1 //===- NeonEmitter.cpp - Generate arm_neon.h for use with clang -*- C++ -*-===//
2 //
3 // The LLVM Compiler Infrastructure
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 //
10 // This tablegen backend is responsible for emitting arm_neon.h, which includes
11 // a declaration and definition of each function specified by the ARM NEON
12 // compiler interface. See ARM document DUI0348B.
13 //
14 // Each NEON instruction is implemented in terms of 1 or more functions which
15 // are suffixed with the element type of the input vectors. Functions may be
16 // implemented in terms of generic vector operations such as +, *, -, etc. or
17 // by calling a __builtin_-prefixed function which will be handled by clang's
18 // CodeGen library.
19 //
20 // Additional validation code can be generated by this file when runHeader() is
21 // called, rather than the normal run() entry point.
22 //
23 // See also the documentation in include/clang/Basic/arm_neon.td.
24 //
25 //===----------------------------------------------------------------------===//
26
27 #include "llvm/ADT/ArrayRef.h"
28 #include "llvm/ADT/DenseMap.h"
29 #include "llvm/ADT/None.h"
30 #include "llvm/ADT/SmallVector.h"
31 #include "llvm/ADT/STLExtras.h"
32 #include "llvm/ADT/StringExtras.h"
33 #include "llvm/ADT/StringRef.h"
34 #include "llvm/Support/Casting.h"
35 #include "llvm/Support/ErrorHandling.h"
36 #include "llvm/Support/raw_ostream.h"
37 #include "llvm/TableGen/Error.h"
38 #include "llvm/TableGen/Record.h"
39 #include "llvm/TableGen/SetTheory.h"
40 #include <algorithm>
41 #include <cassert>
42 #include <cctype>
43 #include <cstddef>
44 #include <cstdint>
45 #include <deque>
46 #include <map>
47 #include <set>
48 #include <sstream>
49 #include <string>
50 #include <utility>
51 #include <vector>
52
53 using namespace llvm;
54
55 namespace {
56
57 // While globals are generally bad, this one allows us to perform assertions
58 // liberally and somehow still trace them back to the def they indirectly
59 // came from.
60 static Record *CurrentRecord = nullptr;
assert_with_loc(bool Assertion,const std::string & Str)61 static void assert_with_loc(bool Assertion, const std::string &Str) {
62 if (!Assertion) {
63 if (CurrentRecord)
64 PrintFatalError(CurrentRecord->getLoc(), Str);
65 else
66 PrintFatalError(Str);
67 }
68 }
69
70 enum ClassKind {
71 ClassNone,
72 ClassI, // generic integer instruction, e.g., "i8" suffix
73 ClassS, // signed/unsigned/poly, e.g., "s8", "u8" or "p8" suffix
74 ClassW, // width-specific instruction, e.g., "8" suffix
75 ClassB, // bitcast arguments with enum argument to specify type
76 ClassL, // Logical instructions which are op instructions
77 // but we need to not emit any suffix for in our
78 // tests.
79 ClassNoTest // Instructions which we do not test since they are
80 // not TRUE instructions.
81 };
82
83 /// NeonTypeFlags - Flags to identify the types for overloaded Neon
84 /// builtins. These must be kept in sync with the flags in
85 /// include/clang/Basic/TargetBuiltins.h.
86 namespace NeonTypeFlags {
87
88 enum { EltTypeMask = 0xf, UnsignedFlag = 0x10, QuadFlag = 0x20 };
89
90 enum EltType {
91 Int8,
92 Int16,
93 Int32,
94 Int64,
95 Poly8,
96 Poly16,
97 Poly64,
98 Poly128,
99 Float16,
100 Float32,
101 Float64
102 };
103
104 } // end namespace NeonTypeFlags
105
106 class NeonEmitter;
107
108 //===----------------------------------------------------------------------===//
109 // TypeSpec
110 //===----------------------------------------------------------------------===//
111
112 /// A TypeSpec is just a simple wrapper around a string, but gets its own type
113 /// for strong typing purposes.
114 ///
115 /// A TypeSpec can be used to create a type.
116 class TypeSpec : public std::string {
117 public:
fromTypeSpecs(StringRef Str)118 static std::vector<TypeSpec> fromTypeSpecs(StringRef Str) {
119 std::vector<TypeSpec> Ret;
120 TypeSpec Acc;
121 for (char I : Str.str()) {
122 if (islower(I)) {
123 Acc.push_back(I);
124 Ret.push_back(TypeSpec(Acc));
125 Acc.clear();
126 } else {
127 Acc.push_back(I);
128 }
129 }
130 return Ret;
131 }
132 };
133
134 //===----------------------------------------------------------------------===//
135 // Type
136 //===----------------------------------------------------------------------===//
137
138 /// A Type. Not much more to say here.
139 class Type {
140 private:
141 TypeSpec TS;
142
143 bool Float, Signed, Immediate, Void, Poly, Constant, Pointer;
144 // ScalarForMangling and NoManglingQ are really not suited to live here as
145 // they are not related to the type. But they live in the TypeSpec (not the
146 // prototype), so this is really the only place to store them.
147 bool ScalarForMangling, NoManglingQ;
148 unsigned Bitwidth, ElementBitwidth, NumVectors;
149
150 public:
Type()151 Type()
152 : Float(false), Signed(false), Immediate(false), Void(true), Poly(false),
153 Constant(false), Pointer(false), ScalarForMangling(false),
154 NoManglingQ(false), Bitwidth(0), ElementBitwidth(0), NumVectors(0) {}
155
Type(TypeSpec TS,char CharMod)156 Type(TypeSpec TS, char CharMod)
157 : TS(std::move(TS)), Float(false), Signed(false), Immediate(false),
158 Void(false), Poly(false), Constant(false), Pointer(false),
159 ScalarForMangling(false), NoManglingQ(false), Bitwidth(0),
160 ElementBitwidth(0), NumVectors(0) {
161 applyModifier(CharMod);
162 }
163
164 /// Returns a type representing "void".
getVoid()165 static Type getVoid() { return Type(); }
166
operator ==(const Type & Other) const167 bool operator==(const Type &Other) const { return str() == Other.str(); }
operator !=(const Type & Other) const168 bool operator!=(const Type &Other) const { return !operator==(Other); }
169
170 //
171 // Query functions
172 //
isScalarForMangling() const173 bool isScalarForMangling() const { return ScalarForMangling; }
noManglingQ() const174 bool noManglingQ() const { return NoManglingQ; }
175
isPointer() const176 bool isPointer() const { return Pointer; }
isFloating() const177 bool isFloating() const { return Float; }
isInteger() const178 bool isInteger() const { return !Float && !Poly; }
isSigned() const179 bool isSigned() const { return Signed; }
isImmediate() const180 bool isImmediate() const { return Immediate; }
isScalar() const181 bool isScalar() const { return NumVectors == 0; }
isVector() const182 bool isVector() const { return NumVectors > 0; }
isFloat() const183 bool isFloat() const { return Float && ElementBitwidth == 32; }
isDouble() const184 bool isDouble() const { return Float && ElementBitwidth == 64; }
isHalf() const185 bool isHalf() const { return Float && ElementBitwidth == 16; }
isPoly() const186 bool isPoly() const { return Poly; }
isChar() const187 bool isChar() const { return ElementBitwidth == 8; }
isShort() const188 bool isShort() const { return !Float && ElementBitwidth == 16; }
isInt() const189 bool isInt() const { return !Float && ElementBitwidth == 32; }
isLong() const190 bool isLong() const { return !Float && ElementBitwidth == 64; }
isVoid() const191 bool isVoid() const { return Void; }
getNumElements() const192 unsigned getNumElements() const { return Bitwidth / ElementBitwidth; }
getSizeInBits() const193 unsigned getSizeInBits() const { return Bitwidth; }
getElementSizeInBits() const194 unsigned getElementSizeInBits() const { return ElementBitwidth; }
getNumVectors() const195 unsigned getNumVectors() const { return NumVectors; }
196
197 //
198 // Mutator functions
199 //
makeUnsigned()200 void makeUnsigned() { Signed = false; }
makeSigned()201 void makeSigned() { Signed = true; }
202
makeInteger(unsigned ElemWidth,bool Sign)203 void makeInteger(unsigned ElemWidth, bool Sign) {
204 Float = false;
205 Poly = false;
206 Signed = Sign;
207 Immediate = false;
208 ElementBitwidth = ElemWidth;
209 }
210
makeImmediate(unsigned ElemWidth)211 void makeImmediate(unsigned ElemWidth) {
212 Float = false;
213 Poly = false;
214 Signed = true;
215 Immediate = true;
216 ElementBitwidth = ElemWidth;
217 }
218
makeScalar()219 void makeScalar() {
220 Bitwidth = ElementBitwidth;
221 NumVectors = 0;
222 }
223
makeOneVector()224 void makeOneVector() {
225 assert(isVector());
226 NumVectors = 1;
227 }
228
doubleLanes()229 void doubleLanes() {
230 assert_with_loc(Bitwidth != 128, "Can't get bigger than 128!");
231 Bitwidth = 128;
232 }
233
halveLanes()234 void halveLanes() {
235 assert_with_loc(Bitwidth != 64, "Can't get smaller than 64!");
236 Bitwidth = 64;
237 }
238
239 /// Return the C string representation of a type, which is the typename
240 /// defined in stdint.h or arm_neon.h.
241 std::string str() const;
242
243 /// Return the string representation of a type, which is an encoded
244 /// string for passing to the BUILTIN() macro in Builtins.def.
245 std::string builtin_str() const;
246
247 /// Return the value in NeonTypeFlags for this type.
248 unsigned getNeonEnum() const;
249
250 /// Parse a type from a stdint.h or arm_neon.h typedef name,
251 /// for example uint32x2_t or int64_t.
252 static Type fromTypedefName(StringRef Name);
253
254 private:
255 /// Creates the type based on the typespec string in TS.
256 /// Sets "Quad" to true if the "Q" or "H" modifiers were
257 /// seen. This is needed by applyModifier as some modifiers
258 /// only take effect if the type size was changed by "Q" or "H".
259 void applyTypespec(bool &Quad);
260 /// Applies a prototype modifier to the type.
261 void applyModifier(char Mod);
262 };
263
264 //===----------------------------------------------------------------------===//
265 // Variable
266 //===----------------------------------------------------------------------===//
267
268 /// A variable is a simple class that just has a type and a name.
