681the standard C99 library as being the C99 library functions, and may 8682perform optimizations or generate code for them under that assumption. 8683This is something we'd like to change in the future to provide better 8684support for freestanding environments and non-C-based languages. 8685 8686.. _i_va_arg: 8687 8688'``va_arg``' Instruction 8689^^^^^^^^^^^^^^^^^^^^^^^^ 8690 8691Syntax: 8692""""""" 8693 8694:: 8695 8696 <resultval> = va_arg <va_list*> <arglist>, <argty> 8697 8698Overview: 8699""""""""" 8700 8701The '``va_arg``' instruction is used to access arguments passed through 8702the "variable argument" area of a function call. It is used to implement 8703the ``va_arg`` macro in C. 8704 8705Arguments: 8706"""""""""" 8707 8708This instruction takes a ``va_list*`` value and the type of the 8709argument. It returns a value of the specified argument type and 8710increments the ``va_list`` to point to the next argument. The actual 8711type of ``va_list`` is target specific. 8712 8713Semantics: 8714"""""""""" 8715 8716The '``va_arg``' instruction loads an argument of the specified type 8717from the specified ``va_list`` and causes the ``va_list`` to point to 8718the next argument. For more information, see the variable argument 8719handling :ref:`Intrinsic Functions <int_varargs>`. 8720 8721It is legal for this instruction to be called in a function which does 8722not take a variable number of arguments, for example, the ``vfprintf`` 8723function. 8724 8725``va_arg`` is an LLVM instruction instead of an :ref:`intrinsic 8726function <intrinsics>` because it takes a type as an argument. 8727 8728Example: 8729"""""""" 8730 8731See the :ref:`variable argument processing <int_varargs>` section. 8732 8733Note that the code generator does not yet fully support va\_arg on many 8734targets. Also, it does not currently support va\_arg with aggregate 8735types on any target. 8736 8737.. _i_landingpad: 8738 8739'``landingpad``' Instruction 8740^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 8741 8742Syntax: 8743""""""" 8744 8745:: 8746 8747 <resultval> = landingpad <resultty> <clause>+ 8748 <resultval> = landingpad <resultty> cleanup <clause>* 8749 8750 <clause> := catch <type> <value> 8751 <clause> := filter <array constant type> <array constant> 8752 8753Overview: 8754""""""""" 8755 8756The '``landingpad``' instruction is used by `LLVM's exception handling 8757system <ExceptionHandling.html#overview>`_ to specify that a basic block 8758is a landing pad --- one where the exception lands, and corresponds to the 8759code found in the ``catch`` portion of a ``try``/``catch`` sequence. It 8760defines values supplied by the :ref:`personality function <personalityfn>` upon 8761re-entry to the function. The ``resultval`` has the type ``resultty``. 8762 8763Arguments: 8764"""""""""" 8765 8766The optional 8767``cleanup`` flag indicates that the landing pad block is a cleanup. 8768 8769A ``clause`` begins with the clause type --- ``catch`` or ``filter`` --- and 8770contains the global variable representing the "type" that may be caught 8771or filtered respectively. Unlike the ``catch`` clause, the ``filter`` 8772clause takes an array constant as its argument. Use 8773"``[0 x i8**] undef``" for a filter which cannot throw. The 8774'``landingpad``' instruction must contain *at least* one ``clause`` or 8775the ``cleanup`` flag. 8776 8777Semantics: 8778"""""""""" 8779 8780The '``landingpad``' instruction defines the values which are set by the 8781:ref:`personality function <personalityfn>` upon re-entry to the function, and 8782therefore the "result type" of the ``landingpad`` instruction. As with 8783calling conventions, how the personality function results are 8784represented in LLVM IR is target specific. 8785 8786The clauses are applied in order from top to bottom. If two 8787``landingpad`` instructions are merged together through inlining, the 8788clauses from the calling function are appended to the list of clauses. 8789When the call stack is being unwound due to an exception being thrown, 8790the exception is compared against each ``clause`` in turn. If it doesn't 8791match any of the clauses, and the ``cleanup`` flag is not set, then 8792unwinding continues further up the call stack. 8793 8794The ``landingpad`` instruction has several restrictions: 8795 8796- A landing pad block is a basic block which is the unwind destination 8797 of an '``invoke``' instruction. 8798- A landing pad block must have a '``landingpad``' instruction as its 8799 first non-PHI instruction. 8800- There can be only one '``landingpad``' instruction within the landing 8801 pad block. 8802- A basic block that is not a landing pad block may not include a 8803 '``landingpad``' instruction. 8804 8805Example: 8806"""""""" 8807 8808.. code-block:: llvm 8809 8810 ;; A landing pad which can catch an integer. 8811 %res = landingpad { i8*, i32 } 8812 catch i8** @_ZTIi 8813 ;; A landing pad that is a cleanup. 8814 %res = landingpad { i8*, i32 } 8815 cleanup 8816 ;; A landing pad which can catch an integer and can only throw a double. 8817 %res = landingpad { i8*, i32 } 8818 catch i8** @_ZTIi 8819 filter [1 x i8**] [@_ZTId] 8820 8821.. _i_catchpad: 8822 8823'``catchpad``' Instruction 8824^^^^^^^^^^^^^^^^^^^^^^^^^^ 8825 8826Syntax: 8827""""""" 8828 8829:: 8830 8831 <resultval> = catchpad within <catchswitch> [<args>*] 8832 8833Overview: 8834""""""""" 8835 8836The '``catchpad``' instruction is used by `LLVM's exception handling 8837system <ExceptionHandling.html#overview>`_ to specify that a basic block 8838begins a catch handler --- one where a personality routine attempts to transfer 8839control to catch an exception. 8840 8841Arguments: 8842"""""""""" 8843 8844The ``catchswitch`` operand must always be a token produced by a 8845:ref:`catchswitch <i_catchswitch>` instruction in a predecessor block. This 8846ensures that each ``catchpad`` has exactly one predecessor block, and it always 8847terminates in a ``catchswitch``. 8848 8849The ``args`` correspond to whatever information the personality routine 8850requires to know if this is an appropriate handler for the exception. Control 8851will transfer to the ``catchpad`` if this is the first appropriate handler for 8852the exception. 8853 8854The ``resultval`` has the type :ref:`token <t_token>` and is used to match the 8855``catchpad`` to corresponding :ref:`catchrets <i_catchret>` and other nested EH 8856pads. 8857 8858Semantics: 8859"""""""""" 8860 8861When the call stack is being unwound due to an exception being thrown, the 8862exception is compared against the ``args``. If it doesn't match, control will 8863not reach the ``catchpad`` instruction. The representation of ``args`` is 8864entirely target and personality function-specific. 8865 8866Like the :ref:`landingpad <i_landingpad>` instruction, the ``catchpad`` 8867instruction must be the first non-phi of its parent basic block. 8868 8869The meaning of the tokens produced and consumed by ``catchpad`` and other "pad" 8870instructions is described in the 8871`Windows exception handling documentation\ <ExceptionHandling.html#wineh>`_. 8872 8873When a ``catchpad`` has been "entered" but not yet "exited" (as 8874described in the `EH documentation\ <ExceptionHandling.html#wineh-constraints>`_), 8875it is undefined behavior to execute a :ref:`call <i_call>` or :ref:`invoke <i_invoke>` 8876that does not carry an appropriate :ref:`"funclet" bundle <ob_funclet>`. 8877 8878Example: 8879"""""""" 8880 8881.. code-block:: text 8882 8883 dispatch: 8884 %cs = catchswitch within none [label %handler0] unwind to caller 8885 ;; A catch block which can catch an integer. 8886 handler0: 8887 %tok = catchpad within %cs [i8** @_ZTIi] 8888 8889.. _i_cleanuppad: 8890 8891'``cleanuppad``' Instruction 8892^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 8893 8894Syntax: 8895""""""" 8896 8897:: 8898 8899 <resultval> = cleanuppad within <parent> [<args>*] 8900 8901Overview: 8902""""""""" 8903 8904The '``cleanuppad``' instruction is used by `LLVM's exception handling 8905system <ExceptionHandling.html#overview>`_ to specify that a basic block 8906is a cleanup block --- one where a personality routine attempts to 8907transfer control to run cleanup actions. 8908The ``args`` correspond to whatever additional 8909information the :ref:`personality function <personalityfn>` requires to 8910execute the cleanup. 8911The ``resultval`` has the type :ref:`token <t_token>` and is used to 8912match the ``cleanuppad`` to corresponding :ref:`cleanuprets <i_cleanupret>`. 8913The ``parent`` argument is the token of the funclet that contains the 8914``cleanuppad`` instruction. If the ``cleanuppad`` is not inside a funclet, 8915this operand may be the token ``none``. 8916 8917Arguments: 8918"""""""""" 8919 8920The instruction takes a list of arbitrary values which are interpreted 8921by the :ref:`personality function <personalityfn>`. 8922 8923Semantics: 8924"""""""""" 8925 8926When the call stack is being unwound due to an exception being thrown, 8927the :ref:`personality function <personalityfn>` transfers control to the 8928``cleanuppad`` with the aid of the personality-specific arguments. 8929As with calling conventions, how the personality function results are 8930represented in LLVM IR is target specific. 8931 8932The ``cleanuppad`` instruction has several restrictions: 8933 8934- A cleanup block is a basic block which is the unwind destination of 8935 an exceptional instruction. 8936- A cleanup block must have a '``cleanuppad``' instruction as its 8937 first non-PHI instruction. 8938- There can be only one '``cleanuppad``' instruction within the 8939 cleanup block. 8940- A basic block that is not a cleanup block may not include a 8941 '``cleanuppad``' instruction. 8942 8943When a ``cleanuppad`` has been "entered" but not yet "exited" (as 8944described in the `EH documentation\ <ExceptionHandling.html#wineh-constraints>`_), 8945it is undefined behavior to execute a :ref:`call <i_call>` or :ref:`invoke <i_invoke>` 8946that does not carry an appropriate :ref:`"funclet" bundle <ob_funclet>`. 8947 8948Example: 8949"""""""" 8950 8951.. code-block:: text 8952 8953 %tok = cleanuppad within %cs [] 8954 8955.. _intrinsics: 8956 8957Intrinsic Functions 8958=================== 8959 8960LLVM supports the notion of an "intrinsic function". These functions 8961have well known names and semantics and are required to follow certain 8962restrictions. Overall, these intrinsics represent an extension mechanism 8963for the LLVM language that does not require changing all of the 8964transformations in LLVM when adding to the language (or the bitcode 8965reader/writer, the parser, etc...). 8966 8967Intrinsic function names must all start with an "``llvm.``" prefix. This 8968prefix is reserved in LLVM for intrinsic names; thus, function names may 8969not begin with this prefix. Intrinsic functions must always be external 8970functions: you cannot define the body of intrinsic functions. Intrinsic 8971functions may only be used in call or invoke instructions: it is illegal 8972to take the address of an intrinsic function. Additionally, because 8973intrinsic functions are part of the LLVM language, it is required if any 8974are added that they be documented here. 8975 8976Some intrinsic functions can be overloaded, i.e., the intrinsic 8977represents a family of functions that perform the same operation but on 8978different data types. Because LLVM can represent over 8 million 8979different integer types, overloading is used commonly to allow an 8980intrinsic function to operate on any integer type. One or more of the 8981argument types or the result type can be overloaded to accept any 8982integer type. Argument types may also be defined as exactly matching a 8983previous argument's type or the result type. This allows an intrinsic 8984function which accepts multiple arguments, but needs all of them to be 8985of the same type, to only be overloaded with respect to a single 8986argument or the result. 8987 8988Overloaded intrinsics will have the names of its overloaded argument 8989types encoded into its function name, each preceded by a period. Only 8990those types which are overloaded result in a name suffix. Arguments 8991whose type is matched against another type do not. For example, the 8992``llvm.ctpop`` function can take an integer of any width and returns an 8993integer of exactly the same integer width. This leads to a family of 8994functions such as ``i8 @llvm.ctpop.i8(i8 %val)`` and 8995``i29 @llvm.ctpop.i29(i29 %val)``. Only one type, the return type, is 8996overloaded, and only one type suffix is required. Because the argument's 8997type is matched against the return type, it does not require its own 8998name suffix. 8999 9000To learn how to add an intrinsic function, please see the `Extending 9001LLVM Guide <ExtendingLLVM.html>`_. 9002 9003.. _int_varargs: 9004 9005Variable Argument Handling Intrinsics 9006------------------------------------- 9007 9008Variable argument support is defined in LLVM with the 9009:ref:`va_arg <i_va_arg>` instruction and these three intrinsic 9010functions. These functions are related to the similarly named macros 9011defined in the ``<stdarg.h>`` header file. 9012 9013All of these functions operate on arguments that use a target-specific 9014value type "``va_list``". The LLVM assembly language reference manual 9015does not define what this type is, so all transformations should be 9016prepared to handle these functions regardless of the type used. 9017 9018This example shows how the :ref:`va_arg <i_va_arg>` instruction and the 9019variable argument handling intrinsic functions are used. 9020 9021.. code-block:: llvm 9022 9023 ; This struct is different for every platform. For most platforms, 9024 ; it is merely an i8*. 9025 %struct.va_list = type { i8* } 9026 9027 ; For Unix x86_64 platforms, va_list is the following struct: 9028 ; %struct.va_list = type { i32, i32, i8*, i8* } 9029 9030 define i32 @test(i32 %X, ...) { 9031 ; Initialize variable argument processing 9032 %ap = alloca %struct.va_list 9033 %ap2 = bitcast %struct.va_list* %ap to i8* 9034 call void @llvm.va_start(i8* %ap2) 9035 9036 ; Read a single integer argument 9037 %tmp = va_arg i8* %ap2, i32 9038 9039 ; Demonstrate usage of llvm.va_copy and llvm.va_end 9040 %aq = alloca i8* 9041 %aq2 = bitcast i8** %aq to i8* 9042 call void @llvm.va_copy(i8* %aq2, i8* %ap2) 9043 call void @llvm.va_end(i8* %aq2) 9044 9045 ; Stop processing of arguments. 9046 call void @llvm.va_end(i8* %ap2) 9047 ret i32 %tmp 9048 } 9049 9050 declare void @llvm.va_start(i8*) 9051 declare void @llvm.va_copy(i8*, i8*) 9052 declare void @llvm.va_end(i8*) 9053 9054.. _int_va_start: 9055 9056'``llvm.va_start``' Intrinsic 9057^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9058 9059Syntax: 9060""""""" 9061 9062:: 9063 9064 declare void @llvm.va_start(i8* <arglist>) 9065 9066Overview: 9067""""""""" 9068 9069The '``llvm.va_start``' intrinsic initializes ``*<arglist>`` for 9070subsequent use by ``va_arg``. 9071 9072Arguments: 9073"""""""""" 9074 9075The argument is a pointer to a ``va_list`` element to initialize. 9076 9077Semantics: 9078"""""""""" 9079 9080The '``llvm.va_start``' intrinsic works just like the ``va_start`` macro 9081available in C. In a target-dependent way, it initializes the 9082``va_list`` element to which the argument points, so that the next call 9083to ``va_arg`` will produce the first variable argument passed to the 9084function. Unlike the C ``va_start`` macro, this intrinsic does not need 9085to know the last argument of the function as the compiler can figure 9086that out. 9087 9088'``llvm.va_end``' Intrinsic 9089^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9090 9091Syntax: 9092""""""" 9093 9094:: 9095 9096 declare void @llvm.va_end(i8* <arglist>) 9097 9098Overview: 9099""""""""" 9100 9101The '``llvm.va_end``' intrinsic destroys ``*<arglist>``, which has been 9102initialized previously with ``llvm.va_start`` or ``llvm.va_copy``. 9103 9104Arguments: 9105"""""""""" 9106 9107The argument is a pointer to a ``va_list`` to destroy. 9108 9109Semantics: 9110"""""""""" 9111 9112The '``llvm.va_end``' intrinsic works just like the ``va_end`` macro 9113available in C. In a target-dependent way, it destroys the ``va_list`` 9114element to which the argument points. Calls to 9115:ref:`llvm.va_start <int_va_start>` and 9116:ref:`llvm.va_copy <int_va_copy>` must be matched exactly with calls to 9117``llvm.va_end``. 9118 9119.. _int_va_copy: 9120 9121'``llvm.va_copy``' Intrinsic 9122^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9123 9124Syntax: 9125""""""" 9126 9127:: 9128 9129 declare void @llvm.va_copy(i8* <destarglist>, i8* <srcarglist>) 9130 9131Overview: 9132""""""""" 9133 9134The '``llvm.va_copy``' intrinsic copies the current argument position 9135from the source argument list to the destination argument list. 9136 9137Arguments: 9138"""""""""" 9139 9140The first argument is a pointer to a ``va_list`` element to initialize. 9141The second argument is a pointer to a ``va_list`` element to copy from. 9142 9143Semantics: 9144"""""""""" 9145 9146The '``llvm.va_copy``' intrinsic works just like the ``va_copy`` macro 9147available in C. In a target-dependent way, it copies the source 9148``va_list`` element into the destination ``va_list`` element. This 9149intrinsic is necessary because the `` llvm.va_start`` intrinsic may be 9150arbitrarily complex and require, for example, memory allocation. 9151 9152Accurate Garbage Collection Intrinsics 9153-------------------------------------- 9154 9155LLVM's support for `Accurate Garbage Collection <GarbageCollection.html>`_ 9156(GC) requires the frontend to generate code containing appropriate intrinsic 9157calls and select an appropriate GC strategy which knows how to lower these 9158intrinsics in a manner which is appropriate for the target collector. 9159 9160These intrinsics allow identification of :ref:`GC roots on the 9161stack <int_gcroot>`, as well as garbage collector implementations that 9162require :ref:`read <int_gcread>` and :ref:`write <int_gcwrite>` barriers. 9163Frontends for type-safe garbage collected languages should generate 9164these intrinsics to make use of the LLVM garbage collectors. For more 9165details, see `Garbage Collection with LLVM <GarbageCollection.html>`_. 