269 class Variable {
270 Type T;
271 std::string N;
272
273 public:
Variable()274 Variable() : T(Type::getVoid()), N("") {}
Variable(Type T,std::string N)275 Variable(Type T, std::string N) : T(std::move(T)), N(std::move(N)) {}
276
getType() const277 Type getType() const { return T; }
getName() const278 std::string getName() const { return "__" + N; }
279 };
280
281 //===----------------------------------------------------------------------===//
282 // Intrinsic
283 //===----------------------------------------------------------------------===//
284
285 /// The main grunt class. This represents an instantiation of an intrinsic with
286 /// a particular typespec and prototype.
287 class Intrinsic {
288 friend class DagEmitter;
289
290 /// The Record this intrinsic was created from.
291 Record *R;
292 /// The unmangled name and prototype.
293 std::string Name, Proto;
294 /// The input and output typespecs. InTS == OutTS except when
295 /// CartesianProductOfTypes is 1 - this is the case for vreinterpret.
296 TypeSpec OutTS, InTS;
297 /// The base class kind. Most intrinsics use ClassS, which has full type
298 /// info for integers (s32/u32). Some use ClassI, which doesn't care about
299 /// signedness (i32), while some (ClassB) have no type at all, only a width
300 /// (32).
301 ClassKind CK;
302 /// The list of DAGs for the body. May be empty, in which case we should
303 /// emit a builtin call.
304 ListInit *Body;
305 /// The architectural #ifdef guard.
306 std::string Guard;
307 /// Set if the Unavailable bit is 1. This means we don't generate a body,
308 /// just an "unavailable" attribute on a declaration.
309 bool IsUnavailable;
310 /// Is this intrinsic safe for big-endian? or does it need its arguments
311 /// reversing?
312 bool BigEndianSafe;
313
314 /// The types of return value [0] and parameters [1..].
315 std::vector<Type> Types;
316 /// The local variables defined.
317 std::map<std::string, Variable> Variables;
318 /// NeededEarly - set if any other intrinsic depends on this intrinsic.
319 bool NeededEarly;
320 /// UseMacro - set if we should implement using a macro or unset for a
321 /// function.
322 bool UseMacro;
323 /// The set of intrinsics that this intrinsic uses/requires.
324 std::set<Intrinsic *> Dependencies;
325 /// The "base type", which is Type('d', OutTS). InBaseType is only
326 /// different if CartesianProductOfTypes = 1 (for vreinterpret).
327 Type BaseType, InBaseType;
328 /// The return variable.
329 Variable RetVar;
330 /// A postfix to apply to every variable. Defaults to "".
331 std::string VariablePostfix;
332
333 NeonEmitter &Emitter;
334 std::stringstream OS;
335
336 public:
Intrinsic(Record * R,StringRef Name,StringRef Proto,TypeSpec OutTS,TypeSpec InTS,ClassKind CK,ListInit * Body,NeonEmitter & Emitter,StringRef Guard,bool IsUnavailable,bool BigEndianSafe)337 Intrinsic(Record *R, StringRef Name, StringRef Proto, TypeSpec OutTS,
338 TypeSpec InTS, ClassKind CK, ListInit *Body, NeonEmitter &Emitter,
339 StringRef Guard, bool IsUnavailable, bool BigEndianSafe)
340 : R(R), Name(Name.str()), Proto(Proto.str()), OutTS(OutTS), InTS(InTS),
341 CK(CK), Body(Body), Guard(Guard.str()), IsUnavailable(IsUnavailable),
342 BigEndianSafe(BigEndianSafe), NeededEarly(false), UseMacro(false),
343 BaseType(OutTS, 'd'), InBaseType(InTS, 'd'), Emitter(Emitter) {
344 // If this builtin takes an immediate argument, we need to #define it rather
345 // than use a standard declaration, so that SemaChecking can range check
346 // the immediate passed by the user.
347 if (Proto.find('i') != std::string::npos)
348 UseMacro = true;
349
350 // Pointer arguments need to use macros to avoid hiding aligned attributes
351 // from the pointer type.
352 if (Proto.find('p') != std::string::npos ||
353 Proto.find('c') != std::string::npos)
354 UseMacro = true;
355
356 // It is not permitted to pass or return an __fp16 by value, so intrinsics
357 // taking a scalar float16_t must be implemented as macros.
358 if (OutTS.find('h') != std::string::npos &&
359 Proto.find('s') != std::string::npos)
360 UseMacro = true;
361
362 // Modify the TypeSpec per-argument to get a concrete Type, and create
363 // known variables for each.
364 // Types[0] is the return value.
365 Types.emplace_back(OutTS, Proto[0]);
366 for (unsigned I = 1; I < Proto.size(); ++I)
367 Types.emplace_back(InTS, Proto[I]);
368 }
369
370 /// Get the Record that this intrinsic is based off.
getRecord() const371 Record *getRecord() const { return R; }
372 /// Get the set of Intrinsics that this intrinsic calls.
373 /// this is the set of immediate dependencies, NOT the
374 /// transitive closure.
getDependencies() const375 const std::set<Intrinsic *> &getDependencies() const { return Dependencies; }
376 /// Get the architectural guard string (#ifdef).
getGuard() const377 std::string getGuard() const { return Guard; }
378 /// Get the non-mangled name.
getName() const379 std::string getName() const { return Name; }
380
381 /// Return true if the intrinsic takes an immediate operand.
hasImmediate() const382 bool hasImmediate() const {
383 return Proto.find('i') != std::string::npos;
384 }
385
386 /// Return the parameter index of the immediate operand.
getImmediateIdx() const387 unsigned getImmediateIdx() const {
388 assert(hasImmediate());
389 unsigned Idx = Proto.find('i');
390 assert(Idx > 0 && "Can't return an immediate!");
391 return Idx - 1;
392 }
393
394 /// Return true if the intrinsic takes an splat operand.
hasSplat() const395 bool hasSplat() const { return Proto.find('a') != std::string::npos; }
396
397 /// Return the parameter index of the splat operand.
getSplatIdx() const398 unsigned getSplatIdx() const {
399 assert(hasSplat());
400 unsigned Idx = Proto.find('a');
401 assert(Idx > 0 && "Can't return a splat!");
402 return Idx - 1;
403 }
404
getNumParams() const405 unsigned getNumParams() const { return Proto.size() - 1; }
getReturnType() const406 Type getReturnType() const { return Types[0]; }
getParamType(unsigned I) const407 Type getParamType(unsigned I) const { return Types[I + 1]; }
getBaseType() const408 Type getBaseType() const { return BaseType; }
409 /// Return the raw prototype string.
getProto() const410 std::string getProto() const { return Proto; }
411
412 /// Return true if the prototype has a scalar argument.
413 /// This does not return true for the "splat" code ('a').
414 bool protoHasScalar() const;
415
416 /// Return the index that parameter PIndex will sit at
417 /// in a generated function call. This is often just PIndex,
418 /// but may not be as things such as multiple-vector operands
419 /// and sret parameters need to be taken into accont.
getGeneratedParamIdx(unsigned PIndex)420 unsigned getGeneratedParamIdx(unsigned PIndex) {
421 unsigned Idx = 0;
422 if (getReturnType().getNumVectors() > 1)
423 // Multiple vectors are passed as sret.
424 ++Idx;
425
426 for (unsigned I = 0; I < PIndex; ++I)
427 Idx += std::max(1U, getParamType(I).getNumVectors());
428
429 return Idx;
430 }
431
hasBody() const432 bool hasBody() const { return Body && !Body->getValues().empty(); }
433
setNeededEarly()434 void setNeededEarly() { NeededEarly = true; }
435
operator <(const Intrinsic & Other) const436 bool operator<(const Intrinsic &Other) const {
437 // Sort lexicographically on a two-tuple (Guard, Name)
438 if (Guard != Other.Guard)
439 return Guard < Other.Guard;
440 return Name < Other.Name;
441 }
442
getClassKind(bool UseClassBIfScalar=false)443 ClassKind getClassKind(bool UseClassBIfScalar = false) {
444 if (UseClassBIfScalar && !protoHasScalar())
445 return ClassB;
446 return CK;
447 }
448
449 /// Return the name, mangled with type information.
450 /// If ForceClassS is true, use ClassS (u32/s32) instead
451 /// of the intrinsic's own type class.
452 std::string getMangledName(bool ForceClassS = false) const;
453 /// Return the type code for a builtin function call.
454 std::string getInstTypeCode(Type T, ClassKind CK) const;
455 /// Return the type string for a BUILTIN() macro in Builtins.def.
456 std::string getBuiltinTypeStr();
457
458 /// Generate the intrinsic, returning code.
459 std::string generate();
460 /// Perform type checking and populate the dependency graph, but
461 /// don't generate code yet.
462 void indexBody();
463
464 private:
465 std::string mangleName(std::string Name, ClassKind CK) const;
466
467 void initVariables();
468 std::string replaceParamsIn(std::string S);
469
470 void emitBodyAsBuiltinCall();
471
472 void generateImpl(bool ReverseArguments,
473 StringRef NamePrefix, StringRef CallPrefix);
474 void emitReturn();
475 void emitBody(StringRef CallPrefix);
476 void emitShadowedArgs();
477 void emitArgumentReversal();
478 void emitReturnReversal();
479 void emitReverseVariable(Variable &Dest, Variable &Src);
480 void emitNewLine();
481 void emitClosingBrace();
482 void emitOpeningBrace();
483 void emitPrototype(StringRef NamePrefix);
484
485 class DagEmitter {
486 Intrinsic &Intr;
487 StringRef CallPrefix;
488
489 public:
DagEmitter(Intrinsic & Intr,StringRef CallPrefix)490 DagEmitter(Intrinsic &Intr, StringRef CallPrefix) :
491 Intr(Intr), CallPrefix(CallPrefix) {
492 }
493 std::pair<Type, std::string> emitDagArg(Init *Arg, std::string ArgName);
494 std::pair<Type, std::string> emitDagSaveTemp(DagInit *DI);
495 std::pair<Type, std::string> emitDagSplat(DagInit *DI);
496 std::pair<Type, std::string> emitDagDup(DagInit *DI);
497 std::pair<Type, std::string> emitDagDupTyped(DagInit *DI);
498 std::pair<Type, std::string> emitDagShuffle(DagInit *DI);
499 std::pair<Type, std::string> emitDagCast(DagInit *DI, bool IsBitCast);
500 std::pair<Type, std::string> emitDagCall(DagInit *DI);
501 std::pair<Type, std::string> emitDagNameReplace(DagInit *DI);
502 std::pair<Type, std::string> emitDagLiteral(DagInit *DI);
503 std::pair<Type, std::string> emitDagOp(DagInit *DI);
504 std::pair<Type, std::string> emitDag(DagInit *DI);
505 };
506 };
507
508 //===----------------------------------------------------------------------===//
509 // NeonEmitter
510 //===----------------------------------------------------------------------===//
511
512 class NeonEmitter {
513 RecordKeeper &Records;
514 DenseMap<Record *, ClassKind> ClassMap;
515 std::map<std::string, std::deque<Intrinsic>> IntrinsicMap;
516 unsigned UniqueNumber;
517
518 void createIntrinsic(Record *R, SmallVectorImpl<Intrinsic *> &Out);
519 void genBuiltinsDef(raw_ostream &OS, SmallVectorImpl<Intrinsic *> &Defs);
520 void genOverloadTypeCheckCode(raw_ostream &OS,
521 SmallVectorImpl<Intrinsic *> &Defs);
522 void genIntrinsicRangeCheckCode(raw_ostream &OS,
523 SmallVectorImpl<Intrinsic *> &Defs);
524
525 public:
526 /// Called by Intrinsic - this attempts to get an intrinsic that takes
527 /// the given types as arguments.
528 Intrinsic &getIntrinsic(StringRef Name, ArrayRef<Type> Types);
529
530 /// Called by Intrinsic - returns a globally-unique number.
getUniqueNumber()531 unsigned getUniqueNumber() { return UniqueNumber++; }
532
NeonEmitter(RecordKeeper & R)533 NeonEmitter(RecordKeeper &R) : Records(R), UniqueNumber(0) {
534 Record *SI = R.getClass("SInst");
535 Record *II = R.getClass("IInst");
536 Record *WI = R.getClass("WInst");
537 Record *SOpI = R.getClass("SOpInst");
538 Record *IOpI = R.getClass("IOpInst");
539 Record *WOpI = R.getClass("WOpInst");
540 Record *LOpI = R.getClass("LOpInst");
541 Record *NoTestOpI = R.getClass("NoTestOpInst");
542
543 ClassMap[SI] = ClassS;
544 ClassMap[II] = ClassI;
545 ClassMap[WI] = ClassW;
546 ClassMap[SOpI] = ClassS;
547 ClassMap[IOpI] = ClassI;
548 ClassMap[WOpI] = ClassW;
549 ClassMap[LOpI] = ClassL;
550 ClassMap[NoTestOpI] = ClassNoTest;
551 }
552
553 // run - Emit arm_neon.h.inc
554 void run(raw_ostream &o);
555
556 // runFP16 - Emit arm_fp16.h.inc
557 void runFP16(raw_ostream &o);
558
559 // runHeader - Emit all the __builtin prototypes used in arm_neon.h
560 // and arm_fp16.h
561 void runHeader(raw_ostream &o);
562
563 // runTests - Emit tests for all the Neon intrinsics.
564 void runTests(raw_ostream &o);
565 };
566
567 } // end anonymous namespace
568
569 //===----------------------------------------------------------------------===//
570 // Type implementation
571 //===----------------------------------------------------------------------===//
572
str() const573 std::string Type::str() const {
574 if (Void)
575 return "void";
576 std::string S;
577
578 if (!Signed && isInteger())
579 S += "u";
580
581 if (Poly)
582 S += "poly";
583 else if (Float)
584 S += "float";
585 else
586 S += "int";
587
588 S += utostr(ElementBitwidth);
589 if (isVector())
590 S += "x" + utostr(getNumElements());
591 if (NumVectors > 1)
592 S += "x" + utostr(NumVectors);
593 S += "_t";
594
595 if (Constant)
596 S += " const";
597 if (Pointer)
598 S += " *";
599
600 return S;
601 }
602
builtin_str() const603 std::string Type::builtin_str() const {
604 std::string S;
605 if (isVoid())
606 return "v";
607
608 if (Pointer)
609 // All pointers are void pointers.
610 S += "v";
611 else if (isInteger())
612 switch (ElementBitwidth) {
613 case 8: S += "c"; break;
614 case 16: S += "s"; break;
615 case 32: S += "i"; break;
616 case 64: S += "Wi"; break;
617 case 128: S += "LLLi"; break;
618 default: llvm_unreachable("Unhandled case!");
619 }
620 else
621 switch (ElementBitwidth) {
622 case 16: S += "h"; break;
623 case 32: S += "f"; break;
624 case 64: S += "d"; break;
625 default: llvm_unreachable("Unhandled case!");
626 }
627
628 if (isChar() && !Pointer)
629 // Make chars explicitly signed.
630 S = "S" + S;
631 else if (isInteger() && !Pointer && !Signed)
632 S = "U" + S;
633
634 // Constant indices are "int", but have the "constant expression" modifier.
635 if (isImmediate()) {
636 assert(isInteger() && isSigned());
637 S = "I" + S;
638 }
639
640 if (isScalar()) {
641 if (Constant) S += "C";
642 if (Pointer) S += "*";
643 return S;
644 }
645
646 std::string Ret;
647 for (unsigned I = 0; I < NumVectors; ++I)
648 Ret += "V" + utostr(getNumElements()) + S;
649
650 return Ret;
651 }
652
getNeonEnum() const653 unsigned Type::getNeonEnum() const {
654 unsigned Addend;
655 switch (ElementBitwidth) {
656 case 8: Addend = 0; break;
657 case 16: Addend = 1; break;
658 case 32: Addend = 2; break;
659 case 64: Addend = 3; break;
660 case 128: Addend = 4; break;
661 default: llvm_unreachable("Unhandled element bitwidth!");
662 }
663
664 unsigned Base = (unsigned)NeonTypeFlags::Int8 + Addend;
665 if (Poly) {
666 // Adjustment needed because Poly32 doesn't exist.
667 if (Addend >= 2)
668 --Addend;
669 Base = (unsigned)NeonTypeFlags::Poly8 + Addend;
670 }
671 if (Float) {
672 assert(Addend != 0 && "Float8 doesn't exist!");
673 Base = (unsigned)NeonTypeFlags::Float16 + (Addend - 1);
674 }
675
676 if (Bitwidth == 128)
677 Base |= (unsigned)NeonTypeFlags::QuadFlag;
678 if (isInteger() && !Signed)
679 Base |= (unsigned)NeonTypeFlags::UnsignedFlag;
680
681 return Base;
682 }
683
fromTypedefName(StringRef Name)684 Type Type::fromTypedefName(StringRef Name) {
685 Type T;
686 T.Void = false;
687 T.Float = false;
688 T.Poly = false;
689
690 if (Name.front() == 'u') {
691 T.Signed = false;
692 Name = Name.drop_front();
693 } else {
694 T.Signed = true;
695 }
696
697 if (Name.startswith("float")) {
698 T.Float = true;
699 Name = Name.drop_front(5);
700 } else if (Name.startswith("poly")) {
701 T.Poly = true;
702 Name = Name.drop_front(4);
703 } else {
704 assert(Name.startswith("int"));
705 Name = Name.drop_front(3);
706 }
707
708 unsigned I = 0;
709 for (I = 0; I < Name.size(); ++I) {
710 if (!isdigit(Name[I]))
711 break;
712 }
713 Name.substr(0, I).getAsInteger(10, T.ElementBitwidth);
714 Name = Name.drop_front(I);
715
716 T.Bitwidth = T.ElementBitwidth;
717 T.NumVectors = 1;
718
719 if (Name.front() == 'x') {
720 Name = Name.drop_front();
721 unsigned I = 0;
722 for (I = 0; I < Name.size(); ++I) {
723 if (!isdigit(Name[I]))
724 break;
725 }
726 unsigned NumLanes;
727 Name.substr(0, I).getAsInteger(10, NumLanes);
728 Name = Name.drop_front(I);
729 T.Bitwidth = T.ElementBitwidth * NumLanes;
730 } else {
731 // Was scalar.
732 T.NumVectors = 0;
733 }
734 if (Name.front() == 'x') {
735 Name = Name.drop_front();
736 unsigned I = 0;
737 for (I = 0; I < Name.size(); ++I) {
738 if (!isdigit(Name[I]))
739 break;
740 }
741 Name.substr(0, I).getAsInteger(10, T.NumVectors);
742 Name = Name.drop_front(I);
743 }
744
745 assert(Name.startswith("_t") && "Malformed typedef!");
746 return T;
747 }
748
applyTypespec(bool & Quad)749 void Type::applyTypespec(bool &Quad) {
750 std::string S = TS;
751 ScalarForMangling = false;
752 Void = false;
753 Poly = Float = false;
754 ElementBitwidth = ~0U;
755 Signed = true;
756 NumVectors = 1;
757
758 for (char I : S) {
759 switch (I) {
760 case 'S':
761 ScalarForMangling = true;
762 break;
763 case 'H':
764 NoManglingQ = true;
765 Quad = true;
766 break;
767 case 'Q':
768 Quad = true;
769 break;
770 case 'P':
771 Poly = true;
772 break;
773 case 'U':
774 Signed = false;
775 break;
776 case 'c':
777 ElementBitwidth = 8;
778 break;
779 case 'h':
780 Float = true;
781 LLVM_FALLTHROUGH;
782 case 's':
783 ElementBitwidth = 16;
784 break;
785 case 'f':
786 Float = true;
787 LLVM_FALLTHROUGH;
788 case 'i':
789 ElementBitwidth = 32;
790 break;
791 case 'd':
792 Float = true;
793 LLVM_FALLTHROUGH;
794 case 'l':
795 ElementBitwidth = 64;
796 break;
797 case 'k':
798 ElementBitwidth = 128;
799 // Poly doesn't have a 128x1 type.