9166 9167Experimental Statepoint Intrinsics 9168^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9169 9170LLVM provides an second experimental set of intrinsics for describing garbage 9171collection safepoints in compiled code. These intrinsics are an alternative 9172to the ``llvm.gcroot`` intrinsics, but are compatible with the ones for 9173:ref:`read <int_gcread>` and :ref:`write <int_gcwrite>` barriers. The 9174differences in approach are covered in the `Garbage Collection with LLVM 9175<GarbageCollection.html>`_ documentation. The intrinsics themselves are 9176described in :doc:`Statepoints`. 9177 9178.. _int_gcroot: 9179 9180'``llvm.gcroot``' Intrinsic 9181^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9182 9183Syntax: 9184""""""" 9185 9186:: 9187 9188 declare void @llvm.gcroot(i8** %ptrloc, i8* %metadata) 9189 9190Overview: 9191""""""""" 9192 9193The '``llvm.gcroot``' intrinsic declares the existence of a GC root to 9194the code generator, and allows some metadata to be associated with it. 9195 9196Arguments: 9197"""""""""" 9198 9199The first argument specifies the address of a stack object that contains 9200the root pointer. The second pointer (which must be either a constant or 9201a global value address) contains the meta-data to be associated with the 9202root. 9203 9204Semantics: 9205"""""""""" 9206 9207At runtime, a call to this intrinsic stores a null pointer into the 9208"ptrloc" location. At compile-time, the code generator generates 9209information to allow the runtime to find the pointer at GC safe points. 9210The '``llvm.gcroot``' intrinsic may only be used in a function which 9211:ref:`specifies a GC algorithm <gc>`. 9212 9213.. _int_gcread: 9214 9215'``llvm.gcread``' Intrinsic 9216^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9217 9218Syntax: 9219""""""" 9220 9221:: 9222 9223 declare i8* @llvm.gcread(i8* %ObjPtr, i8** %Ptr) 9224 9225Overview: 9226""""""""" 9227 9228The '``llvm.gcread``' intrinsic identifies reads of references from heap 9229locations, allowing garbage collector implementations that require read 9230barriers. 9231 9232Arguments: 9233"""""""""" 9234 9235The second argument is the address to read from, which should be an 9236address allocated from the garbage collector. The first object is a 9237pointer to the start of the referenced object, if needed by the language 9238runtime (otherwise null). 9239 9240Semantics: 9241"""""""""" 9242 9243The '``llvm.gcread``' intrinsic has the same semantics as a load 9244instruction, but may be replaced with substantially more complex code by 9245the garbage collector runtime, as needed. The '``llvm.gcread``' 9246intrinsic may only be used in a function which :ref:`specifies a GC 9247algorithm <gc>`. 9248 9249.. _int_gcwrite: 9250 9251'``llvm.gcwrite``' Intrinsic 9252^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9253 9254Syntax: 9255""""""" 9256 9257:: 9258 9259 declare void @llvm.gcwrite(i8* %P1, i8* %Obj, i8** %P2) 9260 9261Overview: 9262""""""""" 9263 9264The '``llvm.gcwrite``' intrinsic identifies writes of references to heap 9265locations, allowing garbage collector implementations that require write 9266barriers (such as generational or reference counting collectors). 9267 9268Arguments: 9269"""""""""" 9270 9271The first argument is the reference to store, the second is the start of 9272the object to store it to, and the third is the address of the field of 9273Obj to store to. If the runtime does not require a pointer to the 9274object, Obj may be null. 9275 9276Semantics: 9277"""""""""" 9278 9279The '``llvm.gcwrite``' intrinsic has the same semantics as a store 9280instruction, but may be replaced with substantially more complex code by 9281the garbage collector runtime, as needed. The '``llvm.gcwrite``' 9282intrinsic may only be used in a function which :ref:`specifies a GC 9283algorithm <gc>`. 9284 9285Code Generator Intrinsics 9286------------------------- 9287 9288These intrinsics are provided by LLVM to expose special features that 9289may only be implemented with code generator support. 9290 9291'``llvm.returnaddress``' Intrinsic 9292^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9293 9294Syntax: 9295""""""" 9296 9297:: 9298 9299 declare i8 *@llvm.returnaddress(i32 <level>) 9300 9301Overview: 9302""""""""" 9303 9304The '``llvm.returnaddress``' intrinsic attempts to compute a 9305target-specific value indicating the return address of the current 9306function or one of its callers. 9307 9308Arguments: 9309"""""""""" 9310 9311The argument to this intrinsic indicates which function to return the 9312address for. Zero indicates the calling function, one indicates its 9313caller, etc. The argument is **required** to be a constant integer 9314value. 9315 9316Semantics: 9317"""""""""" 9318 9319The '``llvm.returnaddress``' intrinsic either returns a pointer 9320indicating the return address of the specified call frame, or zero if it 9321cannot be identified. The value returned by this intrinsic is likely to 9322be incorrect or 0 for arguments other than zero, so it should only be 9323used for debugging purposes. 9324 9325Note that calling this intrinsic does not prevent function inlining or 9326other aggressive transformations, so the value returned may not be that 9327of the obvious source-language caller. 9328 9329'``llvm.addressofreturnaddress``' Intrinsic 9330^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9331 9332Syntax: 9333""""""" 9334 9335:: 9336 9337 declare i8 *@llvm.addressofreturnaddress() 9338 9339Overview: 9340""""""""" 9341 9342The '``llvm.addressofreturnaddress``' intrinsic returns a target-specific 9343pointer to the place in the stack frame where the return address of the 9344current function is stored. 9345 9346Semantics: 9347"""""""""" 9348 9349Note that calling this intrinsic does not prevent function inlining or 9350other aggressive transformations, so the value returned may not be that 9351of the obvious source-language caller. 9352 9353This intrinsic is only implemented for x86. 9354 9355'``llvm.frameaddress``' Intrinsic 9356^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9357 9358Syntax: 9359""""""" 9360 9361:: 9362 9363 declare i8* @llvm.frameaddress(i32 <level>) 9364 9365Overview: 9366""""""""" 9367 9368The '``llvm.frameaddress``' intrinsic attempts to return the 9369target-specific frame pointer value for the specified stack frame. 9370 9371Arguments: 9372"""""""""" 9373 9374The argument to this intrinsic indicates which function to return the 9375frame pointer for. Zero indicates the calling function, one indicates 9376its caller, etc. The argument is **required** to be a constant integer 9377value. 9378 9379Semantics: 9380"""""""""" 9381 9382The '``llvm.frameaddress``' intrinsic either returns a pointer 9383indicating the frame address of the specified call frame, or zero if it 9384cannot be identified. The value returned by this intrinsic is likely to 9385be incorrect or 0 for arguments other than zero, so it should only be 9386used for debugging purposes. 9387 9388Note that calling this intrinsic does not prevent function inlining or 9389other aggressive transformations, so the value returned may not be that 9390of the obvious source-language caller. 9391 9392'``llvm.localescape``' and '``llvm.localrecover``' Intrinsics 9393^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9394 9395Syntax: 9396""""""" 9397 9398:: 9399 9400 declare void @llvm.localescape(...) 9401 declare i8* @llvm.localrecover(i8* %func, i8* %fp, i32 %idx) 9402 9403Overview: 9404""""""""" 9405 9406The '``llvm.localescape``' intrinsic escapes offsets of a collection of static 9407allocas, and the '``llvm.localrecover``' intrinsic applies those offsets to a 9408live frame pointer to recover the address of the allocation. The offset is 9409computed during frame layout of the caller of ``llvm.localescape``. 9410 9411Arguments: 9412"""""""""" 9413 9414All arguments to '``llvm.localescape``' must be pointers to static allocas or 9415casts of static allocas. Each function can only call '``llvm.localescape``' 9416once, and it can only do so from the entry block. 9417 9418The ``func`` argument to '``llvm.localrecover``' must be a constant 9419bitcasted pointer to a function defined in the current module. The code 9420generator cannot determine the frame allocation offset of functions defined in 9421other modules. 9422 9423The ``fp`` argument to '``llvm.localrecover``' must be a frame pointer of a 9424call frame that is currently live. The return value of '``llvm.localaddress``' 9425is one way to produce such a value, but various runtimes also expose a suitable 9426pointer in platform-specific ways. 9427 9428The ``idx`` argument to '``llvm.localrecover``' indicates which alloca passed to 9429'``llvm.localescape``' to recover. It is zero-indexed. 9430 9431Semantics: 9432"""""""""" 9433 9434These intrinsics allow a group of functions to share access to a set of local 9435stack allocations of a one parent function. The parent function may call the 9436'``llvm.localescape``' intrinsic once from the function entry block, and the 9437child functions can use '``llvm.localrecover``' to access the escaped allocas. 9438The '``llvm.localescape``' intrinsic blocks inlining, as inlining changes where 9439the escaped allocas are allocated, which would break attempts to use 9440'``llvm.localrecover``'. 9441 9442.. _int_read_register: 9443.. _int_write_register: 9444 9445'``llvm.read_register``' and '``llvm.write_register``' Intrinsics 9446^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9447 9448Syntax: 9449""""""" 9450 9451:: 9452 9453 declare i32 @llvm.read_register.i32(metadata) 9454 declare i64 @llvm.read_register.i64(metadata) 9455 declare void @llvm.write_register.i32(metadata, i32 @value) 9456 declare void @llvm.write_register.i64(metadata, i64 @value) 9457 !0 = !{!"sp\00"} 9458 9459Overview: 9460""""""""" 9461 9462The '``llvm.read_register``' and '``llvm.write_register``' intrinsics 9463provides access to the named register. The register must be valid on 9464the architecture being compiled to. The type needs to be compatible 9465with the register being read. 9466 9467Semantics: 9468"""""""""" 9469 9470The '``llvm.read_register``' intrinsic returns the current value of the 9471register, where possible. The '``llvm.write_register``' intrinsic sets 9472the current value of the register, where possible. 9473 9474This is useful to implement named register global variables that need 9475to always be mapped to a specific register, as is common practice on 9476bare-metal programs including OS kernels. 9477 9478The compiler doesn't check for register availability or use of the used 9479register in surrounding code, including inline assembly. Because of that, 9480allocatable registers are not supported. 9481 9482Warning: So far it only works with the stack pointer on selected 9483architectures (ARM, AArch64, PowerPC and x86_64). Significant amount of 9484work is needed to support other registers and even more so, allocatable 9485registers. 9486 9487.. _int_stacksave: 9488 9489'``llvm.stacksave``' Intrinsic 9490^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9491 9492Syntax: 9493""""""" 9494 9495:: 9496 9497 declare i8* @llvm.stacksave() 9498 9499Overview: 9500""""""""" 9501 9502The '``llvm.stacksave``' intrinsic is used to remember the current state 9503of the function stack, for use with 9504:ref:`llvm.stackrestore <int_stackrestore>`. This is useful for 9505implementing language features like scoped automatic variable sized 9506arrays in C99. 9507 9508Semantics: 9509"""""""""" 9510 9511This intrinsic returns a opaque pointer value that can be passed to 9512:ref:`llvm.stackrestore <int_stackrestore>`. When an 9513``llvm.stackrestore`` intrinsic is executed with a value saved from 9514``llvm.stacksave``, it effectively restores the state of the stack to 9515the state it was in when the ``llvm.stacksave`` intrinsic executed. In 9516practice, this pops any :ref:`alloca <i_alloca>` blocks from the stack that 9517were allocated after the ``llvm.stacksave`` was executed. 9518 9519.. _int_stackrestore: 9520 9521'``llvm.stackrestore``' Intrinsic 9522^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9523 9524Syntax: 9525""""""" 9526 9527:: 9528 9529 declare void @llvm.stackrestore(i8* %ptr) 9530 9531Overview: 9532""""""""" 9533 9534The '``llvm.stackrestore``' intrinsic is used to restore the state of 9535the function stack to the state it was in when the corresponding 9536:ref:`llvm.stacksave <int_stacksave>` intrinsic executed. This is 9537useful for implementing language features like scoped automatic variable 9538sized arrays in C99. 9539 9540Semantics: 9541"""""""""" 9542 9543See the description for :ref:`llvm.stacksave <int_stacksave>`. 9544 9545.. _int_get_dynamic_area_offset: 9546 9547'``llvm.get.dynamic.area.offset``' Intrinsic 9548^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9549 9550Syntax: 9551""""""" 9552 9553:: 9554 9555 declare i32 @llvm.get.dynamic.area.offset.i32() 9556 declare i64 @llvm.get.dynamic.area.offset.i64() 9557 9558Overview: 9559""""""""" 9560 9561 The '``llvm.get.dynamic.area.offset.*``' intrinsic family is used to 9562 get the offset from native stack pointer to the address of the most 9563 recent dynamic alloca on the caller's stack. These intrinsics are 9564 intendend for use in combination with 9565 :ref:`llvm.stacksave <int_stacksave>` to get a 9566 pointer to the most recent dynamic alloca. This is useful, for example, 9567 for AddressSanitizer's stack unpoisoning routines. 9568 9569Semantics: 9570"""""""""" 9571 9572 These intrinsics return a non-negative integer value that can be used to 9573 get the address of the most recent dynamic alloca, allocated by :ref:`alloca <i_alloca>` 9574 on the caller's stack. In particular, for targets where stack grows downwards, 9575 adding this offset to the native stack pointer would get the address of the most 9576 recent dynamic alloca. For targets where stack grows upwards, the situation is a bit more 9577 complicated, because subtracting this value from stack pointer would get the address 9578 one past the end of the most recent dynamic alloca. 9579 9580 Although for most targets `llvm.get.dynamic.area.offset <int_get_dynamic_area_offset>` 9581 returns just a zero, for others, such as PowerPC and PowerPC64, it returns a 9582 compile-time-known constant value. 9583 9584 The return value type of :ref:`llvm.get.dynamic.area.offset <int_get_dynamic_area_offset>` 9585 must match the target's generic address space's (address space 0) pointer type. 9586 9587'``llvm.prefetch``' Intrinsic 9588^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9589 9590Syntax: 9591""""""" 9592 9593:: 9594 9595 declare void @llvm.prefetch(i8* <address>, i32 <rw>, i32 <locality>, i32 <cache type>) 9596 9597Overview: 9598""""""""" 9599 9600The '``llvm.prefetch``' intrinsic is a hint to the code generator to 9601insert a prefetch instruction if supported; otherwise, it is a noop. 9602Prefetches have no effect on the behavior of the program but can change 9603its performance characteristics. 9604 9605Arguments: 9606"""""""""" 9607 9608``address`` is the address to be prefetched, ``rw`` is the specifier 9609determining if the fetch should be for a read (0) or write (1), and 9610``locality`` is a temporal locality specifier ranging from (0) - no 9611locality, to (3) - extremely local keep in cache. The ``cache type`` 9612specifies whether the prefetch is performed on the data (1) or 9613instruction (0) cache. The ``rw``, ``locality`` and ``cache type`` 9614arguments must be constant integers. 9615 9616Semantics: 9617"""""""""" 9618 9619This intrinsic does not modify the behavior of the program. In 9620particular, prefetches cannot trap and do not produce a value. On 9621targets that support this intrinsic, the prefetch can provide hints to 9622the processor cache for better performance. 9623 9624'``llvm.pcmarker``' Intrinsic 9625^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9626 9627Syntax: 9628""""""" 9629 9630:: 9631 9632 declare void @llvm.pcmarker(i32 <id>) 9633 9634Overview: 9635""""""""" 9636 9637The '``llvm.pcmarker``' intrinsic is a method to export a Program 9638Counter (PC) in a region of code to simulators and other tools. The 9639method is target specific, but it is expected that the marker will use 9640exported symbols to transmit the PC of the marker. The marker makes no 9641guarantees that it will remain with any specific instruction after 9642optimizations. It is possible that the presence of a marker will inhibit 9643optimizations. The intended use is to be inserted after optimizations to 9644allow correlations of simulation runs. 9645 9646Arguments: 9647"""""""""" 9648 9649``id`` is a numerical id identifying the marker. 9650 9651Semantics: 9652"""""""""" 9653 9654This intrinsic does not modify the behavior of the program. Backends 9655that do not support this intrinsic may ignore it. 9656 9657'``llvm.readcyclecounter``' Intrinsic 9658^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9659 9660Syntax: 9661""""""" 9662 9663:: 9664 9665 declare i64 @llvm.readcyclecounter() 9666 9667Overview: 9668""""""""" 9669 9670The '``llvm.readcyclecounter``' intrinsic provides access to the cycle 9671counter register (or similar low latency, high accuracy clocks) on those 9672targets that support it. On X86, it should map to RDTSC. On Alpha, it 9673should map to RPCC. As the backing counters overflow quickly (on the 9674order of 9 seconds on alpha), this should only be used for small 9675timings. 9676 9677Semantics: 9678"""""""""" 9679 9680When directly supported, reading the cycle counter should not modify any 9681memory. Implementations are allowed to either return a application 9682specific value or a system wide value. On backends without support, this 9683is lowered to a constant 0. 9684 9685Note that runtime support may be conditional on the privilege-level code is 9686running at and the host platform. 9687 9688'``llvm.clear_cache``' Intrinsic 9689^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9690 9691Syntax: 9692""""""" 9693 9694:: 9695 9696 declare void @llvm.clear_cache(i8*, i8*) 9697 9698Overview: 9699""""""""" 9700 9701The '``llvm.clear_cache``' intrinsic ensures visibility of modifications 9702in the specified range to the execution unit of the processor. On 9703targets with non-unified instruction and data cache, the implementation 9704flushes the instruction cache. 9705 9706Semantics: 9707"""""""""" 9708 9709On platforms with coherent instruction and data caches (e.g. x86), this 9710intrinsic is a nop. On platforms with non-coherent instruction and data 9711cache (e.g. ARM, MIPS), the intrinsic is lowered either to appropriate 9712instructions or a system call, if cache flushing requires special 9713privileges. 9714 9715The default behavior is to emit a call to ``__clear_cache`` from the run 9716time library. 9717 9718This instrinsic does *not* empty the instruction pipeline. Modifications 9719of the current function are outside the scope of the intrinsic. 9720 9721'``llvm.instrprof_increment``' Intrinsic 9722^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9723 9724Syntax: 9725""""""" 9726 9727:: 9728 9729 declare void @llvm.instrprof_increment(i8* <name>, i64 <hash>, 9730 i32 <num-counters>, i32 <index>) 9731 9732Overview: 9733""""""""" 9734 9735The '``llvm.instrprof_increment``' intrinsic can be emitted by a 9736frontend for use with instrumentation based profiling. These will be 9737lowered by the ``-instrprof`` pass to generate execution counts of a 9738program at runtime. 9739 9740Arguments: 9741"""""""""" 9742 9743The first argument is a pointer to a global variable containing the 9744name of the entity being instrumented. This should generally be the 9745(mangled) function name for a set of counters. 9746 9747The second argument is a hash value that can be used by the consumer 9748of the profile data to detect changes to the instrumented source, and 9749the third is the number of counters associated with ``name``. It is an 9750error if ``hash`` or ``num-counters`` differ between two instances of 9751``instrprof_increment`` that refer to the same name. 9752 9753The last argument refers to which of the counters for ``name`` should 9754be incremented. It should be a value between 0 and ``num-counters``. 9755 9756Semantics: 9757"""""""""" 9758 9759This intrinsic represents an increment of a profiling counter. It will 9760cause the ``-instrprof`` pass to generate the appropriate data 9761structures and the code to increment the appropriate value, in a 9762format that can be written out by a compiler runtime and consumed via 9763the ``llvm-profdata`` tool. 9764 9765'``llvm.instrprof_increment_step``' Intrinsic 9766^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9767 9768Syntax: 9769""""""" 9770 9771:: 9772 9773 declare void @llvm.instrprof_increment_step(i8* <name>, i64 <hash>, 9774 i32 <num-counters>, 9775 i32 <index>, i64 <step>) 9776 9777Overview: 9778""""""""" 9779 9780The '``llvm.instrprof_increment_step``' intrinsic is an extension to 9781the '``llvm.instrprof_increment``' intrinsic with an additional fifth 9782argument to specify the step of the increment. 9783 9784Arguments: 9785"""""""""" 9786The first four arguments are the same as '``llvm.instrprof_increment``' 9787instrinsic. 9788 9789The last argument specifies the value of the increment of the counter variable. 9790 9791Semantics: 9792"""""""""" 9793See description of '``llvm.instrprof_increment``' instrinsic. 9794 9795 9796'``llvm.instrprof_value_profile``' Intrinsic 9797^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9798 9799Syntax: 9800""""""" 9801 9802:: 9803 9804 declare void @llvm.instrprof_value_profile(i8* <name>, i64 <hash>, 9805 i64 <value>, i32 <value_kind>, 9806 i32 <index>) 9807 9808Overview: 9809""""""""" 9810 9811The '``llvm.instrprof_value_profile``' intrinsic can be emitted by a 9812frontend for use with instrumentation based profiling. This will be 9813lowered by the ``-instrprof`` pass to find out the target values, 9814instrumented expressions take in a program at runtime. 9815 9816Arguments: 9817"""""""""" 9818 9819The first argument is a pointer to a global variable containing the 9820name of the entity being instrumented. ``name`` should generally be the 9821(mangled) function name for a set of counters. 9822 9823The second argument is a hash value that can be used by the consumer 9824of the profile data to detect changes to the instrumented source. It 9825is an error if ``hash`` differs between two instances of 9826``llvm.instrprof_*`` that refer to the same name. 9827 9828The third argument is the value of the expression being profiled. The profiled 9829expression's value should be representable as an unsigned 64-bit value. The 9830fourth argument represents the kind of value profiling that is being done. The 9831supported value profiling kinds are enumerated through the 9832``InstrProfValueKind`` type declared in the 9833``<include/llvm/ProfileData/InstrProf.h>`` header file. The last argument is the 9834index of the instrumented expression within ``name``. It should be >= 0. 9835 9836Semantics: 9837"""""""""" 9838 9839This intrinsic represents the point where a call to a runtime routine 9840should be inserted for value profiling of target expressions. ``-instrprof`` 9841pass will generate the appropriate data structures and replace the 9842``llvm.instrprof_value_profile`` intrinsic with the call to the profile 9843runtime library with proper arguments. 9844 9845'``llvm.thread.pointer``' Intrinsic 9846^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9847 9848Syntax: 9849""""""" 9850 9851:: 9852 9853 declare i8* @llvm.thread.pointer() 9854 9855Overview: 9856""""""""" 9857 9858The '``llvm.thread.pointer``' intrinsic returns the value of the thread 9859pointer. 9860 9861Semantics: 9862"""""""""" 9863 9864The '``llvm.thread.pointer``' intrinsic returns a pointer to the TLS area 9865for the current thread. The exact semantics of this value are target 9866specific: it may point to the start of TLS area, to the end, or somewhere 9867in the middle. Depending on the target, this intrinsic may read a register, 9868call a helper function, read from an alternate memory space, or perform 9869other operations necessary to locate the TLS area. Not all targets support 9870this intrinsic. 9871 9872Standard C Library Intrinsics 9873----------------------------- 9874 9875LLVM provides intrinsics for a few important standard C library 9876functions. These intrinsics allow source-language front-ends to pass 9877information about the alignment of the pointer arguments to the code 9878generator, providing opportunity for more efficient code generation. 9879 9880.. _int_memcpy: 9881 9882'``llvm.memcpy``' Intrinsic 9883^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9884 9885Syntax: 9886""""""" 9887 9888This is an overloaded intrinsic. You can use ``llvm.memcpy`` on any 9889integer bit width and for different address spaces. Not all targets 9890support all bit widths however. 9891 9892:: 9893 9894 declare void @llvm.memcpy.p0i8.p0i8.i32(i8* <dest>, i8* <src>, 9895 i32 <len>, i32 <align>, i1 <isvolatile>) 9896 declare void @llvm.memcpy.p0i8.p0i8.i64(i8* <dest>, i8* <src>, 9897 i64 <len>, i32 <align>, i1 <isvolatile>) 9898 9899Overview: 9900""""""""" 9901 9902The '``llvm.memcpy.*``' intrinsics copy a block of memory from the 9903source location to the destination location. 9904 9905Note that, unlike the standard libc function, the ``llvm.memcpy.*`` 9906intrinsics do not return a value, takes extra alignment/isvolatile 9907arguments and the pointers can be in specified address spaces. 9908 9909Arguments: 9910"""""""""" 9911 9912The first argument is a pointer to the destination, the second is a 9913pointer to the source. The third argument is an integer argument 9914specifying the number of bytes to copy, the fourth argument is the 9915alignment of the source and destination locations, and the fifth is a 9916boolean indicating a volatile access. 9917 9918If the call to this intrinsic has an alignment value that is not 0 or 1, 9919then the caller guarantees that both the source and destination pointers 9920are aligned to that boundary. 9921 9922If the ``isvolatile`` parameter is ``true``, the ``llvm.memcpy`` call is 9923a :ref:`volatile operation <volatile>`. The detailed access behavior is not 9924very cleanly specified and it is unwise to depend on it. 9925 9926Semantics: 9927"""""""""" 9928 9929The '``llvm.memcpy.*``' intrinsics copy a block of memory from the 9930source location to the destination location, which are not allowed to 9931overlap. It copies "len" bytes of memory over. If the argument is known 9932to be aligned to some boundary, this can be specified as the fourth 9933argument, otherwise it should be set to 0 or 1 (both meaning no alignment). 9934 9935'``llvm.memmove``' Intrinsic 9936^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9937 9938Syntax: 9939""""""" 9940 9941This is an overloaded intrinsic. You can use llvm.memmove on any integer 9942bit width and for different address space. Not all targets support all 9943bit widths however. 9944 9945:: 9946 9947 declare void @llvm.memmove.p0i8.p0i8.i32(i8* <dest>, i8* <src>, 9948 i32 <len>, i32 <align>, i1 <isvolatile>) 9949 declare void @llvm.memmove.p0i8.p0i8.i64(i8* <dest>, i8* <src>, 9950 i64 <len>, i32 <align>, i1 <isvolatile>) 9951 9952Overview: 9953""""""""" 9954 9955The '``llvm.memmove.*``' intrinsics move a block of memory from the 9956source location to the destination location. It is similar to the 9957'``llvm.memcpy``' intrinsic but allows the two memory locations to 9958overlap. 9959 9960Note that, unlike the standard libc function, the ``llvm.memmove.*`` 9961intrinsics do not return a value, takes extra alignment/isvolatile 9962arguments and the pointers can be in specified address spaces. 9963 9964Arguments: 9965"""""""""" 9966 9967The first argument is a pointer to the destination, the second is a 9968pointer to the source. The third argument is an integer argument 9969specifying the number of bytes to copy, the fourth argument is the 9970alignment of the source and destination locations, and the fifth is a 9971boolean indicating a volatile access. 9972 9973If the call to this intrinsic has an alignment value that is not 0 or 1, 9974then the caller guarantees that the source and destination pointers are 9975aligned to that boundary. 9976 9977If the ``isvolatile`` parameter is ``true``, the ``llvm.memmove`` call 9978is a :ref:`volatile operation <volatile>`. The detailed access behavior is 9979not very cleanly specified and it is unwise to depend on it. 9980 9981Semantics: 9982"""""""""" 9983 9984The '``llvm.memmove.*``' intrinsics copy a block of memory from the 9985source location to the destination location, which may overlap. It 9986copies "len" bytes of memory over. If the argument is known to be 9987aligned to some boundary, this can be specified as the fourth argument, 9988otherwise it should be set to 0 or 1 (both meaning no alignment). 9989 9990'``llvm.memset.*``' Intrinsics 9991^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 9992 9993Syntax: 9994""""""" 9995 9996This is an overloaded intrinsic. You can use llvm.memset on any integer 9997bit width and for different address spaces. However, not all targets 9998support all bit widths. 9999 10000:: 10001 10002 declare void @llvm.memset.p0i8.i32(i8* <dest>, i8 <val>, 10003 i32 <len>, i32 <align>, i1 <isvolatile>) 10004 declare void @llvm.memset.p0i8.i64(i8* <dest>, i8 <val>, 10005 i64 <len>, i32 <align>, i1 <isvolatile>) 10006 10007Overview: 10008""""""""" 10009 10010The '``llvm.memset.*``' intrinsics fill a block of memory with a 10011particular byte value. 10012 10013Note that, unlike the standard libc function, the ``llvm.memset`` 10014intrinsic does not return a value and takes extra alignment/volatile 10015arguments. Also, the destination can be in an arbitrary address space. 10016 10017Arguments: 10018"""""""""" 10019 10020The first argument is a pointer to the destination to fill, the second 10021is the byte value with which to fill it, the third argument is an 10022integer argument specifying the number of bytes to fill, and the fourth 10023argument is the known alignment of the destination location. 10024 10025If the call to this intrinsic has an alignment value that is not 0 or 1, 10026then the caller guarantees that the destination pointer is aligned to 10027that boundary. 10028 10029If the ``isvolatile`` parameter is ``true``, the ``llvm.memset`` call is 10030a :ref:`volatile operation <volatile>`. The detailed access behavior is not 10031very cleanly specified and it is unwise to depend on it. 10032 10033Semantics: 10034"""""""""" 10035 10036The '``llvm.memset.*``' intrinsics fill "len" bytes of memory starting 10037at the destination location. If the argument is known to be aligned to 10038some boundary, this can be specified as the fourth argument, otherwise 10039it should be set to 0 or 1 (both meaning no alignment). 10040 10041'``llvm.sqrt.*``' Intrinsic 10042^^^^^^^^^^^^^^^^^^^^^^^^^^^ 10043 10044Syntax: 10045""""""" 10046 10047This is an overloaded intrinsic. You can use ``llvm.sqrt`` on any 10048floating point or vector of floating point type. Not all targets support 10049all types however. 10050 10051:: 10052 10053 declare float @llvm.sqrt.f32(float %Val) 10054 declare double @llvm.sqrt.f64(double %Val) 10055 declare x86_fp80 @llvm.sqrt.f80(x86_fp80 %Val) 10056 declare fp128 @llvm.sqrt.f128(fp128 %Val) 10057 declare ppc_fp128 @llvm.sqrt.ppcf128(ppc_fp128 %Val) 10058 10059Overview: 10060""""""""" 10061 10062The '``llvm.sqrt``' intrinsics return the sqrt of the specified operand, 10063returning the same value as the libm '``sqrt``' functions would. Unlike 10064``sqrt`` in libm, however, ``llvm.sqrt`` has undefined behavior for 10065negative numbers other than -0.0 (which allows for better optimization, 10066because there is no need to worry about errno being set). 10067``llvm.sqrt(-0.0)`` is defined to return -0.0 like IEEE sqrt. 10068 10069Arguments: 10070"""""""""" 10071 10072The argument and return value are floating point numbers of the same 10073type. 10074 10075Semantics: 10076"""""""""" 10077 10078This function returns the sqrt of the specified operand if it is a 10079nonnegative floating point number. 10080 10081'``llvm.powi.*``' Intrinsic 10082^^^^^^^^^^^^^^^^^^^^^^^^^^^ 10083 10084Syntax: 10085""""""" 10086 10087This is an overloaded intrinsic. You can use ``llvm.powi`` on any 10088floating point or vector of floating point type. Not all targets support 10089all types however. 10090 10091:: 10092 10093 declare float @llvm.powi.f32(float %Val, i32 %power) 10094 declare double @llvm.powi.f64(double %Val, i32 %power) 10095 declare x86_fp80 @llvm.powi.f80(x86_fp80 %Val, i32 %power) 10096 declare fp128 @llvm.powi.f128(fp128 %Val, i32 %power) 10097 declare ppc_fp128 @llvm.powi.ppcf128(ppc_fp128 %Val, i32 %power) 10098 10099Overview: 10100""""""""" 10101 10102The '``llvm.powi.*``' intrinsics return the first operand raised to the 10103specified (positive or negative) power. The order of evaluation of 10104multiplications is not defined. When a vector of floating point type is 10105used, the second argument remains a scalar integer value. 10106 10107Arguments: 10108"""""""""" 10109 10110The second argument is an integer power, and the first is a value to 10111raise to that power. 10112 10113Semantics: 10114"""""""""" 10115 10116This function returns the first value raised to the second power with an 10117unspecified sequence of rounding operations. 10118 10119'``llvm.sin.*``' Intrinsic 10120^^^^^^^^^^^^^^^^^^^^^^^^^^ 10121 10122Syntax: 10123""""""" 10124 10125This is an overloaded intrinsic. You can use ``llvm.sin`` on any 10126floating point or vector of floating point type. Not all targets support 10127all types however. 10128 10129:: 10130 10131 declare float @llvm.sin.f32(float %Val) 10132 declare double @llvm.sin.f64(double %Val) 10133 declare x86_fp80 @llvm.sin.f80(x86_fp80 %Val) 10134 declare fp128 @llvm.sin.f128(fp128 %Val) 10135 declare ppc_fp128 @llvm.sin.ppcf128(ppc_fp128 %Val) 10136 10137Overview: 10138""""""""" 10139 10140The '``llvm.sin.*``' intrinsics return the sine of the operand. 10141 10142Arguments: 10143"""""""""" 10144 10145The argument and return value are floating point numbers of the same 10146type. 10147 10148Semantics: 10149"""""""""" 10150 10151This function returns the sine of the specified operand, returning the 10152same values as the libm ``sin`` functions would, and handles error 10153conditions in the same way. 10154 10155'``llvm.cos.*``' Intrinsic 10156^^^^^^^^^^^^^^^^^^^^^^^^^^ 10157 10158Syntax: 10159""""""" 10160 10161This is an overloaded intrinsic. You can use ``llvm.cos`` on any 10162floating point or vector of floating point type. Not all targets support 10163all types however. 10164 10165:: 10166 10167 declare float @llvm.cos.f32(float %Val) 10168 declare double @llvm.cos.f64(double %Val) 10169 declare x86_fp80 @llvm.cos.f80(x86_fp80 %Val) 10170 declare fp128 @llvm.cos.f128(fp128 %Val) 10171 declare ppc_fp128 @llvm.cos.ppcf128(ppc_fp128 %Val) 10172 10173Overview: 10174""""""""" 10175 10176The '``llvm.cos.*``' intrinsics return the cosine of the operand. 10177 10178Arguments: 10179"""""""""" 10180 10181The argument and return value are floating point numbers of the same 10182type. 10183 10184Semantics: 10185"""""""""" 10186 10187This function returns the cosine of the specified operand, returning the 10188same values as the libm ``cos`` functions would, and handles error 10189conditions in the same way. 10190 10191'``llvm.pow.*``' Intrinsic 10192^^^^^^^^^^^^^^^^^^^^^^^^^^ 10193 10194Syntax: 10195""""""" 10196 10197This is an overloaded intrinsic. You can use ``llvm.pow`` on any 10198floating point or vector of floating point type. Not all targets support 10199all types however. 10200 10201:: 10202 10203 declare float @llvm.pow.f32(float %Val, float %Power) 10204 declare double @llvm.pow.f64(double %Val, double %Power) 10205 declare x86_fp80 @llvm.pow.f80(x86_fp80 %Val, x86_fp80 %Power) 10206 declare fp128 @llvm.pow.f128(fp128 %Val, fp128 %Power) 10207 declare ppc_fp128 @llvm.pow.ppcf128(ppc_fp128 %Val, ppc_fp128 Power) 10208 10209Overview: 10210""""""""" 10211 10212The '``llvm.pow.*``' intrinsics return the first operand raised to the 10213specified (positive or negative) power. 10214 10215Arguments: 10216"""""""""" 10217 10218The second argument is a floating point power, and the first is a value 10219to raise to that power. 