800 if (Poly)
801 NumVectors = 0;
802 break;
803 default:
804 llvm_unreachable("Unhandled type code!");
805 }
806 }
807 assert(ElementBitwidth != ~0U && "Bad element bitwidth!");
808
809 Bitwidth = Quad ? 128 : 64;
810 }
811
applyModifier(char Mod)812 void Type::applyModifier(char Mod) {
813 bool AppliedQuad = false;
814 applyTypespec(AppliedQuad);
815
816 switch (Mod) {
817 case 'v':
818 Void = true;
819 break;
820 case 't':
821 if (Poly) {
822 Poly = false;
823 Signed = false;
824 }
825 break;
826 case 'b':
827 Signed = false;
828 Float = false;
829 Poly = false;
830 NumVectors = 0;
831 Bitwidth = ElementBitwidth;
832 break;
833 case '$':
834 Signed = true;
835 Float = false;
836 Poly = false;
837 NumVectors = 0;
838 Bitwidth = ElementBitwidth;
839 break;
840 case 'u':
841 Signed = false;
842 Poly = false;
843 Float = false;
844 break;
845 case 'x':
846 Signed = true;
847 assert(!Poly && "'u' can't be used with poly types!");
848 Float = false;
849 break;
850 case 'o':
851 Bitwidth = ElementBitwidth = 64;
852 NumVectors = 0;
853 Float = true;
854 break;
855 case 'y':
856 Bitwidth = ElementBitwidth = 32;
857 NumVectors = 0;
858 Float = true;
859 break;
860 case 'Y':
861 Bitwidth = ElementBitwidth = 16;
862 NumVectors = 0;
863 Float = true;
864 break;
865 case 'I':
866 Bitwidth = ElementBitwidth = 32;
867 NumVectors = 0;
868 Float = false;
869 Signed = true;
870 break;
871 case 'L':
872 Bitwidth = ElementBitwidth = 64;
873 NumVectors = 0;
874 Float = false;
875 Signed = true;
876 break;
877 case 'U':
878 Bitwidth = ElementBitwidth = 32;
879 NumVectors = 0;
880 Float = false;
881 Signed = false;
882 break;
883 case 'O':
884 Bitwidth = ElementBitwidth = 64;
885 NumVectors = 0;
886 Float = false;
887 Signed = false;
888 break;
889 case 'f':
890 Float = true;
891 ElementBitwidth = 32;
892 break;
893 case 'F':
894 Float = true;
895 ElementBitwidth = 64;
896 break;
897 case 'H':
898 Float = true;
899 ElementBitwidth = 16;
900 break;
901 case '0':
902 Float = true;
903 if (AppliedQuad)
904 Bitwidth /= 2;
905 ElementBitwidth = 16;
906 break;
907 case '1':
908 Float = true;
909 if (!AppliedQuad)
910 Bitwidth *= 2;
911 ElementBitwidth = 16;
912 break;
913 case 'g':
914 if (AppliedQuad)
915 Bitwidth /= 2;
916 break;
917 case 'j':
918 if (!AppliedQuad)
919 Bitwidth *= 2;
920 break;
921 case 'w':
922 ElementBitwidth *= 2;
923 Bitwidth *= 2;
924 break;
925 case 'n':
926 ElementBitwidth *= 2;
927 break;
928 case 'i':
929 Float = false;
930 Poly = false;
931 ElementBitwidth = Bitwidth = 32;
932 NumVectors = 0;
933 Signed = true;
934 Immediate = true;
935 break;
936 case 'l':
937 Float = false;
938 Poly = false;
939 ElementBitwidth = Bitwidth = 64;
940 NumVectors = 0;
941 Signed = false;
942 Immediate = true;
943 break;
944 case 'z':
945 ElementBitwidth /= 2;
946 Bitwidth = ElementBitwidth;
947 NumVectors = 0;
948 break;
949 case 'r':
950 ElementBitwidth *= 2;
951 Bitwidth = ElementBitwidth;
952 NumVectors = 0;
953 break;
954 case 's':
955 case 'a':
956 Bitwidth = ElementBitwidth;
957 NumVectors = 0;
958 break;
959 case 'k':
960 Bitwidth *= 2;
961 break;
962 case 'c':
963 Constant = true;
964 LLVM_FALLTHROUGH;
965 case 'p':
966 Pointer = true;
967 Bitwidth = ElementBitwidth;
968 NumVectors = 0;
969 break;
970 case 'h':
971 ElementBitwidth /= 2;
972 break;
973 case 'q':
974 ElementBitwidth /= 2;
975 Bitwidth *= 2;
976 break;
977 case 'e':
978 ElementBitwidth /= 2;
979 Signed = false;
980 break;
981 case 'm':
982 ElementBitwidth /= 2;
983 Bitwidth /= 2;
984 break;
985 case 'd':
986 break;
987 case '2':
988 NumVectors = 2;
989 break;
990 case '3':
991 NumVectors = 3;
992 break;
993 case '4':
994 NumVectors = 4;
995 break;
996 case 'B':
997 NumVectors = 2;
998 if (!AppliedQuad)
999 Bitwidth *= 2;
1000 break;
1001 case 'C':
1002 NumVectors = 3;
1003 if (!AppliedQuad)
1004 Bitwidth *= 2;
1005 break;
1006 case 'D':
1007 NumVectors = 4;
1008 if (!AppliedQuad)
1009 Bitwidth *= 2;
1010 break;
1011 case '7':
1012 if (AppliedQuad)
1013 Bitwidth /= 2;
1014 ElementBitwidth = 8;
1015 break;
1016 case '8':
1017 ElementBitwidth = 8;
1018 break;
1019 case '9':
1020 if (!AppliedQuad)
1021 Bitwidth *= 2;
1022 ElementBitwidth = 8;
1023 break;
1024 default:
1025 llvm_unreachable("Unhandled character!");
1026 }
1027 }
1028
1029 //===----------------------------------------------------------------------===//
1030 // Intrinsic implementation
1031 //===----------------------------------------------------------------------===//
1032
getInstTypeCode(Type T,ClassKind CK) const1033 std::string Intrinsic::getInstTypeCode(Type T, ClassKind CK) const {
1034 char typeCode = '\0';
1035 bool printNumber = true;
1036
1037 if (CK == ClassB)
1038 return "";
1039
1040 if (T.isPoly())
1041 typeCode = 'p';
1042 else if (T.isInteger())
1043 typeCode = T.isSigned() ? 's' : 'u';
1044 else
1045 typeCode = 'f';
1046
1047 if (CK == ClassI) {
1048 switch (typeCode) {
1049 default:
1050 break;
1051 case 's':
1052 case 'u':
1053 case 'p':
1054 typeCode = 'i';
1055 break;
1056 }
1057 }
1058 if (CK == ClassB) {
1059 typeCode = '\0';
1060 }
1061
1062 std::string S;
1063 if (typeCode != '\0')
1064 S.push_back(typeCode);
1065 if (printNumber)
1066 S += utostr(T.getElementSizeInBits());
1067
1068 return S;
1069 }
1070
isFloatingPointProtoModifier(char Mod)1071 static bool isFloatingPointProtoModifier(char Mod) {
1072 return Mod == 'F' || Mod == 'f' || Mod == 'H' || Mod == 'Y' || Mod == 'I';
1073 }
1074
getBuiltinTypeStr()1075 std::string Intrinsic::getBuiltinTypeStr() {
1076 ClassKind LocalCK = getClassKind(true);
1077 std::string S;
1078
1079 Type RetT = getReturnType();
1080 if ((LocalCK == ClassI || LocalCK == ClassW) && RetT.isScalar() &&
1081 !RetT.isFloating())
1082 RetT.makeInteger(RetT.getElementSizeInBits(), false);
1083
1084 // Since the return value must be one type, return a vector type of the
1085 // appropriate width which we will bitcast. An exception is made for
1086 // returning structs of 2, 3, or 4 vectors which are returned in a sret-like
1087 // fashion, storing them to a pointer arg.
1088 if (RetT.getNumVectors() > 1) {
1089 S += "vv*"; // void result with void* first argument
1090 } else {
1091 if (RetT.isPoly())
1092 RetT.makeInteger(RetT.getElementSizeInBits(), false);
1093 if (!RetT.isScalar() && !RetT.isSigned())
1094 RetT.makeSigned();
1095
1096 bool ForcedVectorFloatingType = isFloatingPointProtoModifier(Proto[0]);
1097 if (LocalCK == ClassB && !RetT.isScalar() && !ForcedVectorFloatingType)
1098 // Cast to vector of 8-bit elements.
1099 RetT.makeInteger(8, true);
1100
1101 S += RetT.builtin_str();
1102 }
1103
1104 for (unsigned I = 0; I < getNumParams(); ++I) {
1105 Type T = getParamType(I);
1106 if (T.isPoly())
1107 T.makeInteger(T.getElementSizeInBits(), false);
1108
1109 bool ForcedFloatingType = isFloatingPointProtoModifier(Proto[I + 1]);
1110 if (LocalCK == ClassB && !T.isScalar() && !ForcedFloatingType)
1111 T.makeInteger(8, true);
1112 // Halves always get converted to 8-bit elements.
1113 if (T.isHalf() && T.isVector() && !T.isScalarForMangling())
1114 T.makeInteger(8, true);
1115
1116 if (LocalCK == ClassI)
1117 T.makeSigned();
1118
1119 if (hasImmediate() && getImmediateIdx() == I)
1120 T.makeImmediate(32);
1121
1122 S += T.builtin_str();
1123 }
1124
1125 // Extra constant integer to hold type class enum for this function, e.g. s8
1126 if (LocalCK == ClassB)
1127 S += "i";
1128
1129 return S;
1130 }
1131
getMangledName(bool ForceClassS) const1132 std::string Intrinsic::getMangledName(bool ForceClassS) const {
1133 // Check if the prototype has a scalar operand with the type of the vector
1134 // elements. If not, bitcasting the args will take care of arg checking.
1135 // The actual signedness etc. will be taken care of with special enums.
1136 ClassKind LocalCK = CK;
1137 if (!protoHasScalar())
1138 LocalCK = ClassB;
1139
1140 return mangleName(Name, ForceClassS ? ClassS : LocalCK);
1141 }
1142
mangleName(std::string Name,ClassKind LocalCK) const1143 std::string Intrinsic::mangleName(std::string Name, ClassKind LocalCK) const {
1144 std::string typeCode = getInstTypeCode(BaseType, LocalCK);
1145 std::string S = Name;
1146
1147 if (Name == "vcvt_f16_f32" || Name == "vcvt_f32_f16" ||
1148 Name == "vcvt_f32_f64" || Name == "vcvt_f64_f32")
1149 return Name;
1150
1151 if (!typeCode.empty()) {
1152 // If the name ends with _xN (N = 2,3,4), insert the typeCode before _xN.
1153 if (Name.size() >= 3 && isdigit(Name.back()) &&
1154 Name[Name.length() - 2] == 'x' && Name[Name.length() - 3] == '_')
1155 S.insert(S.length() - 3, "_" + typeCode);
1156 else
1157 S += "_" + typeCode;
1158 }
1159
1160 if (BaseType != InBaseType) {
1161 // A reinterpret - out the input base type at the end.
1162 S += "_" + getInstTypeCode(InBaseType, LocalCK);
1163 }
1164
1165 if (LocalCK == ClassB)
1166 S += "_v";
1167
1168 // Insert a 'q' before the first '_' character so that it ends up before
1169 // _lane or _n on vector-scalar operations.