10220 10221Semantics: 10222"""""""""" 10223 10224This function returns the first value raised to the second power, 10225returning the same values as the libm ``pow`` functions would, and 10226handles error conditions in the same way. 10227 10228'``llvm.exp.*``' Intrinsic 10229^^^^^^^^^^^^^^^^^^^^^^^^^^ 10230 10231Syntax: 10232""""""" 10233 10234This is an overloaded intrinsic. You can use ``llvm.exp`` on any 10235floating point or vector of floating point type. Not all targets support 10236all types however. 10237 10238:: 10239 10240 declare float @llvm.exp.f32(float %Val) 10241 declare double @llvm.exp.f64(double %Val) 10242 declare x86_fp80 @llvm.exp.f80(x86_fp80 %Val) 10243 declare fp128 @llvm.exp.f128(fp128 %Val) 10244 declare ppc_fp128 @llvm.exp.ppcf128(ppc_fp128 %Val) 10245 10246Overview: 10247""""""""" 10248 10249The '``llvm.exp.*``' intrinsics perform the exp function. 10250 10251Arguments: 10252"""""""""" 10253 10254The argument and return value are floating point numbers of the same 10255type. 10256 10257Semantics: 10258"""""""""" 10259 10260This function returns the same values as the libm ``exp`` functions 10261would, and handles error conditions in the same way. 10262 10263'``llvm.exp2.*``' Intrinsic 10264^^^^^^^^^^^^^^^^^^^^^^^^^^^ 10265 10266Syntax: 10267""""""" 10268 10269This is an overloaded intrinsic. You can use ``llvm.exp2`` on any 10270floating point or vector of floating point type. Not all targets support 10271all types however. 10272 10273:: 10274 10275 declare float @llvm.exp2.f32(float %Val) 10276 declare double @llvm.exp2.f64(double %Val) 10277 declare x86_fp80 @llvm.exp2.f80(x86_fp80 %Val) 10278 declare fp128 @llvm.exp2.f128(fp128 %Val) 10279 declare ppc_fp128 @llvm.exp2.ppcf128(ppc_fp128 %Val) 10280 10281Overview: 10282""""""""" 10283 10284The '``llvm.exp2.*``' intrinsics perform the exp2 function. 10285 10286Arguments: 10287"""""""""" 10288 10289The argument and return value are floating point numbers of the same 10290type. 10291 10292Semantics: 10293"""""""""" 10294 10295This function returns the same values as the libm ``exp2`` functions 10296would, and handles error conditions in the same way. 10297 10298'``llvm.log.*``' Intrinsic 10299^^^^^^^^^^^^^^^^^^^^^^^^^^ 10300 10301Syntax: 10302""""""" 10303 10304This is an overloaded intrinsic. You can use ``llvm.log`` on any 10305floating point or vector of floating point type. Not all targets support 10306all types however. 10307 10308:: 10309 10310 declare float @llvm.log.f32(float %Val) 10311 declare double @llvm.log.f64(double %Val) 10312 declare x86_fp80 @llvm.log.f80(x86_fp80 %Val) 10313 declare fp128 @llvm.log.f128(fp128 %Val) 10314 declare ppc_fp128 @llvm.log.ppcf128(ppc_fp128 %Val) 10315 10316Overview: 10317""""""""" 10318 10319The '``llvm.log.*``' intrinsics perform the log function. 10320 10321Arguments: 10322"""""""""" 10323 10324The argument and return value are floating point numbers of the same 10325type. 10326 10327Semantics: 10328"""""""""" 10329 10330This function returns the same values as the libm ``log`` functions 10331would, and handles error conditions in the same way. 10332 10333'``llvm.log10.*``' Intrinsic 10334^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 10335 10336Syntax: 10337""""""" 10338 10339This is an overloaded intrinsic. You can use ``llvm.log10`` on any 10340floating point or vector of floating point type. Not all targets support 10341all types however. 10342 10343:: 10344 10345 declare float @llvm.log10.f32(float %Val) 10346 declare double @llvm.log10.f64(double %Val) 10347 declare x86_fp80 @llvm.log10.f80(x86_fp80 %Val) 10348 declare fp128 @llvm.log10.f128(fp128 %Val) 10349 declare ppc_fp128 @llvm.log10.ppcf128(ppc_fp128 %Val) 10350 10351Overview: 10352""""""""" 10353 10354The '``llvm.log10.*``' intrinsics perform the log10 function. 10355 10356Arguments: 10357"""""""""" 10358 10359The argument and return value are floating point numbers of the same 10360type. 10361 10362Semantics: 10363"""""""""" 10364 10365This function returns the same values as the libm ``log10`` functions 10366would, and handles error conditions in the same way. 10367 10368'``llvm.log2.*``' Intrinsic 10369^^^^^^^^^^^^^^^^^^^^^^^^^^^ 10370 10371Syntax: 10372""""""" 10373 10374This is an overloaded intrinsic. You can use ``llvm.log2`` on any 10375floating point or vector of floating point type. Not all targets support 10376all types however. 10377 10378:: 10379 10380 declare float @llvm.log2.f32(float %Val) 10381 declare double @llvm.log2.f64(double %Val) 10382 declare x86_fp80 @llvm.log2.f80(x86_fp80 %Val) 10383 declare fp128 @llvm.log2.f128(fp128 %Val) 10384 declare ppc_fp128 @llvm.log2.ppcf128(ppc_fp128 %Val) 10385 10386Overview: 10387""""""""" 10388 10389The '``llvm.log2.*``' intrinsics perform the log2 function. 10390 10391Arguments: 10392"""""""""" 10393 10394The argument and return value are floating point numbers of the same 10395type. 10396 10397Semantics: 10398"""""""""" 10399 10400This function returns the same values as the libm ``log2`` functions 10401would, and handles error conditions in the same way. 10402 10403'``llvm.fma.*``' Intrinsic 10404^^^^^^^^^^^^^^^^^^^^^^^^^^ 10405 10406Syntax: 10407""""""" 10408 10409This is an overloaded intrinsic. You can use ``llvm.fma`` on any 10410floating point or vector of floating point type. Not all targets support 10411all types however. 10412 10413:: 10414 10415 declare float @llvm.fma.f32(float %a, float %b, float %c) 10416 declare double @llvm.fma.f64(double %a, double %b, double %c) 10417 declare x86_fp80 @llvm.fma.f80(x86_fp80 %a, x86_fp80 %b, x86_fp80 %c) 10418 declare fp128 @llvm.fma.f128(fp128 %a, fp128 %b, fp128 %c) 10419 declare ppc_fp128 @llvm.fma.ppcf128(ppc_fp128 %a, ppc_fp128 %b, ppc_fp128 %c) 10420 10421Overview: 10422""""""""" 10423 10424The '``llvm.fma.*``' intrinsics perform the fused multiply-add 10425operation. 10426 10427Arguments: 10428"""""""""" 10429 10430The argument and return value are floating point numbers of the same 10431type. 10432 10433Semantics: 10434"""""""""" 10435 10436This function returns the same values as the libm ``fma`` functions 10437would, and does not set errno. 10438 10439'``llvm.fabs.*``' Intrinsic 10440^^^^^^^^^^^^^^^^^^^^^^^^^^^ 10441 10442Syntax: 10443""""""" 10444 10445This is an overloaded intrinsic. You can use ``llvm.fabs`` on any 10446floating point or vector of floating point type. Not all targets support 10447all types however. 10448 10449:: 10450 10451 declare float @llvm.fabs.f32(float %Val) 10452 declare double @llvm.fabs.f64(double %Val) 10453 declare x86_fp80 @llvm.fabs.f80(x86_fp80 %Val) 10454 declare fp128 @llvm.fabs.f128(fp128 %Val) 10455 declare ppc_fp128 @llvm.fabs.ppcf128(ppc_fp128 %Val) 10456 10457Overview: 10458""""""""" 10459 10460The '``llvm.fabs.*``' intrinsics return the absolute value of the 10461operand. 10462 10463Arguments: 10464"""""""""" 10465 10466The argument and return value are floating point numbers of the same 10467type. 10468 10469Semantics: 10470"""""""""" 10471 10472This function returns the same values as the libm ``fabs`` functions 10473would, and handles error conditions in the same way. 10474 10475'``llvm.minnum.*``' Intrinsic 10476^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 10477 10478Syntax: 10479""""""" 10480 10481This is an overloaded intrinsic. You can use ``llvm.minnum`` on any 10482floating point or vector of floating point type. Not all targets support 10483all types however. 10484 10485:: 10486 10487 declare float @llvm.minnum.f32(float %Val0, float %Val1) 10488 declare double @llvm.minnum.f64(double %Val0, double %Val1) 10489 declare x86_fp80 @llvm.minnum.f80(x86_fp80 %Val0, x86_fp80 %Val1) 10490 declare fp128 @llvm.minnum.f128(fp128 %Val0, fp128 %Val1) 10491 declare ppc_fp128 @llvm.minnum.ppcf128(ppc_fp128 %Val0, ppc_fp128 %Val1) 10492 10493Overview: 10494""""""""" 10495 10496The '``llvm.minnum.*``' intrinsics return the minimum of the two 10497arguments. 10498 10499 10500Arguments: 10501"""""""""" 10502 10503The arguments and return value are floating point numbers of the same 10504type. 10505 10506Semantics: 10507"""""""""" 10508 10509Follows the IEEE-754 semantics for minNum, which also match for libm's 10510fmin. 10511 10512If either operand is a NaN, returns the other non-NaN operand. Returns 10513NaN only if both operands are NaN. If the operands compare equal, 10514returns a value that compares equal to both operands. This means that 10515fmin(+/-0.0, +/-0.0) could return either -0.0 or 0.0. 10516 10517'``llvm.maxnum.*``' Intrinsic 10518^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 10519 10520Syntax: 10521""""""" 10522 10523This is an overloaded intrinsic. You can use ``llvm.maxnum`` on any 10524floating point or vector of floating point type. Not all targets support 10525all types however. 10526 10527:: 10528 10529 declare float @llvm.maxnum.f32(float %Val0, float %Val1l) 10530 declare double @llvm.maxnum.f64(double %Val0, double %Val1) 10531 declare x86_fp80 @llvm.maxnum.f80(x86_fp80 %Val0, x86_fp80 %Val1) 10532 declare fp128 @llvm.maxnum.f128(fp128 %Val0, fp128 %Val1) 10533 declare ppc_fp128 @llvm.maxnum.ppcf128(ppc_fp128 %Val0, ppc_fp128 %Val1) 10534 10535Overview: 10536""""""""" 10537 10538The '``llvm.maxnum.*``' intrinsics return the maximum of the two 10539arguments. 10540 10541 10542Arguments: 10543"""""""""" 10544 10545The arguments and return value are floating point numbers of the same 10546type. 10547 10548Semantics: 10549"""""""""" 10550Follows the IEEE-754 semantics for maxNum, which also match for libm's 10551fmax. 10552 10553If either operand is a NaN, returns the other non-NaN operand. Returns 10554NaN only if both operands are NaN. If the operands compare equal, 10555returns a value that compares equal to both operands. This means that 10556fmax(+/-0.0, +/-0.0) could return either -0.0 or 0.0. 10557 10558'``llvm.copysign.*``' Intrinsic 10559^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 10560 10561Syntax: 10562""""""" 10563 10564This is an overloaded intrinsic. You can use ``llvm.copysign`` on any 10565floating point or vector of floating point type. Not all targets support 10566all types however. 10567 10568:: 10569 10570 declare float @llvm.copysign.f32(float %Mag, float %Sgn) 10571 declare double @llvm.copysign.f64(double %Mag, double %Sgn) 10572 declare x86_fp80 @llvm.copysign.f80(x86_fp80 %Mag, x86_fp80 %Sgn) 10573 declare fp128 @llvm.copysign.f128(fp128 %Mag, fp128 %Sgn) 10574 declare ppc_fp128 @llvm.copysign.ppcf128(ppc_fp128 %Mag, ppc_fp128 %Sgn) 10575 10576Overview: 10577""""""""" 10578 10579The '``llvm.copysign.*``' intrinsics return a value with the magnitude of the 10580first operand and the sign of the second operand. 10581 10582Arguments: 10583"""""""""" 10584 10585The arguments and return value are floating point numbers of the same 10586type. 10587 10588Semantics: 10589"""""""""" 10590 10591This function returns the same values as the libm ``copysign`` 10592functions would, and handles error conditions in the same way. 10593 10594'``llvm.floor.*``' Intrinsic 10595^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 10596 10597Syntax: 10598""""""" 10599 10600This is an overloaded intrinsic. You can use ``llvm.floor`` on any 10601floating point or vector of floating point type. Not all targets support 10602all types however. 10603 10604:: 10605 10606 declare float @llvm.floor.f32(float %Val) 10607 declare double @llvm.floor.f64(double %Val) 10608 declare x86_fp80 @llvm.floor.f80(x86_fp80 %Val) 10609 declare fp128 @llvm.floor.f128(fp128 %Val) 10610 declare ppc_fp128 @llvm.floor.ppcf128(ppc_fp128 %Val) 10611 10612Overview: 10613""""""""" 10614 10615The '``llvm.floor.*``' intrinsics return the floor of the operand. 10616 10617Arguments: 10618"""""""""" 10619 10620The argument and return value are floating point numbers of the same 10621type. 10622 10623Semantics: 10624"""""""""" 10625 10626This function returns the same values as the libm ``floor`` functions 10627would, and handles error conditions in the same way. 10628 10629'``llvm.ceil.*``' Intrinsic 10630^^^^^^^^^^^^^^^^^^^^^^^^^^^ 10631 10632Syntax: 10633""""""" 10634 10635This is an overloaded intrinsic. You can use ``llvm.ceil`` on any 10636floating point or vector of floating point type. Not all targets support 10637all types however. 10638 10639:: 10640 10641 declare float @llvm.ceil.f32(float %Val) 10642 declare double @llvm.ceil.f64(double %Val) 10643 declare x86_fp80 @llvm.ceil.f80(x86_fp80 %Val) 10644 declare fp128 @llvm.ceil.f128(fp128 %Val) 10645 declare ppc_fp128 @llvm.ceil.ppcf128(ppc_fp128 %Val) 10646 10647Overview: 10648""""""""" 10649 10650The '``llvm.ceil.*``' intrinsics return the ceiling of the operand. 10651 10652Arguments: 10653"""""""""" 10654 10655The argument and return value are floating point numbers of the same 10656type. 10657 10658Semantics: 10659"""""""""" 10660 10661This function returns the same values as the libm ``ceil`` functions 10662would, and handles error conditions in the same way. 10663 10664'``llvm.trunc.*``' Intrinsic 10665^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 10666 10667Syntax: 10668""""""" 10669 10670This is an overloaded intrinsic. You can use ``llvm.trunc`` on any 10671floating point or vector of floating point type. Not all targets support 10672all types however. 10673 10674:: 10675 10676 declare float @llvm.trunc.f32(float %Val) 10677 declare double @llvm.trunc.f64(double %Val) 10678 declare x86_fp80 @llvm.trunc.f80(x86_fp80 %Val) 10679 declare fp128 @llvm.trunc.f128(fp128 %Val) 10680 declare ppc_fp128 @llvm.trunc.ppcf128(ppc_fp128 %Val) 10681 10682Overview: 10683""""""""" 10684 10685The '``llvm.trunc.*``' intrinsics returns the operand rounded to the 10686nearest integer not larger in magnitude than the operand. 10687 10688Arguments: 10689"""""""""" 10690 10691The argument and return value are floating point numbers of the same 10692type. 10693 10694Semantics: 10695"""""""""" 10696 10697This function returns the same values as the libm ``trunc`` functions 10698would, and handles error conditions in the same way. 10699 10700'``llvm.rint.*``' Intrinsic 10701^^^^^^^^^^^^^^^^^^^^^^^^^^^ 10702 10703Syntax: 10704""""""" 10705 10706This is an overloaded intrinsic. You can use ``llvm.rint`` on any 10707floating point or vector of floating point type. Not all targets support 10708all types however. 10709 10710:: 10711 10712 declare float @llvm.rint.f32(float %Val) 10713 declare double @llvm.rint.f64(double %Val) 10714 declare x86_fp80 @llvm.rint.f80(x86_fp80 %Val) 10715 declare fp128 @llvm.rint.f128(fp128 %Val) 10716 declare ppc_fp128 @llvm.rint.ppcf128(ppc_fp128 %Val) 10717 10718Overview: 10719""""""""" 10720 10721The '``llvm.rint.*``' intrinsics returns the operand rounded to the 10722nearest integer. It may raise an inexact floating-point exception if the 10723operand isn't an integer. 10724 10725Arguments: 10726"""""""""" 10727 10728The argument and return value are floating point numbers of the same 10729type. 10730 10731Semantics: 10732"""""""""" 10733 10734This function returns the same values as the libm ``rint`` functions 10735would, and handles error conditions in the same way. 10736 10737'``llvm.nearbyint.*``' Intrinsic 10738^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 10739 10740Syntax: 10741""""""" 10742 10743This is an overloaded intrinsic. You can use ``llvm.nearbyint`` on any 10744floating point or vector of floating point type. Not all targets support 10745all types however. 10746 10747:: 10748 10749 declare float @llvm.nearbyint.f32(float %Val) 10750 declare double @llvm.nearbyint.f64(double %Val) 10751 declare x86_fp80 @llvm.nearbyint.f80(x86_fp80 %Val) 10752 declare fp128 @llvm.nearbyint.f128(fp128 %Val) 10753 declare ppc_fp128 @llvm.nearbyint.ppcf128(ppc_fp128 %Val) 10754 10755Overview: 10756""""""""" 10757 10758The '``llvm.nearbyint.*``' intrinsics returns the operand rounded to the 10759nearest integer. 10760 10761Arguments: 10762"""""""""" 10763 10764The argument and return value are floating point numbers of the same 10765type. 10766 10767Semantics: 10768"""""""""" 10769 10770This function returns the same values as the libm ``nearbyint`` 10771functions would, and handles error conditions in the same way. 10772 10773'``llvm.round.*``' Intrinsic 10774^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 10775 10776Syntax: 10777""""""" 10778 10779This is an overloaded intrinsic. You can use ``llvm.round`` on any 10780floating point or vector of floating point type. Not all targets support 10781all types however. 10782 10783:: 10784 10785 declare float @llvm.round.f32(float %Val) 10786 declare double @llvm.round.f64(double %Val) 10787 declare x86_fp80 @llvm.round.f80(x86_fp80 %Val) 10788 declare fp128 @llvm.round.f128(fp128 %Val) 10789 declare ppc_fp128 @llvm.round.ppcf128(ppc_fp128 %Val) 10790 10791Overview: 10792""""""""" 10793 10794The '``llvm.round.*``' intrinsics returns the operand rounded to the 10795nearest integer. 10796 10797Arguments: 10798"""""""""" 10799 10800The argument and return value are floating point numbers of the same 10801type. 10802 10803Semantics: 10804"""""""""" 10805 10806This function returns the same values as the libm ``round`` 10807functions would, and handles error conditions in the same way. 10808 10809Bit Manipulation Intrinsics 10810--------------------------- 10811 10812LLVM provides intrinsics for a few important bit manipulation 10813operations. These allow efficient code generation for some algorithms. 10814 10815'``llvm.bitreverse.*``' Intrinsics 10816^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 10817 10818Syntax: 10819""""""" 10820 10821This is an overloaded intrinsic function. You can use bitreverse on any 10822integer type. 10823 10824:: 10825 10826 declare i16 @llvm.bitreverse.i16(i16 <id>) 10827 declare i32 @llvm.bitreverse.i32(i32 <id>) 10828 declare i64 @llvm.bitreverse.i64(i64 <id>) 10829 10830Overview: 10831""""""""" 10832 10833The '``llvm.bitreverse``' family of intrinsics is used to reverse the 10834bitpattern of an integer value; for example ``0b10110110`` becomes 10835``0b01101101``. 10836 10837Semantics: 10838"""""""""" 10839 10840The ``llvm.bitreverse.iN`` intrinsic returns an iN value that has bit 10841``M`` in the input moved to bit ``N-M`` in the output. 10842 10843'``llvm.bswap.*``' Intrinsics 10844^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 10845 10846Syntax: 10847""""""" 10848 10849This is an overloaded intrinsic function. You can use bswap on any 10850integer type that is an even number of bytes (i.e. BitWidth % 16 == 0). 10851 10852:: 10853 10854 declare i16 @llvm.bswap.i16(i16 <id>) 10855 declare i32 @llvm.bswap.i32(i32 <id>) 10856 declare i64 @llvm.bswap.i64(i64 <id>) 10857 10858Overview: 10859""""""""" 10860 10861The '``llvm.bswap``' family of intrinsics is used to byte swap integer 10862values with an even number of bytes (positive multiple of 16 bits). 10863These are useful for performing operations on data that is not in the 10864target's native byte order. 10865 10866Semantics: 10867"""""""""" 10868 10869The ``llvm.bswap.i16`` intrinsic returns an i16 value that has the high 10870and low byte of the input i16 swapped. Similarly, the ``llvm.bswap.i32`` 10871intrinsic returns an i32 value that has the four bytes of the input i32 10872swapped, so that if the input bytes are numbered 0, 1, 2, 3 then the 10873returned i32 will have its bytes in 3, 2, 1, 0 order. The 10874``llvm.bswap.i48``, ``llvm.bswap.i64`` and other intrinsics extend this 10875concept to additional even-byte lengths (6 bytes, 8 bytes and more, 10876respectively). 10877 10878'``llvm.ctpop.*``' Intrinsic 10879^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 10880 10881Syntax: 10882""""""" 10883 10884This is an overloaded intrinsic. You can use llvm.ctpop on any integer 10885bit width, or on any vector with integer elements. Not all targets 10886support all bit widths or vector types, however. 10887 10888:: 10889 10890 declare i8 @llvm.ctpop.i8(i8 <src>) 10891 declare i16 @llvm.ctpop.i16(i16 <src>) 10892 declare i32 @llvm.ctpop.i32(i32 <src>) 10893 declare i64 @llvm.ctpop.i64(i64 <src>) 10894 declare i256 @llvm.ctpop.i256(i256 <src>) 10895 declare <2 x i32> @llvm.ctpop.v2i32(<2 x i32> <src>) 10896 10897Overview: 10898""""""""" 10899 10900The '``llvm.ctpop``' family of intrinsics counts the number of bits set 10901in a value. 10902 10903Arguments: 10904"""""""""" 10905 10906The only argument is the value to be counted. The argument may be of any 10907integer type, or a vector with integer elements. The return type must 10908match the argument type. 10909 10910Semantics: 10911"""""""""" 10912 10913The '``llvm.ctpop``' intrinsic counts the 1's in a variable, or within 10914each element of a vector. 10915 10916'``llvm.ctlz.*``' Intrinsic 10917^^^^^^^^^^^^^^^^^^^^^^^^^^^ 10918 10919Syntax: 10920""""""" 10921 10922This is an overloaded intrinsic. You can use ``llvm.ctlz`` on any 10923integer bit width, or any vector whose elements are integers. Not all 10924targets support all bit widths or vector types, however. 10925 10926:: 10927 10928 declare i8 @llvm.ctlz.i8 (i8 <src>, i1 <is_zero_undef>) 10929 declare i16 @llvm.ctlz.i16 (i16 <src>, i1 <is_zero_undef>) 10930 declare i32 @llvm.ctlz.i32 (i32 <src>, i1 <is_zero_undef>) 10931 declare i64 @llvm.ctlz.i64 (i64 <src>, i1 <is_zero_undef>) 10932 declare i256 @llvm.ctlz.i256(i256 <src>, i1 <is_zero_undef>) 10933 declare <2 x i32> @llvm.ctlz.v2i32(<2 x i32> <src>, i1 <is_zero_undef>) 10934 10935Overview: 10936""""""""" 10937 10938The '``llvm.ctlz``' family of intrinsic functions counts the number of 10939leading zeros in a variable. 10940 10941Arguments: 10942"""""""""" 10943 10944The first argument is the value to be counted. This argument may be of 10945any integer type, or a vector with integer element type. The return 10946type must match the first argument type. 10947 10948The second argument must be a constant and is a flag to indicate whether 10949the intrinsic should ensure that a zero as the first argument produces a 10950defined result. Historically some architectures did not provide a 10951defined result for zero values as efficiently, and many algorithms are 10952now predicated on avoiding zero-value inputs. 10953 10954Semantics: 10955"""""""""" 10956 10957The '``llvm.ctlz``' intrinsic counts the leading (most significant) 10958zeros in a variable, or within each element of the vector. If 10959``src == 0`` then the result is the size in bits of the type of ``src`` 10960if ``is_zero_undef == 0`` and ``undef`` otherwise. For example, 10961``llvm.ctlz(i32 2) = 30``. 10962 10963'``llvm.cttz.*``' Intrinsic 10964^^^^^^^^^^^^^^^^^^^^^^^^^^^ 10965 10966Syntax: 10967""""""" 10968 10969This is an overloaded intrinsic. You can use ``llvm.cttz`` on any 10970integer bit width, or any vector of integer elements. Not all targets 10971support all bit widths or vector types, however. 10972 10973:: 10974 10975 declare i8 @llvm.cttz.i8 (i8 <src>, i1 <is_zero_undef>) 10976 declare i16 @llvm.cttz.i16 (i16 <src>, i1 <is_zero_undef>) 10977 declare i32 @llvm.cttz.i32 (i32 <src>, i1 <is_zero_undef>) 10978 declare i64 @llvm.cttz.i64 (i64 <src>, i1 <is_zero_undef>) 10979 declare i256 @llvm.cttz.i256(i256 <src>, i1 <is_zero_undef>) 10980 declare <2 x i32> @llvm.cttz.v2i32(<2 x i32> <src>, i1 <is_zero_undef>) 10981 10982Overview: 10983""""""""" 10984 10985The '``llvm.cttz``' family of intrinsic functions counts the number of 10986trailing zeros. 10987 10988Arguments: 10989"""""""""" 10990 10991The first argument is the value to be counted. This argument may be of 10992any integer type, or a vector with integer element type. The return 10993type must match the first argument type. 10994 10995The second argument must be a constant and is a flag to indicate whether 10996the intrinsic should ensure that a zero as the first argument produces a 10997defined result. Historically some architectures did not provide a 10998defined result for zero values as efficiently, and many algorithms are 10999now predicated on avoiding zero-value inputs. 11000 11001Semantics: 11002"""""""""" 11003 11004The '``llvm.cttz``' intrinsic counts the trailing (least significant) 11005zeros in a variable, or within each element of a vector. If ``src == 0`` 11006then the result is the size in bits of the type of ``src`` if 11007``is_zero_undef == 0`` and ``undef`` otherwise. For example, 11008``llvm.cttz(2) = 1``. 11009 11010.. _int_overflow: 11011 11012Arithmetic with Overflow Intrinsics 11013----------------------------------- 11014 11015LLVM provides intrinsics for fast arithmetic overflow checking. 11016 11017Each of these intrinsics returns a two-element struct. The first 11018element of this struct contains the result of the corresponding 11019arithmetic operation modulo 2\ :sup:`n`\ , where n is the bit width of 11020the result. Therefore, for example, the first element of the struct 11021returned by ``llvm.sadd.with.overflow.i32`` is always the same as the 11022result of a 32-bit ``add`` instruction with the same operands, where 11023the ``add`` is *not* modified by an ``nsw`` or ``nuw`` flag. 11024 11025The second element of the result is an ``i1`` that is 1 if the 11026arithmetic operation overflowed and 0 otherwise. An operation 11027overflows if, for any values of its operands ``A`` and ``B`` and for 11028any ``N`` larger than the operands' width, ``ext(A op B) to iN`` is 11029not equal to ``(ext(A) to iN) op (ext(B) to iN)`` where ``ext`` is 11030``sext`` for signed overflow and ``zext`` for unsigned overflow, and 11031``op`` is the underlying arithmetic operation. 11032 11033The behavior of these intrinsics is well-defined for all argument 11034values. 11035 11036'``llvm.sadd.with.overflow.*``' Intrinsics 11037^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 11038 11039Syntax: 11040""""""" 11041 11042This is an overloaded intrinsic. You can use ``llvm.sadd.with.overflow`` 11043on any integer bit width. 11044 11045:: 11046 11047 declare {i16, i1} @llvm.sadd.with.overflow.i16(i16 %a, i16 %b) 11048 declare {i32, i1} @llvm.sadd.with.overflow.i32(i32 %a, i32 %b) 11049 declare {i64, i1} @llvm.sadd.with.overflow.i64(i64 %a, i64 %b) 11050 11051Overview: 11052""""""""" 11053 11054The '``llvm.sadd.with.overflow``' family of intrinsic functions perform 11055a signed addition of the two arguments, and indicate whether an overflow 11056occurred during the signed summation. 11057 11058Arguments: 11059"""""""""" 11060 11061The arguments (%a and %b) and the first element of the result structure 11062may be of integer types of any bit width, but they must have the same 11063bit width. The second element of the result structure must be of type 11064``i1``. ``%a`` and ``%b`` are the two values that will undergo signed 11065addition. 11066 11067Semantics: 11068"""""""""" 11069 11070The '``llvm.sadd.with.overflow``' family of intrinsic functions perform 11071a signed addition of the two variables. They return a structure --- the 11072first element of which is the signed summation, and the second element 11073of which is a bit specifying if the signed summation resulted in an 11074overflow. 11075 11076Examples: 11077""""""""" 11078 11079.. code-block:: llvm 11080 11081 %res = call {i32, i1} @llvm.sadd.with.overflow.i32(i32 %a, i32 %b) 11082 %sum = extractvalue {i32, i1} %res, 0 11083 %obit = extractvalue {i32, i1} %res, 1 11084 br i1 %obit, label %overflow, label %normal 11085 11086'``llvm.uadd.with.overflow.*``' Intrinsics 11087^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 11088 11089Syntax: 11090""""""" 11091 11092This is an overloaded intrinsic. You can use ``llvm.uadd.with.overflow`` 11093on any integer bit width. 11094 11095:: 11096 11097 declare {i16, i1} @llvm.uadd.with.overflow.i16(i16 %a, i16 %b) 11098 declare {i32, i1} @llvm.uadd.with.overflow.i32(i32 %a, i32 %b) 11099 declare {i64, i1} @llvm.uadd.with.overflow.i64(i64 %a, i64 %b) 11100 11101Overview: 11102""""""""" 11103 11104The '``llvm.uadd.with.overflow``' family of intrinsic functions perform 11105an unsigned addition of the two arguments, and indicate whether a carry 11106occurred during the unsigned summation. 11107 11108Arguments: 11109"""""""""" 11110 11111The arguments (%a and %b) and the first element of the result structure 11112may be of integer types of any bit width, but they must have the same 11113bit width. The second element of the result structure must be of type 11114``i1``. ``%a`` and ``%b`` are the two values that will undergo unsigned 11115addition. 11116 11117Semantics: 11118"""""""""" 11119 11120The '``llvm.uadd.with.overflow``' family of intrinsic functions perform 11121an unsigned addition of the two arguments. They return a structure --- the 11122first element of which is the sum, and the second element of which is a 11123bit specifying if the unsigned summation resulted in a carry. 11124 11125Examples: 11126""""""""" 11127 11128.. code-block:: llvm 11129 11130 %res = call {i32, i1} @llvm.uadd.with.overflow.i32(i32 %a, i32 %b) 11131 %sum = extractvalue {i32, i1} %res, 0 11132 %obit = extractvalue {i32, i1} %res, 1 11133 br i1 %obit, label %carry, label %normal 11134 11135'``llvm.ssub.with.overflow.*``' Intrinsics 11136^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 11137 11138Syntax: 11139""""""" 11140 11141This is an overloaded intrinsic. You can use ``llvm.ssub.with.overflow`` 11142on any integer bit width. 11143 11144:: 11145 11146 declare {i16, i1} @llvm.ssub.with.overflow.i16(i16 %a, i16 %b) 11147 declare {i32, i1} @llvm.ssub.with.overflow.i32(i32 %a, i32 %b) 11148 declare {i64, i1} @llvm.ssub.with.overflow.i64(i64 %a, i64 %b) 11149 11150Overview: 11151""""""""" 11152 11153The '``llvm.ssub.with.overflow``' family of intrinsic functions perform 11154a signed subtraction of the two arguments, and indicate whether an 11155overflow occurred during the signed subtraction. 11156 11157Arguments: 11158"""""""""" 11159 11160The arguments (%a and %b) and the first element of the result structure 11161may be of integer types of any bit width, but they must have the same 11162bit width. The second element of the result structure must be of type 11163``i1``. ``%a`` and ``%b`` are the two values that will undergo signed 11164subtraction. 11165 11166Semantics: 11167"""""""""" 11168 11169The '``llvm.ssub.with.overflow``' family of intrinsic functions perform 11170a signed subtraction of the two arguments. They return a structure --- the 11171first element of which is the subtraction, and the second element of 11172which is a bit specifying if the signed subtraction resulted in an 11173overflow. 11174 11175Examples: 11176""""""""" 11177 11178.. code-block:: llvm 11179 11180 %res = call {i32, i1} @llvm.ssub.with.overflow.i32(i32 %a, i32 %b) 11181 %sum = extractvalue {i32, i1} %res, 0 11182 %obit = extractvalue {i32, i1} %res, 1 11183 br i1 %obit, label %overflow, label %normal 11184 11185'``llvm.usub.with.overflow.*``' Intrinsics 11186^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 11187 11188Syntax: 11189""""""" 11190 11191This is an overloaded intrinsic. You can use ``llvm.usub.with.overflow`` 11192on any integer bit width. 11193 11194:: 11195 11196 declare {i16, i1} @llvm.usub.with.overflow.i16(i16 %a, i16 %b) 11197 declare {i32, i1} @llvm.usub.with.overflow.i32(i32 %a, i32 %b) 11198 declare {i64, i1} @llvm.usub.with.overflow.i64(i64 %a, i64 %b) 11199 11200Overview: 11201""""""""" 11202 11203The '``llvm.usub.with.overflow``' family of intrinsic functions perform 11204an unsigned subtraction of the two arguments, and indicate whether an 11205overflow occurred during the unsigned subtraction. 11206 11207Arguments: 11208"""""""""" 11209 11210The arguments (%a and %b) and the first element of the result structure 11211may be of integer types of any bit width, but they must have the same 11212bit width. The second element of the result structure must be of type 11213``i1``. ``%a`` and ``%b`` are the two values that will undergo unsigned 11214subtraction. 11215 11216Semantics: 11217"""""""""" 11218 11219The '``llvm.usub.with.overflow``' family of intrinsic functions perform 11220an unsigned subtraction of the two arguments. They return a structure --- 11221the first element of which is the subtraction, and the second element of 11222which is a bit specifying if the unsigned subtraction resulted in an 11223overflow. 11224 11225Examples: 11226""""""""" 11227 11228.. code-block:: llvm 11229 11230 %res = call {i32, i1} @llvm.usub.with.overflow.i32(i32 %a, i32 %b) 11231 %sum = extractvalue {i32, i1} %res, 0 11232 %obit = extractvalue {i32, i1} %res, 1 11233 br i1 %obit, label %overflow, label %normal 11234 11235'``llvm.smul.with.overflow.*``' Intrinsics 11236^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 11237 11238Syntax: 11239""""""" 11240 11241This is an overloaded intrinsic. You can use ``llvm.smul.with.overflow`` 11242on any integer bit width. 11243 11244:: 11245 11246 declare {i16, i1} @llvm.smul.with.overflow.i16(i16 %a, i16 %b) 11247 declare {i32, i1} @llvm.smul.with.overflow.i32(i32 %a, i32 %b) 11248 declare {i64, i1} @llvm.smul.with.overflow.i64(i64 %a, i64 %b) 11249 11250Overview: 11251""""""""" 11252 11253The '``llvm.smul.with.overflow``' family of intrinsic functions perform 11254a signed multiplication of the two arguments, and indicate whether an 11255overflow occurred during the signed multiplication. 11256 11257Arguments: 11258"""""""""" 11259 11260The arguments (%a and %b) and the first element of the result structure 11261may be of integer types of any bit width, but they must have the same 11262bit width. The second element of the result structure must be of type 11263``i1``. ``%a`` and ``%b`` are the two values that will undergo signed 11264multiplication. 11265 11266Semantics: 11267"""""""""" 11268 11269The '``llvm.smul.with.overflow``' family of intrinsic functions perform 11270a signed multiplication of the two arguments. They return a structure --- 11271the first element of which is the multiplication, and the second element 11272of which is a bit specifying if the signed multiplication resulted in an 11273overflow. 11274 11275Examples: 11276""""""""" 11277 11278.. code-block:: llvm 11279 11280 %res = call {i32, i1} @llvm.smul.with.overflow.i32(i32 %a, i32 %b) 11281 %sum = extractvalue {i32, i1} %res, 0 11282 %obit = extractvalue {i32, i1} %res, 1 11283 br i1 %obit, label %overflow, label %normal 11284 11285'``llvm.umul.with.overflow.*``' Intrinsics 11286^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 11287 11288Syntax: 11289""""""" 11290 11291This is an overloaded intrinsic. You can use ``llvm.umul.with.overflow`` 11292on any integer bit width. 11293 11294:: 11295 11296 declare {i16, i1} @llvm.umul.with.overflow.i16(i16 %a, i16 %b) 11297 declare {i32, i1} @llvm.umul.with.overflow.i32(i32 %a, i32 %b) 11298 declare {i64, i1} @llvm.umul.with.overflow.i64(i64 %a, i64 %b) 11299 11300Overview: 11301""""""""" 11302 11303The '``llvm.umul.with.overflow``' family of intrinsic functions perform 11304a unsigned multiplication of the two arguments, and indicate whether an 11305overflow occurred during the unsigned multiplication. 11306 11307Arguments: 11308"""""""""" 11309 11310The arguments (%a and %b) and the first element of the result structure 11311may be of integer types of any bit width, but they must have the same 11312bit width. The second element of the result structure must be of type 11313``i1``. ``%a`` and ``%b`` are the two values that will undergo unsigned 11314multiplication. 11315 11316Semantics: 11317"""""""""" 11318 11319The '``llvm.umul.with.overflow``' family of intrinsic functions perform 11320an unsigned multiplication of the two arguments. They return a structure --- 11321the first element of which is the multiplication, and the second 11322element of which is a bit specifying if the unsigned multiplication 11323resulted in an overflow. 11324 11325Examples: 11326""""""""" 11327 11328.. code-block:: llvm 11329 11330 %res = call {i32, i1} @llvm.umul.with.overflow.i32(i32 %a, i32 %b) 11331 %sum = extractvalue {i32, i1} %res, 0 11332 %obit = extractvalue {i32, i1} %res, 1 11333 br i1 %obit, label %overflow, label %normal 11334 11335Specialised Arithmetic Intrinsics 11336--------------------------------- 11337 11338'``llvm.canonicalize.*``' Intrinsic 11339^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 11340 11341Syntax: 11342""""""" 11343 11344:: 11345 11346 declare float @llvm.canonicalize.f32(float %a) 11347 declare double @llvm.canonicalize.f64(double %b) 11348 11349Overview: 11350""""""""" 11351 11352The '``llvm.canonicalize.