1170 if (BaseType.getSizeInBits() == 128 && !BaseType.noManglingQ()) {
1171 size_t Pos = S.find('_');
1172 S.insert(Pos, "q");
1173 }
1174
1175 char Suffix = '\0';
1176 if (BaseType.isScalarForMangling()) {
1177 switch (BaseType.getElementSizeInBits()) {
1178 case 8: Suffix = 'b'; break;
1179 case 16: Suffix = 'h'; break;
1180 case 32: Suffix = 's'; break;
1181 case 64: Suffix = 'd'; break;
1182 default: llvm_unreachable("Bad suffix!");
1183 }
1184 }
1185 if (Suffix != '\0') {
1186 size_t Pos = S.find('_');
1187 S.insert(Pos, &Suffix, 1);
1188 }
1189
1190 return S;
1191 }
1192
replaceParamsIn(std::string S)1193 std::string Intrinsic::replaceParamsIn(std::string S) {
1194 while (S.find('$') != std::string::npos) {
1195 size_t Pos = S.find('$');
1196 size_t End = Pos + 1;
1197 while (isalpha(S[End]))
1198 ++End;
1199
1200 std::string VarName = S.substr(Pos + 1, End - Pos - 1);
1201 assert_with_loc(Variables.find(VarName) != Variables.end(),
1202 "Variable not defined!");
1203 S.replace(Pos, End - Pos, Variables.find(VarName)->second.getName());
1204 }
1205
1206 return S;
1207 }
1208
initVariables()1209 void Intrinsic::initVariables() {
1210 Variables.clear();
1211
1212 // Modify the TypeSpec per-argument to get a concrete Type, and create
1213 // known variables for each.
1214 for (unsigned I = 1; I < Proto.size(); ++I) {
1215 char NameC = '0' + (I - 1);
1216 std::string Name = "p";
1217 Name.push_back(NameC);
1218
1219 Variables[Name] = Variable(Types[I], Name + VariablePostfix);
1220 }
1221 RetVar = Variable(Types[0], "ret" + VariablePostfix);
1222 }
1223
emitPrototype(StringRef NamePrefix)1224 void Intrinsic::emitPrototype(StringRef NamePrefix) {
1225 if (UseMacro)
1226 OS << "#define ";
1227 else
1228 OS << "__ai " << Types[0].str() << " ";
1229
1230 OS << NamePrefix.str() << mangleName(Name, ClassS) << "(";
1231
1232 for (unsigned I = 0; I < getNumParams(); ++I) {
1233 if (I != 0)
1234 OS << ", ";
1235
1236 char NameC = '0' + I;
1237 std::string Name = "p";
1238 Name.push_back(NameC);
1239 assert(Variables.find(Name) != Variables.end());
1240 Variable &V = Variables[Name];
1241
1242 if (!UseMacro)
1243 OS << V.getType().str() << " ";
1244 OS << V.getName();
1245 }
1246
1247 OS << ")";
1248 }
1249
emitOpeningBrace()1250 void Intrinsic::emitOpeningBrace() {
1251 if (UseMacro)
1252 OS << " __extension__ ({";
1253 else
1254 OS << " {";
1255 emitNewLine();
1256 }
1257
emitClosingBrace()1258 void Intrinsic::emitClosingBrace() {
1259 if (UseMacro)
1260 OS << "})";
1261 else
1262 OS << "}";
1263 }
1264
emitNewLine()1265 void Intrinsic::emitNewLine() {
1266 if (UseMacro)
1267 OS << " \\\n";
1268 else
1269 OS << "\n";
1270 }
1271
emitReverseVariable(Variable & Dest,Variable & Src)1272 void Intrinsic::emitReverseVariable(Variable &Dest, Variable &Src) {
1273 if (Dest.getType().getNumVectors() > 1) {
1274 emitNewLine();
1275
1276 for (unsigned K = 0; K < Dest.getType().getNumVectors(); ++K) {
1277 OS << " " << Dest.getName() << ".val[" << K << "] = "
1278 << "__builtin_shufflevector("
1279 << Src.getName() << ".val[" << K << "], "
1280 << Src.getName() << ".val[" << K << "]";
1281 for (int J = Dest.getType().getNumElements() - 1; J >= 0; --J)
1282 OS << ", " << J;
1283 OS << ");";
1284 emitNewLine();
1285 }
1286 } else {
1287 OS << " " << Dest.getName()
1288 << " = __builtin_shufflevector(" << Src.getName() << ", " << Src.getName();
1289 for (int J = Dest.getType().getNumElements() - 1; J >= 0; --J)
1290 OS << ", " << J;
1291 OS << ");";
1292 emitNewLine();
1293 }
1294 }
1295
emitArgumentReversal()1296 void Intrinsic::emitArgumentReversal() {
1297 if (BigEndianSafe)
1298 return;
1299
1300 // Reverse all vector arguments.
1301 for (unsigned I = 0; I < getNumParams(); ++I) {
1302 std::string Name = "p" + utostr(I);
1303 std::string NewName = "rev" + utostr(I);
1304
1305 Variable &V = Variables[Name];
1306 Variable NewV(V.getType(), NewName + VariablePostfix);
1307
1308 if (!NewV.getType().isVector() || NewV.getType().getNumElements() == 1)
1309 continue;
1310
1311 OS << " " << NewV.getType().str() << " " << NewV.getName() << ";";
1312 emitReverseVariable(NewV, V);
1313 V = NewV;
1314 }
1315 }
1316
emitReturnReversal()1317 void Intrinsic::emitReturnReversal() {
1318 if (BigEndianSafe)
1319 return;
1320 if (!getReturnType().isVector() || getReturnType().isVoid() ||
1321 getReturnType().getNumElements() == 1)
1322 return;
1323 emitReverseVariable(RetVar, RetVar);
1324 }
1325
emitShadowedArgs()1326 void Intrinsic::emitShadowedArgs() {
1327 // Macro arguments are not type-checked like inline function arguments,
1328 // so assign them to local temporaries to get the right type checking.
1329 if (!UseMacro)
1330 return;
1331
1332 for (unsigned I = 0; I < getNumParams(); ++I) {
1333 // Do not create a temporary for an immediate argument.
1334 // That would defeat the whole point of using a macro!
1335 if (hasImmediate() && Proto[I+1] == 'i')
1336 continue;
1337 // Do not create a temporary for pointer arguments. The input
1338 // pointer may have an alignment hint.
1339 if (getParamType(I).isPointer())
1340 continue;
1341
1342 std::string Name = "p" + utostr(I);
1343
1344 assert(Variables.find(Name) != Variables.end());
1345 Variable &V = Variables[Name];
1346
1347 std::string NewName = "s" + utostr(I);
1348 Variable V2(V.getType(), NewName + VariablePostfix);
1349
1350 OS << " " << V2.getType().str() << " " << V2.getName() << " = "
1351 << V.getName() << ";";
1352 emitNewLine();
1353
1354 V = V2;
1355 }
1356 }
1357
1358 // We don't check 'a' in this function, because for builtin function the
1359 // argument matching to 'a' uses a vector type splatted from a scalar type.
protoHasScalar() const1360 bool Intrinsic::protoHasScalar() const {
1361 return (Proto.find('s') != std::string::npos ||
1362 Proto.find('z') != std::string::npos ||
1363 Proto.find('r') != std::string::npos ||
1364 Proto.find('b') != std::string::npos ||
1365 Proto.find('$') != std::string::npos ||
1366 Proto.find('y') != std::string::npos ||
1367 Proto.find('o') != std::string::npos);
1368 }
1369
emitBodyAsBuiltinCall()1370 void Intrinsic::emitBodyAsBuiltinCall() {
1371 std::string S;
1372
1373 // If this builtin returns a struct 2, 3, or 4 vectors, pass it as an implicit
1374 // sret-like argument.
1375 bool SRet = getReturnType().getNumVectors() >= 2;
1376
1377 StringRef N = Name;
1378 if (hasSplat()) {
1379 // Call the non-splat builtin: chop off the "_n" suffix from the name.
1380 assert(N.endswith("_n"));
1381 N = N.drop_back(2);
1382 }
1383
1384 ClassKind LocalCK = CK;
1385 if (!protoHasScalar())
1386 LocalCK = ClassB;
1387
1388 if (!getReturnType().isVoid() && !SRet)
1389 S += "(" + RetVar.getType().str() + ") ";
1390
1391 S += "__builtin_neon_" + mangleName(N, LocalCK) + "(";
1392
1393 if (SRet)
1394 S += "&" + RetVar.getName() + ", ";
1395
1396 for (unsigned I = 0; I < getNumParams(); ++I) {
1397 Variable &V = Variables["p" + utostr(I)];
1398 Type T = V.getType();
1399
1400 // Handle multiple-vector values specially, emitting each subvector as an
1401 // argument to the builtin.
1402 if (T.getNumVectors() > 1) {
1403 // Check if an explicit cast is needed.
1404 std::string Cast;
1405 if (T.isChar() || T.isPoly() || !T.isSigned()) {
1406 Type T2 = T;
1407 T2.makeOneVector();
1408 T2.makeInteger(8, /*Signed=*/true);
1409 Cast = "(" + T2.str() + ")";
1410 }
1411
1412 for (unsigned J = 0; J < T.getNumVectors(); ++J)
1413 S += Cast + V.getName() + ".val[" + utostr(J) + "], ";
1414 continue;
1415 }
1416
1417 std::string Arg;
1418 Type CastToType = T;
1419 if (hasSplat() && I == getSplatIdx()) {
1420 Arg = "(" + BaseType.str() + ") {";
1421 for (unsigned J = 0; J < BaseType.getNumElements(); ++J) {
1422 if (J != 0)
1423 Arg += ", ";
1424 Arg += V.getName();
1425 }
1426 Arg += "}";
1427
1428 CastToType = BaseType;
1429 } else {
1430 Arg = V.getName();
1431 }
1432
1433 // Check if an explicit cast is needed.
1434 if (CastToType.isVector()) {
1435 CastToType.makeInteger(8, true);
1436 Arg = "(" + CastToType.str() + ")" + Arg;
1437 }
1438
1439 S += Arg + ", ";
1440 }
1441
1442 // Extra constant integer to hold type class enum for this function, e.g. s8
1443 if (getClassKind(true) == ClassB) {
1444 Type ThisTy = getReturnType();
1445 if (Proto[0] == 'v' || isFloatingPointProtoModifier(Proto[0]))
1446 ThisTy = getParamType(0);
1447 if (ThisTy.isPointer())
1448 ThisTy = getParamType(1);
1449
1450 S += utostr(ThisTy.getNeonEnum());
1451 } else {
1452 // Remove extraneous ", ".