*``' intrinsic returns the platform specific canonical 11353encoding of a floating point number. This canonicalization is useful for 11354implementing certain numeric primitives such as frexp. The canonical encoding is 11355defined by IEEE-754-2008 to be: 11356 11357:: 11358 11359 2.1.8 canonical encoding: The preferred encoding of a floating-point 11360 representation in a format. Applied to declets, significands of finite 11361 numbers, infinities, and NaNs, especially in decimal formats. 11362 11363This operation can also be considered equivalent to the IEEE-754-2008 11364conversion of a floating-point value to the same format. NaNs are handled 11365according to section 6.2. 11366 11367Examples of non-canonical encodings: 11368 11369- x87 pseudo denormals, pseudo NaNs, pseudo Infinity, Unnormals. These are 11370 converted to a canonical representation per hardware-specific protocol. 11371- Many normal decimal floating point numbers have non-canonical alternative 11372 encodings. 11373- Some machines, like GPUs or ARMv7 NEON, do not support subnormal values. 11374 These are treated as non-canonical encodings of zero and will be flushed to 11375 a zero of the same sign by this operation. 11376 11377Note that per IEEE-754-2008 6.2, systems that support signaling NaNs with 11378default exception handling must signal an invalid exception, and produce a 11379quiet NaN result. 11380 11381This function should always be implementable as multiplication by 1.0, provided 11382that the compiler does not constant fold the operation. Likewise, division by 113831.0 and ``llvm.minnum(x, x)`` are possible implementations. Addition with 11384-0.0 is also sufficient provided that the rounding mode is not -Infinity. 11385 11386``@llvm.canonicalize`` must preserve the equality relation. That is: 11387 11388- ``(@llvm.canonicalize(x) == x)`` is equivalent to ``(x == x)`` 11389- ``(@llvm.canonicalize(x) == @llvm.canonicalize(y))`` is equivalent to 11390 to ``(x == y)`` 11391 11392Additionally, the sign of zero must be conserved: 11393``@llvm.canonicalize(-0.0) = -0.0`` and ``@llvm.canonicalize(+0.0) = +0.0`` 11394 11395The payload bits of a NaN must be conserved, with two exceptions. 11396First, environments which use only a single canonical representation of NaN 11397must perform said canonicalization. Second, SNaNs must be quieted per the 11398usual methods. 11399 11400The canonicalization operation may be optimized away if: 11401 11402- The input is known to be canonical. For example, it was produced by a 11403 floating-point operation that is required by the standard to be canonical. 11404- The result is consumed only by (or fused with) other floating-point 11405 operations. That is, the bits of the floating point value are not examined. 11406 11407'``llvm.fmuladd.*``' Intrinsic 11408^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 11409 11410Syntax: 11411""""""" 11412 11413:: 11414 11415 declare float @llvm.fmuladd.f32(float %a, float %b, float %c) 11416 declare double @llvm.fmuladd.f64(double %a, double %b, double %c) 11417 11418Overview: 11419""""""""" 11420 11421The '``llvm.fmuladd.*``' intrinsic functions represent multiply-add 11422expressions that can be fused if the code generator determines that (a) the 11423target instruction set has support for a fused operation, and (b) that the 11424fused operation is more efficient than the equivalent, separate pair of mul 11425and add instructions. 11426 11427Arguments: 11428"""""""""" 11429 11430The '``llvm.fmuladd.*``' intrinsics each take three arguments: two 11431multiplicands, a and b, and an addend c. 11432 11433Semantics: 11434"""""""""" 11435 11436The expression: 11437 11438:: 11439 11440 %0 = call float @llvm.fmuladd.f32(%a, %b, %c) 11441 11442is equivalent to the expression a \* b + c, except that rounding will 11443not be performed between the multiplication and addition steps if the 11444code generator fuses the operations. Fusion is not guaranteed, even if 11445the target platform supports it. If a fused multiply-add is required the 11446corresponding llvm.fma.\* intrinsic function should be used 11447instead. This never sets errno, just as '``llvm.fma.*``'. 11448 11449Examples: 11450""""""""" 11451 11452.. code-block:: llvm 11453 11454 %r2 = call float @llvm.fmuladd.f32(float %a, float %b, float %c) ; yields float:r2 = (a * b) + c 11455 11456Half Precision Floating Point Intrinsics 11457---------------------------------------- 11458 11459For most target platforms, half precision floating point is a 11460storage-only format. This means that it is a dense encoding (in memory) 11461but does not support computation in the format. 11462 11463This means that code must first load the half-precision floating point 11464value as an i16, then convert it to float with 11465:ref:`llvm.convert.from.fp16 <int_convert_from_fp16>`. Computation can 11466then be performed on the float value (including extending to double 11467etc). To store the value back to memory, it is first converted to float 11468if needed, then converted to i16 with 11469:ref:`llvm.convert.to.fp16 <int_convert_to_fp16>`, then storing as an 11470i16 value. 11471 11472.. _int_convert_to_fp16: 11473 11474'``llvm.convert.to.fp16``' Intrinsic 11475^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 11476 11477Syntax: 11478""""""" 11479 11480:: 11481 11482 declare i16 @llvm.convert.to.fp16.f32(float %a) 11483 declare i16 @llvm.convert.to.fp16.f64(double %a) 11484 11485Overview: 11486""""""""" 11487 11488The '``llvm.convert.to.fp16``' intrinsic function performs a conversion from a 11489conventional floating point type to half precision floating point format. 11490 11491Arguments: 11492"""""""""" 11493 11494The intrinsic function contains single argument - the value to be 11495converted. 11496 11497Semantics: 11498"""""""""" 11499 11500The '``llvm.convert.to.fp16``' intrinsic function performs a conversion from a 11501conventional floating point format to half precision floating point format. The 11502return value is an ``i16`` which contains the converted number. 11503 11504Examples: 11505""""""""" 11506 11507.. code-block:: llvm 11508 11509 %res = call i16 @llvm.convert.to.fp16.f32(float %a) 11510 store i16 %res, i16* @x, align 2 11511 11512.. _int_convert_from_fp16: 11513 11514'``llvm.convert.from.fp16``' Intrinsic 11515^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 11516 11517Syntax: 11518""""""" 11519 11520:: 11521 11522 declare float @llvm.convert.from.fp16.f32(i16 %a) 11523 declare double @llvm.convert.from.fp16.f64(i16 %a) 11524 11525Overview: 11526""""""""" 11527 11528The '``llvm.convert.from.fp16``' intrinsic function performs a 11529conversion from half precision floating point format to single precision 11530floating point format. 11531 11532Arguments: 11533"""""""""" 11534 11535The intrinsic function contains single argument - the value to be 11536converted. 11537 11538Semantics: 11539"""""""""" 11540 11541The '``llvm.convert.from.fp16``' intrinsic function performs a 11542conversion from half single precision floating point format to single 11543precision floating point format. The input half-float value is 11544represented by an ``i16`` value. 11545 11546Examples: 11547""""""""" 11548 11549.. code-block:: llvm 11550 11551 %a = load i16, i16* @x, align 2 11552 %res = call float @llvm.convert.from.fp16(i16 %a) 11553 11554.. _dbg_intrinsics: 11555 11556Debugger Intrinsics 11557------------------- 11558 11559The LLVM debugger intrinsics (which all start with ``llvm.dbg.`` 11560prefix), are described in the `LLVM Source Level 11561Debugging <SourceLevelDebugging.html#format_common_intrinsics>`_ 11562document. 11563 11564Exception Handling Intrinsics 11565----------------------------- 11566 11567The LLVM exception handling intrinsics (which all start with 11568``llvm.eh.`` prefix), are described in the `LLVM Exception 11569Handling <ExceptionHandling.html#format_common_intrinsics>`_ document. 11570 11571.. _int_trampoline: 11572 11573Trampoline Intrinsics 11574--------------------- 11575 11576These intrinsics make it possible to excise one parameter, marked with 11577the :ref:`nest <nest>` attribute, from a function. The result is a 11578callable function pointer lacking the nest parameter - the caller does 11579not need to provide a value for it. Instead, the value to use is stored 11580in advance in a "trampoline", a block of memory usually allocated on the 11581stack, which also contains code to splice the nest value into the 11582argument list. This is used to implement the GCC nested function address 11583extension. 11584 11585For example, if the function is ``i32 f(i8* nest %c, i32 %x, i32 %y)`` 11586then the resulting function pointer has signature ``i32 (i32, i32)*``. 11587It can be created as follows: 11588 11589.. code-block:: llvm 11590 11591 %tramp = alloca [10 x i8], align 4 ; size and alignment only correct for X86 11592 %tramp1 = getelementptr [10 x i8], [10 x i8]* %tramp, i32 0, i32 0 11593 call i8* @llvm.init.trampoline(i8* %tramp1, i8* bitcast (i32 (i8*, i32, i32)* @f to i8*), i8* %nval) 11594 %p = call i8* @llvm.adjust.trampoline(i8* %tramp1) 11595 %fp = bitcast i8* %p to i32 (i32, i32)* 11596 11597The call ``%val = call i32 %fp(i32 %x, i32 %y)`` is then equivalent to 11598``%val = call i32 %f(i8* %nval, i32 %x, i32 %y)``. 11599 11600.. _int_it: 11601 11602'``llvm.init.trampoline``' Intrinsic 11603^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 11604 11605Syntax: 11606""""""" 11607 11608:: 11609 11610 declare void @llvm.init.trampoline(i8* <tramp>, i8* <func>, i8* <nval>) 11611 11612Overview: 11613""""""""" 11614 11615This fills the memory pointed to by ``tramp`` with executable code, 11616turning it into a trampoline. 11617 11618Arguments: 11619"""""""""" 11620 11621The ``llvm.init.trampoline`` intrinsic takes three arguments, all 11622pointers. The ``tramp`` argument must point to a sufficiently large and 11623sufficiently aligned block of memory; this memory is written to by the 11624intrinsic. Note that the size and the alignment are target-specific - 11625LLVM currently provides no portable way of determining them, so a 11626front-end that generates this intrinsic needs to have some 11627target-specific knowledge. The ``func`` argument must hold a function 11628bitcast to an ``i8*``. 11629 11630Semantics: 11631"""""""""" 11632 11633The block of memory pointed to by ``tramp`` is filled with target 11634dependent code, turning it into a function. Then ``tramp`` needs to be 11635passed to :ref:`llvm.adjust.trampoline <int_at>` to get a pointer which can 11636be :ref:`bitcast (to a new function) and called <int_trampoline>`. The new 11637function's signature is the same as that of ``func`` with any arguments 11638marked with the ``nest`` attribute removed. At most one such ``nest`` 11639argument is allowed, and it must be of pointer type. Calling the new 11640function is equivalent to calling ``func`` with the same argument list, 11641but with ``nval`` used for the missing ``nest`` argument. If, after 11642calling ``llvm.init.trampoline``, the memory pointed to by ``tramp`` is 11643modified, then the effect of any later call to the returned function 11644pointer is undefined. 11645 11646.. _int_at: 11647 11648'``llvm.adjust.trampoline``' Intrinsic 11649^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 11650 11651Syntax: 11652""""""" 11653 11654:: 11655 11656 declare i8* @llvm.adjust.trampoline(i8* <tramp>) 11657 11658Overview: 11659""""""""" 11660 11661This performs any required machine-specific adjustment to the address of 11662a trampoline (passed as ``tramp``). 11663 11664Arguments: 11665"""""""""" 11666 11667``tramp`` must point to a block of memory which already has trampoline 11668code filled in by a previous call to 11669:ref:`llvm.init.trampoline <int_it>`. 11670 11671Semantics: 11672"""""""""" 11673 11674On some architectures the address of the code to be executed needs to be 11675different than the address where the trampoline is actually stored. This 11676intrinsic returns the executable address corresponding to ``tramp`` 11677after performing the required machine specific adjustments. The pointer 11678returned can then be :ref:`bitcast and executed <int_trampoline>`. 11679 11680.. _int_mload_mstore: 11681 11682Masked Vector Load and Store Intrinsics 11683--------------------------------------- 11684 11685LLVM provides intrinsics for predicated vector load and store operations. The predicate is specified by a mask operand, which holds one bit per vector element, switching the associated vector lane on or off. The memory addresses corresponding to the "off" lanes are not accessed. When all bits of the mask are on, the intrinsic is identical to a regular vector load or store. When all bits are off, no memory is accessed. 11686 11687.. _int_mload: 11688 11689'``llvm.masked.load.*``' Intrinsics 11690^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 11691 11692Syntax: 11693""""""" 11694This is an overloaded intrinsic. The loaded data is a vector of any integer, floating point or pointer data type. 11695 11696:: 11697 11698 declare <16 x float> @llvm.masked.load.v16f32.p0v16f32 (<16 x float>* <ptr>, i32 <alignment>, <16 x i1> <mask>, <16 x float> <passthru>) 11699 declare <2 x double> @llvm.masked.load.v2f64.p0v2f64 (<2 x double>* <ptr>, i32 <alignment>, <2 x i1> <mask>, <2 x double> <passthru>) 11700 ;; The data is a vector of pointers to double 11701 declare <8 x double*> @llvm.masked.load.v8p0f64.p0v8p0f64 (<8 x double*>* <ptr>, i32 <alignment>, <8 x i1> <mask>, <8 x double*> <passthru>) 11702 ;; The data is a vector of function pointers 11703 declare <8 x i32 ()*> @llvm.masked.load.v8p0f_i32f.p0v8p0f_i32f (<8 x i32 ()*>* <ptr>, i32 <alignment>, <8 x i1> <mask>, <8 x i32 ()*> <passthru>) 11704 11705Overview: 11706""""""""" 11707 11708Reads a vector from memory according to the provided mask. The mask holds a bit for each vector lane, and is used to prevent memory accesses to the masked-off lanes. The masked-off lanes in the result vector are taken from the corresponding lanes of the '``passthru``' operand. 11709 11710 11711Arguments: 11712"""""""""" 11713 11714The first operand is the base pointer for the load. The second operand is the alignment of the source location. It must be a constant integer value. The third operand, mask, is a vector of boolean values with the same number of elements as the return type. The fourth is a pass-through value that is used to fill the masked-off lanes of the result. The return type, underlying type of the base pointer and the type of the '``passthru``' operand are the same vector types. 11715 11716 11717Semantics: 11718"""""""""" 11719 11720The '``llvm.masked.load``' intrinsic is designed for conditional reading of selected vector elements in a single IR operation. It is useful for targets that support vector masked loads and allows vectorizing predicated basic blocks on these targets. Other targets may support this intrinsic differently, for example by lowering it into a sequence of branches that guard scalar load operations. 11721The result of this operation is equivalent to a regular vector load instruction followed by a 'select' between the loaded and the passthru values, predicated on the same mask. However, using this intrinsic prevents exceptions on memory access to masked-off lanes. 11722 11723 11724:: 11725 11726 %res = call <16 x float> @llvm.masked.load.v16f32.p0v16f32 (<16 x float>* %ptr, i32 4, <16 x i1>%mask, <16 x float> %passthru) 11727 11728 ;; The result of the two following instructions is identical aside from potential memory access exception 11729 %loadlal = load <16 x float>, <16 x float>* %ptr, align 4 11730 %res = select <16 x i1> %mask, <16 x float> %loadlal, <16 x float> %passthru 11731 11732.. _int_mstore: 11733 11734'``llvm.masked.store.*``' Intrinsics 11735^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 11736 11737Syntax: 11738""""""" 11739This is an overloaded intrinsic. The data stored in memory is a vector of any integer, floating point or pointer data type. 11740 11741:: 11742 11743 declare void @llvm.masked.store.v8i32.p0v8i32 (<8 x i32> <value>, <8 x i32>* <ptr>, i32 <alignment>, <8 x i1> <mask>) 11744 declare void @llvm.masked.store.v16f32.p0v16f32 (<16 x float> <value>, <16 x float>* <ptr>, i32 <alignment>, <16 x i1> <mask>) 11745 ;; The data is a vector of pointers to double 11746 declare void @llvm.masked.store.v8p0f64.p0v8p0f64 (<8 x double*> <value>, <8 x double*>* <ptr>, i32 <alignment>, <8 x i1> <mask>) 11747 ;; The data is a vector of function pointers 11748 declare void @llvm.masked.store.v4p0f_i32f.p0v4p0f_i32f (<4 x i32 ()*> <value>, <4 x i32 ()*>* <ptr>, i32 <alignment>, <4 x i1> <mask>) 11749 11750Overview: 11751""""""""" 11752 11753Writes a vector to memory according to the provided mask. The mask holds a bit for each vector lane, and is used to prevent memory accesses to the masked-off lanes. 11754 11755Arguments: 11756"""""""""" 11757 11758The first operand is the vector value to be written to memory. The second operand is the base pointer for the store, it has the same underlying type as the value operand. The third operand is the alignment of the destination location. The fourth operand, mask, is a vector of boolean values. The types of the mask and the value operand must have the same number of vector elements. 11759 11760 11761Semantics: 11762"""""""""" 11763 11764The '``llvm.masked.store``' intrinsics is designed for conditional writing of selected vector elements in a single IR operation. It is useful for targets that support vector masked store and allows vectorizing predicated basic blocks on these targets. Other targets may support this intrinsic differently, for example by lowering it into a sequence of branches that guard scalar store operations. 11765The result of this operation is equivalent to a load-modify-store sequence. However, using this intrinsic prevents exceptions and data races on memory access to masked-off lanes. 11766 11767:: 11768 11769 call void @llvm.masked.store.v16f32.p0v16f32(<16 x float> %value, <16 x float>* %ptr, i32 4, <16 x i1> %mask) 11770 11771 ;; The result of the following instructions is identical aside from potential data races and memory access exceptions 11772 %oldval = load <16 x float>, <16 x float>* %ptr, align 4 11773 %res = select <16 x i1> %mask, <16 x float> %value, <16 x float> %oldval 11774 store <16 x float> %res, <16 x float>* %ptr, align 4 11775 11776 11777Masked Vector Gather and Scatter Intrinsics 11778------------------------------------------- 11779 11780LLVM provides intrinsics for vector gather and scatter operations. They are similar to :ref:`Masked Vector Load and Store <int_mload_mstore>`, except they are designed for arbitrary memory accesses, rather than sequential memory accesses. Gather and scatter also employ a mask operand, which holds one bit per vector element, switching the associated vector lane on or off. The memory addresses corresponding to the "off" lanes are not accessed. When all bits are off, no memory is accessed. 11781 11782.. _int_mgather: 11783 11784'``llvm.masked.gather.*``' Intrinsics 11785^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 11786 11787Syntax: 11788""""""" 11789This is an overloaded intrinsic. The loaded data are multiple scalar values of any integer, floating point or pointer data type gathered together into one vector. 11790 11791:: 11792 11793 declare <16 x float> @llvm.masked.gather.v16f32 (<16 x float*> <ptrs>, i32 <alignment>, <16 x i1> <mask>, <16 x float> <passthru>) 11794 declare <2 x double> @llvm.masked.gather.v2f64 (<2 x double*> <ptrs>, i32 <alignment>, <2 x i1> <mask>, <2 x double> <passthru>) 11795 declare <8 x float*> @llvm.masked.gather.v8p0f32 (<8 x float**> <ptrs>, i32 <alignment>, <8 x i1> <mask>, <8 x float*> <passthru>) 11796 11797Overview: 11798""""""""" 11799 11800Reads scalar values from arbitrary memory locations and gathers them into one vector. The memory locations are provided in the vector of pointers '``ptrs``'. The memory is accessed according to the provided mask. The mask holds a bit for each vector lane, and is used to prevent memory accesses to the masked-off lanes. The masked-off lanes in the result vector are taken from the corresponding lanes of the '``passthru``' operand. 11801 11802 11803Arguments: 11804"""""""""" 11805 11806The first operand is a vector of pointers which holds all memory addresses to read. The second operand is an alignment of the source addresses. It must be a constant integer value. The third operand, mask, is a vector of boolean values with the same number of elements as the return type. The fourth is a pass-through value that is used to fill the masked-off lanes of the result. The return type, underlying type of the vector of pointers and the type of the '``passthru``' operand are the same vector types. 11807 11808 11809Semantics: 11810"""""""""" 11811 11812The '``llvm.masked.gather``' intrinsic is designed for conditional reading of multiple scalar values from arbitrary memory locations in a single IR operation. It is useful for targets that support vector masked gathers and allows vectorizing basic blocks with data and control divergence. Other targets may support this intrinsic differently, for example by lowering it into a sequence of scalar load operations. 11813The semantics of this operation are equivalent to a sequence of conditional scalar loads with subsequent gathering all loaded values into a single vector. The mask restricts memory access to certain lanes and facilitates vectorization of predicated basic blocks. 11814 11815 11816:: 11817 11818 %res = call <4 x double> @llvm.masked.gather.v4f64 (<4 x double*> %ptrs, i32 8, <4 x i1>%mask, <4 x double> <true, true, true, true>) 11819 11820 ;; The gather with all-true mask is equivalent to the following instruction sequence 11821 %ptr0 = extractelement <4 x double*> %ptrs, i32 0 11822 %ptr1 = extractelement <4 x double*> %ptrs, i32 1 11823 %ptr2 = extractelement <4 x double*> %ptrs, i32 2 11824 %ptr3 = extractelement <4 x double*> %ptrs, i32 3 11825 11826 %val0 = load double, double* %ptr0, align 8 11827 %val1 = load double, double* %ptr1, align 8 11828 %val2 = load double, double* %ptr2, align 8 11829 %val3 = load double, double* %ptr3, align 8 11830 11831 %vec0 = insertelement <4 x double>undef, %val0, 0 11832 %vec01 = insertelement <4 x double>%vec0, %val1, 1 11833 %vec012 = insertelement <4 x double>%vec01, %val2, 2 11834 %vec0123 = insertelement <4 x double>%vec012, %val3, 3 11835 11836.. _int_mscatter: 11837 11838'``llvm.masked.scatter.*``' Intrinsics 11839^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 11840 11841Syntax: 11842""""""" 11843This is an overloaded intrinsic. The data stored in memory is a vector of any integer, floating point or pointer data type. Each vector element is stored in an arbitrary memory address. Scatter with overlapping addresses is guaranteed to be ordered from least-significant to most-significant element. 11844 11845:: 11846 11847 declare void @llvm.masked.scatter.v8i32 (<8 x i32> <value>, <8 x i32*> <ptrs>, i32 <alignment>, <8 x i1> <mask>) 11848 declare void @llvm.masked.scatter.v16f32 (<16 x float> <value>, <16 x float*> <ptrs>, i32 <alignment>, <16 x i1> <mask>) 11849 declare void @llvm.masked.scatter.v4p0f64 (<4 x double*> <value>, <4 x double**> <ptrs>, i32 <alignment>, <4 x i1> <mask>) 11850 11851Overview: 11852""""""""" 11853 11854Writes each element from the value vector to the corresponding memory address. The memory addresses are represented as a vector of pointers. Writing is done according to the provided mask. The mask holds a bit for each vector lane, and is used to prevent memory accesses to the masked-off lanes. 11855 11856Arguments: 11857"""""""""" 11858 11859The first operand is a vector value to be written to memory. The second operand is a vector of pointers, pointing to where the value elements should be stored. It has the same underlying type as the value operand. The third operand is an alignment of the destination addresses. The fourth operand, mask, is a vector of boolean values. The types of the mask and the value operand must have the same number of vector elements. 11860 11861 11862Semantics: 11863"""""""""" 11864 11865The '``llvm.masked.scatter``' intrinsics is designed for writing selected vector elements to arbitrary memory addresses in a single IR operation. The operation may be conditional, when not all bits in the mask are switched on. It is useful for targets that support vector masked scatter and allows vectorizing basic blocks with data and control divergence. Other targets may support this intrinsic differently, for example by lowering it into a sequence of branches that guard scalar store operations. 11866 11867:: 11868 11869 ;; This instruction unconditionally stores data vector in multiple addresses 11870 call @llvm.masked.scatter.v8i32 (<8 x i32> %value, <8 x i32*> %ptrs, i32 4, <8 x i1> <true, true, .. true>) 11871 11872 ;; It is equivalent to a list of scalar stores 11873 %val0 = extractelement <8 x i32> %value, i32 0 11874 %val1 = extractelement <8 x i32> %value, i32 1 11875 .. 11876 %val7 = extractelement <8 x i32> %value, i32 7 11877 %ptr0 = extractelement <8 x i32*> %ptrs, i32 0 11878 %ptr1 = extractelement <8 x i32*> %ptrs, i32 1 11879 .. 11880 %ptr7 = extractelement <8 x i32*> %ptrs, i32 7 11881 ;; Note: the order of the following stores is important when they overlap: 11882 store i32 %val0, i32* %ptr0, align 4 11883 store i32 %val1, i32* %ptr1, align 4 11884 .. 11885 store i32 %val7, i32* %ptr7, align 4 11886 11887 11888Memory Use Markers 11889------------------ 11890 11891This class of intrinsics provides information about the lifetime of 11892memory objects and ranges where variables are immutable. 11893 11894.. _int_lifestart: 11895 11896'``llvm.lifetime.start``' Intrinsic 11897^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 11898 11899Syntax: 11900""""""" 11901 11902:: 11903 11904 declare void @llvm.lifetime.start(i64 <size>, i8* nocapture <ptr>) 11905 11906Overview: 11907""""""""" 11908 11909The '``llvm.lifetime.start``' intrinsic specifies the start of a memory 11910object's lifetime. 11911 11912Arguments: 11913"""""""""" 11914 11915The first argument is a constant integer representing the size of the 11916object, or -1 if it is variable sized. The second argument is a pointer 11917to the object. 11918 11919Semantics: 11920"""""""""" 11921 11922This intrinsic indicates that before this point in the code, the value 11923of the memory pointed to by ``ptr`` is dead. This means that it is known 11924to never be used and has an undefined value. A load from the pointer 11925that precedes this intrinsic can be replaced with ``'undef'``. 11926 11927.. _int_lifeend: 11928 11929'``llvm.lifetime.end``' Intrinsic 11930^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 11931 11932Syntax: 11933""""""" 11934 11935:: 11936 11937 declare void @llvm.lifetime.end(i64 <size>, i8* nocapture <ptr>) 11938 11939Overview: 11940""""""""" 11941 11942The '``llvm.lifetime.end``' intrinsic specifies the end of a memory 11943object's lifetime. 11944 11945Arguments: 11946"""""""""" 11947 11948The first argument is a constant integer representing the size of the 11949object, or -1 if it is variable sized. The second argument is a pointer 11950to the object. 11951 11952Semantics: 11953"""""""""" 11954 11955This intrinsic indicates that after this point in the code, the value of 11956the memory pointed to by ``ptr`` is dead. This means that it is known to 11957never be used and has an undefined value. Any stores into the memory 11958object following this intrinsic may be removed as dead. 11959 11960'``llvm.invariant.start``' Intrinsic 11961^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 11962 11963Syntax: 11964""""""" 11965This is an overloaded intrinsic. The memory object can belong to any address space. 11966 11967:: 11968 11969 declare {}* @llvm.invariant.start.p0i8(i64 <size>, i8* nocapture <ptr>) 11970 11971Overview: 11972""""""""" 11973 11974The '``llvm.invariant.start``' intrinsic specifies that the contents of 11975a memory object will not change. 11976 11977Arguments: 11978"""""""""" 11979 11980The first argument is a constant integer representing the size of the 11981object, or -1 if it is variable sized. The second argument is a pointer 11982to the object. 11983 11984Semantics: 11985"""""""""" 11986 11987This intrinsic indicates that until an ``llvm.invariant.end`` that uses 11988the return value, the referenced memory location is constant and 11989unchanging. 11990 11991'``llvm.invariant.end``' Intrinsic 11992^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 11993 11994Syntax: 11995""""""" 11996This is an overloaded intrinsic. The memory object can belong to any address space. 11997 11998:: 11999 12000 declare void @llvm.invariant.end.p0i8({}* <start>, i64 <size>, i8* nocapture <ptr>) 12001 12002Overview: 12003""""""""" 12004 12005The '``llvm.invariant.end``' intrinsic specifies that the contents of a 12006memory object are mutable. 12007 12008Arguments: 12009"""""""""" 12010 12011The first argument is the matching ``llvm.invariant.start`` intrinsic. 12012The second argument is a constant integer representing the size of the 12013object, or -1 if it is variable sized and the third argument is a 12014pointer to the object. 12015 12016Semantics: 12017"""""""""" 12018 12019This intrinsic indicates that the memory is mutable again. 12020 12021'``llvm.invariant.group.barrier``' Intrinsic 12022^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 12023 12024Syntax: 12025""""""" 12026 12027:: 12028 12029 declare i8* @llvm.invariant.group.barrier(i8* <ptr>) 12030 12031Overview: 12032""""""""" 12033 12034The '``llvm.invariant.group.barrier``' intrinsic can be used when an invariant 12035established by invariant.group metadata no longer holds, to obtain a new pointer 12036value that does not carry the invariant information. 12037 12038 12039Arguments: 12040"""""""""" 12041 12042The ``llvm.invariant.group.barrier`` takes only one argument, which is 12043the pointer to the memory for which the ``invariant.group`` no longer holds. 12044 12045Semantics: 12046"""""""""" 12047 12048Returns another pointer that aliases its argument but which is considered different 12049for the purposes of ``load``/``store`` ``invariant.group`` metadata. 12050 12051General Intrinsics 12052------------------ 12053 12054This class of intrinsics is designed to be generic and has no specific 12055purpose. 12056 12057'``llvm.var.annotation``' Intrinsic 12058^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 12059 12060Syntax: 12061""""""" 12062 12063:: 12064 12065 declare void @llvm.var.annotation(i8* <val>, i8* <str>, i8* <str>, i32 <int>) 12066 12067Overview: 12068""""""""" 12069 12070The '``llvm.var.annotation``' intrinsic. 12071 12072Arguments: 12073"""""""""" 12074 12075The first argument is a pointer to a value, the second is a pointer to a 12076global string, the third is a pointer to a global string which is the 12077source file name, and the last argument is the line number. 12078 12079Semantics: 12080"""""""""" 12081 12082This intrinsic allows annotation of local variables with arbitrary 12083strings. This can be useful for special purpose optimizations that want 12084to look for these annotations. These have no other defined use; they are 12085ignored by code generation and optimization. 12086 12087'``llvm.ptr.annotation.*``' Intrinsic 12088^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 12089 12090Syntax: 12091""""""" 12092 12093This is an overloaded intrinsic. You can use '``llvm.ptr.annotation``' on a 12094pointer to an integer of any width. *NOTE* you must specify an address space for 12095the pointer. The identifier for the default address space is the integer 12096'``0``'. 12097 12098:: 12099 12100 declare i8* @llvm.ptr.annotation.p<address space>i8(i8* <val>, i8* <str>, i8* <str>, i32 <int>) 12101 declare i16* @llvm.ptr.annotation.p<address space>i16(i16* <val>, i8* <str>, i8* <str>, i32 <int>) 12102 declare i32* @llvm.ptr.annotation.p<address space>i32(i32* <val>, i8* <str>, i8* <str>, i32 <int>) 12103 declare i64* @llvm.ptr.annotation.p<address space>i64(i64* <val>, i8* <str>, i8* <str>, i32 <int>) 12104 declare i256* @llvm.ptr.annotation.p<address space>i256(i256* <val>, i8* <str>, i8* <str>, i32 <int>) 12105 12106Overview: 12107""""""""" 12108 12109The '``llvm.ptr.annotation``' intrinsic. 12110 12111Arguments: 12112"""""""""" 12113 12114The first argument is a pointer to an integer value of arbitrary bitwidth 12115(result of some expression), the second is a pointer to a global string, the 12116third is a pointer to a global string which is the source file name, and the 12117last argument is the line number. It returns the value of the first argument. 12118 12119Semantics: 12120"""""""""" 12121 12122This intrinsic allows annotation of a pointer to an integer with arbitrary 12123strings. This can be useful for special purpose optimizations that want to look 12124for these annotations. These have no other defined use; they are ignored by code 12125generation and optimization. 12126 12127'``llvm.annotation.*``' Intrinsic 12128^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 12129 12130Syntax: 12131""""""" 12132 12133This is an overloaded intrinsic. You can use '``llvm.annotation``' on 12134any integer bit width. 12135 12136:: 12137 12138 declare i8 @llvm.annotation.i8(i8 <val>, i8* <str>, i8* <str>, i32 <int>) 12139 declare i16 @llvm.annotation.i16(i16 <val>, i8* <str>, i8* <str>, i32 <int>) 12140 declare i32 @llvm.annotation.i32(i32 <val>, i8* <str>, i8* <str>, i32 <int>) 12141 declare i64 @llvm.annotation.i64(i64 <val>, i8* <str>, i8* <str>, i32 <int>) 12142 declare i256 @llvm.annotation.i256(i256 <val>, i8* <str>, i8* <str>, i32 <int>) 12143 12144Overview: 12145""""""""" 12146 12147The '``llvm.annotation``' intrinsic. 12148 12149Arguments: 12150"""""""""" 12151 12152The first argument is an integer value (result of some expression), the 12153second is a pointer to a global string, the third is a pointer to a 12154global string which is the source file name, and the last argument is 12155the line number. It returns the value of the first argument. 12156 12157Semantics: 12158"""""""""" 12159 12160This intrinsic allows annotations to be put on arbitrary expressions 12161with arbitrary strings. This can be useful for special purpose 12162optimizations that want to look for these annotations. These have no 12163other defined use; they are ignored by code generation and optimization. 12164 12165'``llvm.trap``' Intrinsic 12166^^^^^^^^^^^^^^^^^^^^^^^^^ 12167 12168Syntax: 12169""""""" 12170 12171:: 12172 12173 declare void @llvm.trap() noreturn nounwind 12174 12175Overview: 12176""""""""" 12177 12178The '``llvm.trap``' intrinsic. 12179 12180Arguments: 12181"""""""""" 12182 12183None. 12184 12185Semantics: 12186"""""""""" 12187 12188This intrinsic is lowered to the target dependent trap instruction. If 12189the target does not have a trap instruction, this intrinsic will be 12190lowered to a call of the ``abort()`` function. 12191 12192'``llvm.debugtrap``' Intrinsic 12193^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 12194 12195Syntax: 12196""""""" 12197 12198:: 12199 12200 declare void @llvm.debugtrap() nounwind 12201 12202Overview: 12203""""""""" 12204 12205The '``llvm.debugtrap``' intrinsic. 12206 12207Arguments: 12208"""""""""" 12209 12210None. 12211 12212Semantics: 12213"""""""""" 12214 12215This intrinsic is lowered to code which is intended to cause an 12216execution trap with the intention of requesting the attention of a 12217debugger. 12218 12219'``llvm.stackprotector``' Intrinsic 12220^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 12221 12222Syntax: 12223""""""" 12224 12225:: 12226 12227 declare void @llvm.stackprotector(i8* <guard>, i8** <slot>) 12228 12229Overview: 12230""""""""" 12231 12232The ``llvm.stackprotector`` intrinsic takes the ``guard`` and stores it 12233onto the stack at ``slot``. The stack slot is adjusted to ensure that it 12234is placed on the stack before local variables. 12235 12236Arguments: 12237"""""""""" 12238 12239The ``llvm.stackprotector`` intrinsic requires two pointer arguments. 12240The first argument is the value loaded from the stack guard 12241``@__stack_chk_guard``. The second variable is an ``alloca`` that has 12242enough space to hold the value of the guard. 12243 12244Semantics: 12245"""""""""" 12246 12247This intrinsic causes the prologue/epilogue inserter to force the position of 12248the ``AllocaInst`` stack slot to be before local variables on the stack. This is 12249to ensure that if a local variable on the stack is overwritten, it will destroy 12250the value of the guard. When the function exits, the guard on the stack is 12251checked against the original guard by ``llvm.stackprotectorcheck``. If they are 12252different, then ``llvm.stackprotectorcheck`` causes the program to abort by 12253calling the ``__stack_chk_fail()`` function. 