1453 S.pop_back();
1454 S.pop_back();
1455 }
1456 S += ");";
1457
1458 std::string RetExpr;
1459 if (!SRet && !RetVar.getType().isVoid())
1460 RetExpr = RetVar.getName() + " = ";
1461
1462 OS << " " << RetExpr << S;
1463 emitNewLine();
1464 }
1465
emitBody(StringRef CallPrefix)1466 void Intrinsic::emitBody(StringRef CallPrefix) {
1467 std::vector<std::string> Lines;
1468
1469 assert(RetVar.getType() == Types[0]);
1470 // Create a return variable, if we're not void.
1471 if (!RetVar.getType().isVoid()) {
1472 OS << " " << RetVar.getType().str() << " " << RetVar.getName() << ";";
1473 emitNewLine();
1474 }
1475
1476 if (!Body || Body->getValues().empty()) {
1477 // Nothing specific to output - must output a builtin.
1478 emitBodyAsBuiltinCall();
1479 return;
1480 }
1481
1482 // We have a list of "things to output". The last should be returned.
1483 for (auto *I : Body->getValues()) {
1484 if (StringInit *SI = dyn_cast<StringInit>(I)) {
1485 Lines.push_back(replaceParamsIn(SI->getAsString()));
1486 } else if (DagInit *DI = dyn_cast<DagInit>(I)) {
1487 DagEmitter DE(*this, CallPrefix);
1488 Lines.push_back(DE.emitDag(DI).second + ";");
1489 }
1490 }
1491
1492 assert(!Lines.empty() && "Empty def?");
1493 if (!RetVar.getType().isVoid())
1494 Lines.back().insert(0, RetVar.getName() + " = ");
1495
1496 for (auto &L : Lines) {
1497 OS << " " << L;
1498 emitNewLine();
1499 }
1500 }
1501
emitReturn()1502 void Intrinsic::emitReturn() {
1503 if (RetVar.getType().isVoid())
1504 return;
1505 if (UseMacro)
1506 OS << " " << RetVar.getName() << ";";
1507 else
1508 OS << " return " << RetVar.getName() << ";";
1509 emitNewLine();
1510 }
1511
emitDag(DagInit * DI)1512 std::pair<Type, std::string> Intrinsic::DagEmitter::emitDag(DagInit *DI) {
1513 // At this point we should only be seeing a def.
1514 DefInit *DefI = cast<DefInit>(DI->getOperator());
1515 std::string Op = DefI->getAsString();
1516
1517 if (Op == "cast" || Op == "bitcast")
1518 return emitDagCast(DI, Op == "bitcast");
1519 if (Op == "shuffle")
1520 return emitDagShuffle(DI);
1521 if (Op == "dup")
1522 return emitDagDup(DI);
1523 if (Op == "dup_typed")
1524 return emitDagDupTyped(DI);
1525 if (Op == "splat")
1526 return emitDagSplat(DI);
1527 if (Op == "save_temp")
1528 return emitDagSaveTemp(DI);
1529 if (Op == "op")
1530 return emitDagOp(DI);
1531 if (Op == "call")
1532 return emitDagCall(DI);
1533 if (Op == "name_replace")
1534 return emitDagNameReplace(DI);
1535 if (Op == "literal")
1536 return emitDagLiteral(DI);
1537 assert_with_loc(false, "Unknown operation!");
1538 return std::make_pair(Type::getVoid(), "");
1539 }
1540
emitDagOp(DagInit * DI)1541 std::pair<Type, std::string> Intrinsic::DagEmitter::emitDagOp(DagInit *DI) {
1542 std::string Op = cast<StringInit>(DI->getArg(0))->getAsUnquotedString();
1543 if (DI->getNumArgs() == 2) {
1544 // Unary op.
1545 std::pair<Type, std::string> R =
1546 emitDagArg(DI->getArg(1), DI->getArgNameStr(1));
1547 return std::make_pair(R.first, Op + R.second);
1548 } else {
1549 assert(DI->getNumArgs() == 3 && "Can only handle unary and binary ops!");
1550 std::pair<Type, std::string> R1 =
1551 emitDagArg(DI->getArg(1), DI->getArgNameStr(1));
1552 std::pair<Type, std::string> R2 =
1553 emitDagArg(DI->getArg(2), DI->getArgNameStr(2));
1554 assert_with_loc(R1.first == R2.first, "Argument type mismatch!");
1555 return std::make_pair(R1.first, R1.second + " " + Op + " " + R2.second);
1556 }
1557 }
1558
emitDagCall(DagInit * DI)1559 std::pair<Type, std::string> Intrinsic::DagEmitter::emitDagCall(DagInit *DI) {
1560 std::vector<Type> Types;
1561 std::vector<std::string> Values;
1562 for (unsigned I = 0; I < DI->getNumArgs() - 1; ++I) {
1563 std::pair<Type, std::string> R =
1564 emitDagArg(DI->getArg(I + 1), DI->getArgNameStr(I + 1));
1565 Types.push_back(R.first);
1566 Values.push_back(R.second);
1567 }
1568
1569 // Look up the called intrinsic.
1570 std::string N;
1571 if (StringInit *SI = dyn_cast<StringInit>(DI->getArg(0)))
1572 N = SI->getAsUnquotedString();
1573 else
1574 N = emitDagArg(DI->getArg(0), "").second;
1575 Intrinsic &Callee = Intr.Emitter.getIntrinsic(N, Types);
1576
1577 // Make sure the callee is known as an early def.
1578 Callee.setNeededEarly();
1579 Intr.Dependencies.insert(&Callee);
1580
1581 // Now create the call itself.
1582 std::string S = CallPrefix.str() + Callee.getMangledName(true) + "(";
1583 for (unsigned I = 0; I < DI->getNumArgs() - 1; ++I) {
1584 if (I != 0)
1585 S += ", ";
1586 S += Values[I];
1587 }
1588 S += ")";
1589
1590 return std::make_pair(Callee.getReturnType(), S);
1591 }
1592
emitDagCast(DagInit * DI,bool IsBitCast)1593 std::pair<Type, std::string> Intrinsic::DagEmitter::emitDagCast(DagInit *DI,
1594 bool IsBitCast){
1595 // (cast MOD* VAL) -> cast VAL to type given by MOD.
1596 std::pair<Type, std::string> R = emitDagArg(
1597 DI->getArg(DI->getNumArgs() - 1),
1598 DI->getArgNameStr(DI->getNumArgs() - 1));
1599 Type castToType = R.first;
1600 for (unsigned ArgIdx = 0; ArgIdx < DI->getNumArgs() - 1; ++ArgIdx) {
1601
1602 // MOD can take several forms:
1603 // 1. $X - take the type of parameter / variable X.
1604 // 2. The value "R" - take the type of the return type.
1605 // 3. a type string
1606 // 4. The value "U" or "S" to switch the signedness.
1607 // 5. The value "H" or "D" to half or double the bitwidth.
1608 // 6. The value "8" to convert to 8-bit (signed) integer lanes.
1609 if (!DI->getArgNameStr(ArgIdx).empty()) {
1610 assert_with_loc(Intr.Variables.find(DI->getArgNameStr(ArgIdx)) !=
1611 Intr.Variables.end(),
1612 "Variable not found");
1613 castToType = Intr.Variables[DI->getArgNameStr(ArgIdx)].getType();
1614 } else {
1615 StringInit *SI = dyn_cast<StringInit>(DI->getArg(ArgIdx));
1616 assert_with_loc(SI, "Expected string type or $Name for cast type");
1617
1618 if (SI->getAsUnquotedString() == "R") {
1619 castToType = Intr.getReturnType();
1620 } else if (SI->getAsUnquotedString() == "U") {
1621 castToType.makeUnsigned();
1622 } else if (SI->getAsUnquotedString() == "S") {
1623 castToType.makeSigned();
1624 } else if (SI->getAsUnquotedString() == "H") {
1625 castToType.halveLanes();
1626 } else if (SI->getAsUnquotedString() == "D") {
1627 castToType.doubleLanes();
1628 } else if (SI->getAsUnquotedString() == "8") {
1629 castToType.makeInteger(8, true);
1630 } else {
1631 castToType = Type::fromTypedefName(SI->getAsUnquotedString());
1632 assert_with_loc(!castToType.isVoid(), "Unknown typedef");
1633 }
1634 }
1635 }
1636
1637 std::string S;
1638 if (IsBitCast) {
1639 // Emit a reinterpret cast. The second operand must be an lvalue, so create
1640 // a temporary.
1641 std::string N = "reint";
1642 unsigned I = 0;
1643 while (Intr.Variables.find(N) != Intr.Variables.end())
1644 N = "reint" + utostr(++I);
1645 Intr.Variables[N] = Variable(R.first, N + Intr.VariablePostfix);
1646
1647 Intr.OS << R.first.str() << " " << Intr.Variables[N].getName() << " = "
1648 << R.second << ";";
1649 Intr.emitNewLine();
1650
1651 S = "*(" + castToType.str() + " *) &" + Intr.Variables[N].getName() + "";
1652 } else {
1653 // Emit a normal (static) cast.
1654 S = "(" + castToType.str() + ")(" + R.second + ")";
1655 }
1656
1657 return std::make_pair(castToType, S);
1658 }
1659
emitDagShuffle(DagInit * DI)1660 std::pair<Type, std::string> Intrinsic::DagEmitter::emitDagShuffle(DagInit *DI){
1661 // See the documentation in arm_neon.td for a description of these operators.