12254 12255'``llvm.stackguard``' Intrinsic 12256^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 12257 12258Syntax: 12259""""""" 12260 12261:: 12262 12263 declare i8* @llvm.stackguard() 12264 12265Overview: 12266""""""""" 12267 12268The ``llvm.stackguard`` intrinsic returns the system stack guard value. 12269 12270It should not be generated by frontends, since it is only for internal usage. 12271The reason why we create this intrinsic is that we still support IR form Stack 12272Protector in FastISel. 12273 12274Arguments: 12275"""""""""" 12276 12277None. 12278 12279Semantics: 12280"""""""""" 12281 12282On some platforms, the value returned by this intrinsic remains unchanged 12283between loads in the same thread. On other platforms, it returns the same 12284global variable value, if any, e.g. ``@__stack_chk_guard``. 12285 12286Currently some platforms have IR-level customized stack guard loading (e.g. 12287X86 Linux) that is not handled by ``llvm.stackguard()``, while they should be 12288in the future. 12289 12290'``llvm.objectsize``' Intrinsic 12291^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 12292 12293Syntax: 12294""""""" 12295 12296:: 12297 12298 declare i32 @llvm.objectsize.i32(i8* <object>, i1 <min>) 12299 declare i64 @llvm.objectsize.i64(i8* <object>, i1 <min>) 12300 12301Overview: 12302""""""""" 12303 12304The ``llvm.objectsize`` intrinsic is designed to provide information to 12305the optimizers to determine at compile time whether a) an operation 12306(like memcpy) will overflow a buffer that corresponds to an object, or 12307b) that a runtime check for overflow isn't necessary. An object in this 12308context means an allocation of a specific class, structure, array, or 12309other object. 12310 12311Arguments: 12312"""""""""" 12313 12314The ``llvm.objectsize`` intrinsic takes two arguments. The first 12315argument is a pointer to or into the ``object``. The second argument is 12316a boolean and determines whether ``llvm.objectsize`` returns 0 (if true) 12317or -1 (if false) when the object size is unknown. The second argument 12318only accepts constants. 12319 12320Semantics: 12321"""""""""" 12322 12323The ``llvm.objectsize`` intrinsic is lowered to a constant representing 12324the size of the object concerned. If the size cannot be determined at 12325compile time, ``llvm.objectsize`` returns ``i32/i64 -1 or 0`` (depending 12326on the ``min`` argument). 12327 12328'``llvm.expect``' Intrinsic 12329^^^^^^^^^^^^^^^^^^^^^^^^^^^ 12330 12331Syntax: 12332""""""" 12333 12334This is an overloaded intrinsic. You can use ``llvm.expect`` on any 12335integer bit width. 12336 12337:: 12338 12339 declare i1 @llvm.expect.i1(i1 <val>, i1 <expected_val>) 12340 declare i32 @llvm.expect.i32(i32 <val>, i32 <expected_val>) 12341 declare i64 @llvm.expect.i64(i64 <val>, i64 <expected_val>) 12342 12343Overview: 12344""""""""" 12345 12346The ``llvm.expect`` intrinsic provides information about expected (the 12347most probable) value of ``val``, which can be used by optimizers. 12348 12349Arguments: 12350"""""""""" 12351 12352The ``llvm.expect`` intrinsic takes two arguments. The first argument is 12353a value. The second argument is an expected value, this needs to be a 12354constant value, variables are not allowed. 12355 12356Semantics: 12357"""""""""" 12358 12359This intrinsic is lowered to the ``val``. 12360 12361.. _int_assume: 12362 12363'``llvm.assume``' Intrinsic 12364^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 12365 12366Syntax: 12367""""""" 12368 12369:: 12370 12371 declare void @llvm.assume(i1 %cond) 12372 12373Overview: 12374""""""""" 12375 12376The ``llvm.assume`` allows the optimizer to assume that the provided 12377condition is true. This information can then be used in simplifying other parts 12378of the code. 12379 12380Arguments: 12381"""""""""" 12382 12383The condition which the optimizer may assume is always true. 12384 12385Semantics: 12386"""""""""" 12387 12388The intrinsic allows the optimizer to assume that the provided condition is 12389always true whenever the control flow reaches the intrinsic call. No code is 12390generated for this intrinsic, and instructions that contribute only to the 12391provided condition are not used for code generation. If the condition is 12392violated during execution, the behavior is undefined. 12393 12394Note that the optimizer might limit the transformations performed on values 12395used by the ``llvm.assume`` intrinsic in order to preserve the instructions 12396only used to form the intrinsic's input argument. This might prove undesirable 12397if the extra information provided by the ``llvm.assume`` intrinsic does not cause 12398sufficient overall improvement in code quality. For this reason, 12399``llvm.assume`` should not be used to document basic mathematical invariants 12400that the optimizer can otherwise deduce or facts that are of little use to the 12401optimizer. 12402 12403.. _type.test: 12404 12405'``llvm.type.test``' Intrinsic 12406^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 12407 12408Syntax: 12409""""""" 12410 12411:: 12412 12413 declare i1 @llvm.type.test(i8* %ptr, metadata %type) nounwind readnone 12414 12415 12416Arguments: 12417"""""""""" 12418 12419The first argument is a pointer to be tested. The second argument is a 12420metadata object representing a :doc:`type identifier <TypeMetadata>`. 12421 12422Overview: 12423""""""""" 12424 12425The ``llvm.type.test`` intrinsic tests whether the given pointer is associated 12426with the given type identifier. 12427 12428'``llvm.type.checked.load``' Intrinsic 12429^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 12430 12431Syntax: 12432""""""" 12433 12434:: 12435 12436 declare {i8*, i1} @llvm.type.checked.load(i8* %ptr, i32 %offset, metadata %type) argmemonly nounwind readonly 12437 12438 12439Arguments: 12440"""""""""" 12441 12442The first argument is a pointer from which to load a function pointer. The 12443second argument is the byte offset from which to load the function pointer. The 12444third argument is a metadata object representing a :doc:`type identifier 12445<TypeMetadata>`. 12446 12447Overview: 12448""""""""" 12449 12450The ``llvm.type.checked.load`` intrinsic safely loads a function pointer from a 12451virtual table pointer using type metadata. This intrinsic is used to implement 12452control flow integrity in conjunction with virtual call optimization. The 12453virtual call optimization pass will optimize away ``llvm.type.checked.load`` 12454intrinsics associated with devirtualized calls, thereby removing the type 12455check in cases where it is not needed to enforce the control flow integrity 12456constraint. 12457 12458If the given pointer is associated with a type metadata identifier, this 12459function returns true as the second element of its return value. (Note that 12460the function may also return true if the given pointer is not associated 12461with a type metadata identifier.) If the function's return value's second 12462element is true, the following rules apply to the first element: 12463 12464- If the given pointer is associated with the given type metadata identifier, 12465 it is the function pointer loaded from the given byte offset from the given 12466 pointer. 12467 12468- If the given pointer is not associated with the given type metadata 12469 identifier, it is one of the following (the choice of which is unspecified): 12470 12471 1. The function pointer that would have been loaded from an arbitrarily chosen 12472 (through an unspecified mechanism) pointer associated with the type 12473 metadata. 12474 12475 2. If the function has a non-void return type, a pointer to a function that 12476 returns an unspecified value without causing side effects. 12477 12478If the function's return value's second element is false, the value of the 12479first element is undefined. 12480 12481 12482'``llvm.donothing``' Intrinsic 12483^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 12484 12485Syntax: 12486""""""" 12487 12488:: 12489 12490 declare void @llvm.donothing() nounwind readnone 12491 12492Overview: 12493""""""""" 12494 12495The ``llvm.donothing`` intrinsic doesn't perform any operation. It's one of only 12496three intrinsics (besides ``llvm.experimental.patchpoint`` and 12497``llvm.experimental.gc.statepoint``) that can be called with an invoke 12498instruction. 12499 12500Arguments: 12501"""""""""" 12502 12503None. 12504 12505Semantics: 12506"""""""""" 12507 12508This intrinsic does nothing, and it's removed by optimizers and ignored 12509by codegen. 12510 12511'``llvm.experimental.deoptimize``' Intrinsic 12512^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 12513 12514Syntax: 12515""""""" 12516 12517:: 12518 12519 declare type @llvm.experimental.deoptimize(...) [ "deopt"(...) ] 12520 12521Overview: 12522""""""""" 12523 12524This intrinsic, together with :ref:`deoptimization operand bundles 12525<deopt_opbundles>`, allow frontends to express transfer of control and 12526frame-local state from the currently executing (typically more specialized, 12527hence faster) version of a function into another (typically more generic, hence 12528slower) version. 12529 12530In languages with a fully integrated managed runtime like Java and JavaScript 12531this intrinsic can be used to implement "uncommon trap" or "side exit" like 12532functionality. In unmanaged languages like C and C++, this intrinsic can be 12533used to represent the slow paths of specialized functions. 12534 12535 12536Arguments: 12537"""""""""" 12538 12539The intrinsic takes an arbitrary number of arguments, whose meaning is 12540decided by the :ref:`lowering strategy<deoptimize_lowering>`. 12541 12542Semantics: 12543"""""""""" 12544 12545The ``@llvm.experimental.deoptimize`` intrinsic executes an attached 12546deoptimization continuation (denoted using a :ref:`deoptimization 12547operand bundle <deopt_opbundles>`) and returns the value returned by 12548the deoptimization continuation. Defining the semantic properties of 12549the continuation itself is out of scope of the language reference -- 12550as far as LLVM is concerned, the deoptimization continuation can 12551invoke arbitrary side effects, including reading from and writing to 12552the entire heap. 12553 12554Deoptimization continuations expressed using ``"deopt"`` operand bundles always 12555continue execution to the end of the physical frame containing them, so all 12556calls to ``@llvm.experimental.deoptimize`` must be in "tail position": 12557 12558 - ``@llvm.experimental.deoptimize`` cannot be invoked. 12559 - The call must immediately precede a :ref:`ret <i_ret>` instruction. 12560 - The ``ret`` instruction must return the value produced by the 12561 ``@llvm.experimental.deoptimize`` call if there is one, or void. 12562 12563Note that the above restrictions imply that the return type for a call to 12564``@llvm.experimental.deoptimize`` will match the return type of its immediate 12565caller. 12566 12567The inliner composes the ``"deopt"`` continuations of the caller into the 12568``"deopt"`` continuations present in the inlinee, and also updates calls to this 12569intrinsic to return directly from the frame of the function it inlined into. 12570 12571All declarations of ``@llvm.experimental.deoptimize`` must share the 12572same calling convention. 12573 12574.. _deoptimize_lowering: 12575 12576Lowering: 12577""""""""" 12578 12579Calls to ``@llvm.experimental.deoptimize`` are lowered to calls to the 12580symbol ``__llvm_deoptimize`` (it is the frontend's responsibility to 12581ensure that this symbol is defined). The call arguments to 12582``@llvm.experimental.deoptimize`` are lowered as if they were formal 12583arguments of the specified types, and not as varargs. 12584 12585 12586'``llvm.experimental.guard``' Intrinsic 12587^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 12588 12589Syntax: 12590""""""" 12591 12592:: 12593 12594 declare void @llvm.experimental.guard(i1, ...) [ "deopt"(...) ] 12595 12596Overview: 12597""""""""" 12598 12599This intrinsic, together with :ref:`deoptimization operand bundles 12600<deopt_opbundles>`, allows frontends to express guards or checks on 12601optimistic assumptions made during compilation. The semantics of 12602``@llvm.experimental.guard`` is defined in terms of 12603``@llvm.experimental.deoptimize`` -- its body is defined to be 12604equivalent to: 12605 12606.. code-block:: text 12607 12608 define void @llvm.experimental.guard(i1 %pred, <args...>) { 12609 %realPred = and i1 %pred, undef 12610 br i1 %realPred, label %continue, label %leave [, !make.implicit !{}] 12611 12612 leave: 12613 call void @llvm.experimental.deoptimize(<args...>) [ "deopt"() ] 12614 ret void 12615 12616 continue: 12617 ret void 12618 } 12619 12620 12621with the optional ``[, !make.implicit !{}]`` present if and only if it 12622is present on the call site. For more details on ``!make.implicit``, 12623see :doc:`FaultMaps`. 12624 12625In words, ``@llvm.experimental.guard`` executes the attached 12626``"deopt"`` continuation if (but **not** only if) its first argument 12627is ``false``. Since the optimizer is allowed to replace the ``undef`` 12628with an arbitrary value, it can optimize guard to fail "spuriously", 12629i.e. without the original condition being false (hence the "not only 12630if"); and this allows for "check widening" type optimizations. 12631 12632``@llvm.experimental.guard`` cannot be invoked. 12633 12634 12635'``llvm.load.relative``' Intrinsic 12636^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 12637 12638Syntax: 12639""""""" 12640 12641:: 12642 12643 declare i8* @llvm.load.relative.iN(i8* %ptr, iN %offset) argmemonly nounwind readonly 12644 12645Overview: 12646""""""""" 12647 12648This intrinsic loads a 32-bit value from the address ``%ptr + %offset``, 12649adds ``%ptr`` to that value and returns it. The constant folder specifically 12650recognizes the form of this intrinsic and the constant initializers it may 12651load from; if a loaded constant initializer is known to have the form 12652``i32 trunc(x - %ptr)``, the intrinsic call is folded to ``x``. 12653 12654LLVM provides that the calculation of such a constant initializer will 12655not overflow at link time under the medium code model if ``x`` is an 12656``unnamed_addr`` function. However, it does not provide this guarantee for 12657a constant initializer folded into a function body. This intrinsic can be 12658used to avoid the possibility of overflows when loading from such a constant. 12659 12660Stack Map Intrinsics 12661-------------------- 12662 12663LLVM provides experimental intrinsics to support runtime patching 12664mechanisms commonly desired in dynamic language JITs. These intrinsics 12665are described in :doc:`StackMaps`. 12666 12667Element Wise Atomic Memory Intrinsics 12668------------------------------------- 12669 12670These intrinsics are similar to the standard library memory intrinsics except 12671that they perform memory transfer as a sequence of atomic memory accesses. 12672 12673.. _int_memcpy_element_atomic: 12674 12675'``llvm.memcpy.element.atomic``' Intrinsic 12676^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 12677 12678Syntax: 12679""""""" 12680 12681This is an overloaded intrinsic. You can use ``llvm.memcpy.element.atomic`` on 12682any integer bit width and for different address spaces. Not all targets 12683support all bit widths however. 12684 12685:: 12686 12687 declare void @llvm.memcpy.element.atomic.p0i8.p0i8(i8* <dest>, i8* <src>, 12688 i64 <num_elements>, i32 <element_size>) 12689 12690Overview: 12691""""""""" 12692 12693The '``llvm.memcpy.element.atomic.*``' intrinsic performs copy of a block of 12694memory from the source location to the destination location as a sequence of 12695unordered atomic memory accesses where each access is a multiple of 12696``element_size`` bytes wide and aligned at an element size boundary. For example 12697each element is accessed atomically in source and destination buffers. 12698 12699Arguments: 12700"""""""""" 12701 12702The first argument is a pointer to the destination, the second is a 12703pointer to the source. The third argument is an integer argument 12704specifying the number of elements to copy, the fourth argument is size of 12705the single element in bytes. 12706 12707``element_size`` should be a power of two, greater than zero and less than 12708a target-specific atomic access size limit. 12709 12710For each of the input pointers ``align`` parameter attribute must be specified. 12711It must be a power of two and greater than or equal to the ``element_size``. 12712Caller guarantees that both the source and destination pointers are aligned to 12713that boundary. 12714 12715Semantics: 12716"""""""""" 12717 12718The '``llvm.memcpy.element.atomic.*``' intrinsic copies 12719'``num_elements`` * ``element_size``' bytes of memory from the source location to 12720the destination location. These locations are not allowed to overlap. Memory copy 12721is performed as a sequence of unordered atomic memory accesses where each access 12722is guaranteed to be a multiple of ``element_size`` bytes wide and aligned at an 12723element size boundary. 12724 12725The order of the copy is unspecified. The same value may be read from the source 12726buffer many times, but only one write is issued to the destination buffer per 12727element. It is well defined to have concurrent reads and writes to both source 12728and destination provided those reads and writes are at least unordered atomic. 12729 12730This intrinsic does not provide any additional ordering guarantees over those 12731provided by a set of unordered loads from the source location and stores to the 12732destination. 12733 12734Lowering: 12735""""""""" 12736 12737In the most general case call to the '``llvm.memcpy.element.atomic.*``' is lowered 12738to a call to the symbol ``__llvm_memcpy_element_atomic_*``. Where '*' is replaced 12739with an actual element size. 12740 12741Optimizer is allowed to inline memory copy when it's profitable to do so. 12742