1662 class LowHalf : public SetTheory::Operator {
1663 public:
1664 void apply(SetTheory &ST, DagInit *Expr, SetTheory::RecSet &Elts,
1665 ArrayRef<SMLoc> Loc) override {
1666 SetTheory::RecSet Elts2;
1667 ST.evaluate(Expr->arg_begin(), Expr->arg_end(), Elts2, Loc);
1668 Elts.insert(Elts2.begin(), Elts2.begin() + (Elts2.size() / 2));
1669 }
1670 };
1671
1672 class HighHalf : public SetTheory::Operator {
1673 public:
1674 void apply(SetTheory &ST, DagInit *Expr, SetTheory::RecSet &Elts,
1675 ArrayRef<SMLoc> Loc) override {
1676 SetTheory::RecSet Elts2;
1677 ST.evaluate(Expr->arg_begin(), Expr->arg_end(), Elts2, Loc);
1678 Elts.insert(Elts2.begin() + (Elts2.size() / 2), Elts2.end());
1679 }
1680 };
1681
1682 class Rev : public SetTheory::Operator {
1683 unsigned ElementSize;
1684
1685 public:
1686 Rev(unsigned ElementSize) : ElementSize(ElementSize) {}
1687
1688 void apply(SetTheory &ST, DagInit *Expr, SetTheory::RecSet &Elts,
1689 ArrayRef<SMLoc> Loc) override {
1690 SetTheory::RecSet Elts2;
1691 ST.evaluate(Expr->arg_begin() + 1, Expr->arg_end(), Elts2, Loc);
1692
1693 int64_t VectorSize = cast<IntInit>(Expr->getArg(0))->getValue();
1694 VectorSize /= ElementSize;
1695
1696 std::vector<Record *> Revved;
1697 for (unsigned VI = 0; VI < Elts2.size(); VI += VectorSize) {
1698 for (int LI = VectorSize - 1; LI >= 0; --LI) {
1699 Revved.push_back(Elts2[VI + LI]);
1700 }
1701 }
1702
1703 Elts.insert(Revved.begin(), Revved.end());
1704 }
1705 };
1706
1707 class MaskExpander : public SetTheory::Expander {
1708 unsigned N;
1709
1710 public:
1711 MaskExpander(unsigned N) : N(N) {}
1712
1713 void expand(SetTheory &ST, Record *R, SetTheory::RecSet &Elts) override {
1714 unsigned Addend = 0;
1715 if (R->getName() == "mask0")
1716 Addend = 0;
1717 else if (R->getName() == "mask1")
1718 Addend = N;
1719 else
1720 return;
1721 for (unsigned I = 0; I < N; ++I)
1722 Elts.insert(R->getRecords().getDef("sv" + utostr(I + Addend)));
1723 }
1724 };
1725
1726 // (shuffle arg1, arg2, sequence)
1727 std::pair<Type, std::string> Arg1 =
1728 emitDagArg(DI->getArg(0), DI->getArgNameStr(0));
1729 std::pair<Type, std::string> Arg2 =
1730 emitDagArg(DI->getArg(1), DI->getArgNameStr(1));
1731 assert_with_loc(Arg1.first == Arg2.first,
1732 "Different types in arguments to shuffle!");
1733
1734 SetTheory ST;
1735 SetTheory::RecSet Elts;
1736 ST.addOperator("lowhalf", llvm::make_unique<LowHalf>());
1737 ST.addOperator("highhalf", llvm::make_unique<HighHalf>());
1738 ST.addOperator("rev",
1739 llvm::make_unique<Rev>(Arg1.first.getElementSizeInBits()));
1740 ST.addExpander("MaskExpand",
1741 llvm::make_unique<MaskExpander>(Arg1.first.getNumElements()));
1742 ST.evaluate(DI->getArg(2), Elts, None);
1743
1744 std::string S = "__builtin_shufflevector(" + Arg1.second + ", " + Arg2.second;
1745 for (auto &E : Elts) {
1746 StringRef Name = E->getName();
1747 assert_with_loc(Name.startswith("sv"),
1748 "Incorrect element kind in shuffle mask!");
1749 S += ", " + Name.drop_front(2).str();
1750 }
1751 S += ")";
1752
1753 // Recalculate the return type - the shuffle may have halved or doubled it.
1754 Type T(Arg1.first);
1755 if (Elts.size() > T.getNumElements()) {
1756 assert_with_loc(
1757 Elts.size() == T.getNumElements() * 2,
1758 "Can only double or half the number of elements in a shuffle!");
1759 T.doubleLanes();
1760 } else if (Elts.size() < T.getNumElements()) {
1761 assert_with_loc(
1762 Elts.size() == T.getNumElements() / 2,
1763 "Can only double or half the number of elements in a shuffle!");
1764 T.halveLanes();
1765 }
1766
1767 return std::make_pair(T, S);
1768 }
1769
emitDagDup(DagInit * DI)1770 std::pair<Type, std::string> Intrinsic::DagEmitter::emitDagDup(DagInit *DI) {
1771 assert_with_loc(DI->getNumArgs() == 1, "dup() expects one argument");
1772 std::pair<Type, std::string> A = emitDagArg(DI->getArg(0),
1773 DI->getArgNameStr(0));
1774 assert_with_loc(A.first.isScalar(), "dup() expects a scalar argument");
1775
1776 Type T = Intr.getBaseType();
1777 assert_with_loc(T.isVector(), "dup() used but default type is scalar!");
1778 std::string S = "(" + T.str() + ") {";
1779 for (unsigned I = 0; I < T.getNumElements(); ++I) {
1780 if (I != 0)
1781 S += ", ";
1782 S += A.second;
1783 }
1784 S += "}";
1785
1786 return std::make_pair(T, S);
1787 }
1788
emitDagDupTyped(DagInit * DI)1789 std::pair<Type, std::string> Intrinsic::DagEmitter::emitDagDupTyped(DagInit *DI) {
1790 assert_with_loc(DI->getNumArgs() == 2, "dup_typed() expects two arguments");
1791 std::pair<Type, std::string> A = emitDagArg(DI->getArg(0),
1792 DI->getArgNameStr(0));
1793 std::pair<Type, std::string> B = emitDagArg(DI->getArg(1),
1794 DI->getArgNameStr(1));
1795 assert_with_loc(B.first.isScalar(),
1796 "dup_typed() requires a scalar as the second argument");
1797
1798 Type T = A.first;
1799 assert_with_loc(T.isVector(), "dup_typed() used but target type is scalar!");
1800 std::string S = "(" + T.str() + ") {";
1801 for (unsigned I = 0; I < T.getNumElements(); ++I) {
1802 if (I != 0)
1803 S += ", ";
1804 S += B.second;
1805 }
1806 S += "}";
1807
1808 return std::make_pair(T, S);
1809 }
1810
emitDagSplat(DagInit * DI)1811 std::pair<Type, std::string> Intrinsic::DagEmitter::emitDagSplat(DagInit *DI) {
1812 assert_with_loc(DI->getNumArgs() == 2, "splat() expects two arguments");
1813 std::pair<Type, std::string> A = emitDagArg(DI->getArg(0),
1814 DI->getArgNameStr(0));
1815 std::pair<Type, std::string> B = emitDagArg(DI->getArg(1),
1816 DI->getArgNameStr(1));
1817
1818 assert_with_loc(B.first.isScalar(),
1819 "splat() requires a scalar int as the second argument");
1820
1821 std::string S = "__builtin_shufflevector(" + A.second + ", " + A.second;
1822 for (unsigned I = 0; I < Intr.getBaseType().getNumElements(); ++I) {
1823 S += ", " + B.second;
1824 }
1825 S += ")";
1826
1827 return std::make_pair(Intr.getBaseType(), S);
1828 }
1829
emitDagSaveTemp(DagInit * DI)1830 std::pair<Type, std::string> Intrinsic::DagEmitter::emitDagSaveTemp(DagInit *DI) {
1831 assert_with_loc(DI->getNumArgs() == 2, "save_temp() expects two arguments");
1832 std::pair<Type, std::string> A = emitDagArg(DI->getArg(1),
1833 DI->getArgNameStr(1));
1834
1835 assert_with_loc(!A.first.isVoid(),
1836 "Argument to save_temp() must have non-void type!");
1837
1838 std::string N = DI->getArgNameStr(0);
1839 assert_with_loc(!N.empty(),
1840 "save_temp() expects a name as the first argument");
1841
1842 assert_with_loc(Intr.Variables.find(N) == Intr.Variables.end(),
1843 "Variable already defined!");
1844 Intr.Variables[N] = Variable(A.first, N + Intr.VariablePostfix);
1845
1846 std::string S =
1847 A.first.str() + " " + Intr.Variables[N].getName() + " = " + A.second;
1848
1849 return std::make_pair(Type::getVoid(), S);
1850 }
1851
1852 std::pair<Type, std::string>
emitDagNameReplace(DagInit * DI)1853 Intrinsic::DagEmitter::emitDagNameReplace(DagInit *DI) {
1854 std::string S = Intr.Name;
1855
1856 assert_with_loc(DI->getNumArgs() == 2, "name_replace requires 2 arguments!");
1857 std::string ToReplace = cast<StringInit>(DI->getArg(0))->getAsUnquotedString();
1858 std::string ReplaceWith = cast<StringInit>(DI->getArg(1))->getAsUnquotedString();
1859
1860 size_t Idx = S.find(ToReplace);
1861
1862 assert_with_loc(Idx != std::string::npos, "name should contain '" + ToReplace + "'!");
1863 S.replace(Idx, ToReplace.size(), ReplaceWith);
1864
1865 return std::make_pair(Type::getVoid(), S);
1866 }
1867
emitDagLiteral(DagInit * DI)1868 std::pair<Type, std::string> Intrinsic::DagEmitter::emitDagLiteral(DagInit *DI){
1869 std::string Ty = cast<StringInit>(DI->getArg(0))->getAsUnquotedString();
1870 std::string Value = cast<StringInit>(DI->getArg(1))->getAsUnquotedString();
1871 return std::make_pair(Type::fromTypedefName(Ty), Value);
1872 }
1873
1874 std::pair<Type, std::string>
emitDagArg(Init * Arg,std::string ArgName)1875 Intrinsic::DagEmitter::emitDagArg(Init *Arg, std::string ArgName) {
1876 if (!ArgName.empty()) {
1877 assert_with_loc(!Arg->isComplete(),
1878 "Arguments must either be DAGs or names, not both!");
1879 assert_with_loc(Intr.Variables.find(ArgName) != Intr.Variables.end(),
1880 "Variable not defined!");
1881 Variable &V = Intr.Variables[ArgName];
1882 return std::make_pair(V.getType(), V.getName());
1883 }
1884
1885 assert(Arg && "Neither ArgName nor Arg?!");
1886 DagInit *DI = dyn_cast<DagInit>(Arg);
1887 assert_with_loc(DI, "Arguments must either be DAGs or names!");
1888
1889 return emitDag(DI);
1890 }
1891
generate()1892 std::string Intrinsic::generate() {
1893 // Little endian intrinsics are simple and don't require any argument
1894 // swapping.
1895 OS << "#ifdef __LITTLE_ENDIAN__\n";
1896
1897 generateImpl(false, "", "");
1898
1899 OS << "#else\n";
1900
1901 // Big endian intrinsics are more complex. The user intended these
1902 // intrinsics to operate on a vector "as-if" loaded by (V)LDR,
1903 // but we load as-if (V)LD1. So we should swap all arguments and
1904 // swap the return value too.
1905 //
1906 // If we call sub-intrinsics, we should call a version that does
1907 // not re-swap the arguments!
1908 generateImpl(true, "", "__noswap_");
1909
1910 // If we're needed early, create a non-swapping variant for
1911 // big-endian.
1912 if (NeededEarly) {
1913 generateImpl(false, "__noswap_", "__noswap_");
1914 }
1915 OS << "#endif\n\n";
1916
1917 return OS.str();
1918 }
1919
generateImpl(bool ReverseArguments,StringRef NamePrefix,StringRef CallPrefix)1920 void Intrinsic::generateImpl(bool ReverseArguments,
1921 StringRef NamePrefix, StringRef CallPrefix) {
1922 CurrentRecord = R;
1923
1924 // If we call a macro, our local variables may be corrupted due to
1925 // lack of proper lexical scoping. So, add a globally unique postfix
1926 // to every variable.
1927 //
1928 // indexBody() should have set up the Dependencies set by now.
1929 for (auto *I : Dependencies)
1930 if (I->UseMacro) {
1931 VariablePostfix = "_" + utostr(Emitter.getUniqueNumber());
1932 break;
1933 }
1934
1935 initVariables();
1936
1937 emitPrototype(NamePrefix);
1938
1939 if (IsUnavailable) {
1940 OS << " __attribute__((unavailable));";
1941 } else {
1942 emitOpeningBrace();
1943 emitShadowedArgs();
1944 if (ReverseArguments)
1945 emitArgumentReversal();
1946 emitBody(CallPrefix);
1947 if (ReverseArguments)
1948 emitReturnReversal();
1949 emitReturn();
1950 emitClosingBrace();
1951 }
1952 OS << "\n";
1953
1954 CurrentRecord = nullptr;
1955 }
1956
indexBody()1957 void Intrinsic::indexBody() {
1958 CurrentRecord = R;
1959
1960 initVariables();
1961 emitBody("");
1962 OS.str("");
1963
1964 CurrentRecord = nullptr;
1965 }
1966
1967 //===----------------------------------------------------------------------===//
1968 // NeonEmitter implementation
1969 //===----------------------------------------------------------------------===//
1970
getIntrinsic(StringRef Name,ArrayRef<Type> Types)1971 Intrinsic &NeonEmitter::getIntrinsic(StringRef Name, ArrayRef<Type> Types) {
1972 // First, look up the name in the intrinsic map.
1973 assert_with_loc(IntrinsicMap.find(Name.str()) != IntrinsicMap.end(),
1974 ("Intrinsic '" + Name + "' not found!").str());
1975 auto &V = IntrinsicMap.find(Name.str())->second;
1976 std::vector<Intrinsic *> GoodVec;
1977
1978 // Create a string to print if we end up failing.
1979 std::string ErrMsg = "looking up intrinsic '" + Name.str() + "(";
1980 for (unsigned I = 0; I < Types.size(); ++I) {
1981 if (I != 0)
1982 ErrMsg += ", ";
1983 ErrMsg += Types[I].str();
1984 }
1985 ErrMsg += ")'\n";
1986 ErrMsg += "Available overloads:\n";
1987
1988 // Now, look through each intrinsic implementation and see if the types are
1989 // compatible.
1990 for (auto &I : V) {
1991 ErrMsg += " - " + I.getReturnType().str() + " " + I.getMangledName();
1992 ErrMsg += "(";
1993 for (unsigned A = 0; A < I.getNumParams(); ++A) {
1994 if (A != 0)
1995 ErrMsg += ", ";
1996 ErrMsg += I.getParamType(A).str();
1997 }
1998 ErrMsg += ")\n";
1999
2000 if (I.getNumParams() != Types.size())
2001 continue;
2002
2003 bool Good = true;
2004 for (unsigned Arg = 0; Arg < Types.size(); ++Arg) {
2005 if (I.getParamType(Arg) != Types[Arg]) {
2006 Good = false;
2007 break;
2008 }
2009 }
2010 if (Good)
2011 GoodVec.push_back(&I);
2012 }
2013
2014 assert_with_loc(!GoodVec.empty(),
2015 "No compatible intrinsic found - " + ErrMsg);
2016 assert_with_loc(GoodVec.size() == 1, "Multiple overloads found - " + ErrMsg);
2017
2018 return *GoodVec.front();
2019 }
2020
createIntrinsic(Record * R,SmallVectorImpl<Intrinsic * > & Out)2021 void NeonEmitter::createIntrinsic(Record *R,
2022 SmallVectorImpl<Intrinsic *> &Out) {
2023 std::string Name = R->getValueAsString("Name");
2024 std::string Proto = R->getValueAsString("Prototype");
2025 std::string Types = R->getValueAsString("Types");
2026 Record *OperationRec = R->getValueAsDef("Operation");
2027 bool CartesianProductOfTypes = R->getValueAsBit("CartesianProductOfTypes");
2028 bool BigEndianSafe = R->getValueAsBit("BigEndianSafe");
2029 std::string Guard = R->getValueAsString("ArchGuard");
2030 bool IsUnavailable = OperationRec->getValueAsBit("Unavailable");
2031
2032 // Set the global current record. This allows assert_with_loc to produce
2033 // decent location information even when highly nested.
2034 CurrentRecord = R;
2035
2036 ListInit *Body = OperationRec->getValueAsListInit("Ops");
2037
2038 std::vector<TypeSpec> TypeSpecs = TypeSpec::fromTypeSpecs(Types);
2039
2040 ClassKind CK = ClassNone;
2041 if (R->getSuperClasses().size() >= 2)
2042 CK = ClassMap[R->getSuperClasses()[1].first];
2043
2044 std::vector<std::pair<TypeSpec, TypeSpec>> NewTypeSpecs;
2045 for (auto TS : TypeSpecs) {
2046 if (CartesianProductOfTypes) {
2047 Type DefaultT(TS, 'd');
2048 for (auto SrcTS : TypeSpecs) {
2049 Type DefaultSrcT(SrcTS, 'd');
2050 if (TS == SrcTS ||
2051 DefaultSrcT.getSizeInBits() != DefaultT.getSizeInBits())
2052 continue;
2053 NewTypeSpecs.push_back(std::make_pair(TS, SrcTS));
2054 }
2055 } else {
2056 NewTypeSpecs.push_back(std::make_pair(TS, TS));
2057 }
2058 }
2059
2060 llvm::sort(NewTypeSpecs);
2061 NewTypeSpecs.erase(std::unique(NewTypeSpecs.begin(), NewTypeSpecs.end()),
2062 NewTypeSpecs.end());
2063 auto &Entry = IntrinsicMap[Name];
2064
2065 for (auto &I : NewTypeSpecs) {
2066 Entry.emplace_back(R, Name, Proto, I.first, I.second, CK, Body, *this,
2067 Guard, IsUnavailable, BigEndianSafe);
2068 Out.push_back(&Entry.back());
2069 }
2070
2071 CurrentRecord = nullptr;
2072 }
2073
2074 /// genBuiltinsDef: Generate the BuiltinsARM.def and BuiltinsAArch64.def
2075 /// declaration of builtins, checking for unique builtin declarations.
genBuiltinsDef(raw_ostream & OS,SmallVectorImpl<Intrinsic * > & Defs)2076 void NeonEmitter::genBuiltinsDef(raw_ostream &OS,
2077 SmallVectorImpl<Intrinsic *> &Defs) {
2078 OS << "#ifdef GET_NEON_BUILTINS\n";
2079
2080 // We only want to emit a builtin once, and we want to emit them in
2081 // alphabetical order, so use a std::set.
2082 std::set<std::string> Builtins;
2083
2084 for (auto *Def : Defs) {
2085 if (Def->hasBody())
2086 continue;
2087 // Functions with 'a' (the splat code) in the type prototype should not get
2088 // their own builtin as they use the non-splat variant.
2089 if (Def->hasSplat())
2090 continue;
2091
2092 std::string S = "BUILTIN(__builtin_neon_" + Def->getMangledName() + ", \"";
2093
2094 S += Def->getBuiltinTypeStr();
2095 S += "\", \"n\")";
2096
2097 Builtins.insert(S);
2098 }
2099
2100 for (auto &S : Builtins)
2101 OS << S << "\n";
2102 OS << "#endif\n\n";
2103 }
2104
2105 /// Generate the ARM and AArch64 overloaded type checking code for
2106 /// SemaChecking.cpp, checking for unique builtin declarations.
genOverloadTypeCheckCode(raw_ostream & OS,SmallVectorImpl<Intrinsic * > & Defs)2107 void NeonEmitter::genOverloadTypeCheckCode(raw_ostream &OS,
2108 SmallVectorImpl<Intrinsic *> &Defs) {
2109 OS << "#ifdef GET_NEON_OVERLOAD_CHECK\n";
2110
2111 // We record each overload check line before emitting because subsequent Inst
2112 // definitions may extend the number of permitted types (i.e. augment the
2113 // Mask). Use std::map to avoid sorting the table by hash number.
2114 struct OverloadInfo {
2115 uint64_t Mask;
2116 int PtrArgNum;
2117 bool HasConstPtr;
2118 OverloadInfo() : Mask(0ULL), PtrArgNum(0), HasConstPtr(false) {}
2119 };
2120 std::map<std::string, OverloadInfo> OverloadMap;
2121
2122 for (auto *Def : Defs) {
2123 // If the def has a body (that is, it has Operation DAGs), it won't call
2124 // __builtin_neon_* so we don't need to generate a definition for it.
2125 if (Def->hasBody())
2126 continue;
2127 // Functions with 'a' (the splat code) in the type prototype should not get
2128 // their own builtin as they use the non-splat variant.
2129 if (Def->hasSplat())
2130 continue;
2131 // Functions which have a scalar argument cannot be overloaded, no need to
2132 // check them if we are emitting the type checking code.
2133 if (Def->protoHasScalar())
2134 continue;
2135
2136 uint64_t Mask = 0ULL;
2137 Type Ty = Def->getReturnType();
2138 if (Def->getProto()[0] == 'v' ||
2139 isFloatingPointProtoModifier(Def->getProto()[0]))
2140 Ty = Def->getParamType(0);
2141 if (Ty.isPointer())
2142 Ty = Def->getParamType(1);
2143
2144 Mask |= 1ULL << Ty.getNeonEnum();
2145
2146 // Check if the function has a pointer or const pointer argument.
2147 std::string Proto = Def->getProto();
2148 int PtrArgNum = -1;
2149 bool HasConstPtr = false;
2150 for (unsigned I = 0; I < Def->getNumParams(); ++I) {
2151 char ArgType = Proto[I + 1];
2152 if (ArgType == 'c') {
2153 HasConstPtr = true;
2154 PtrArgNum = I;
2155 break;
2156 }
2157 if (ArgType == 'p') {
2158 PtrArgNum = I;
2159 break;
2160 }
2161 }
2162 // For sret builtins, adjust the pointer argument index.
2163 if (PtrArgNum >= 0 && Def->getReturnType().getNumVectors() > 1)
2164 PtrArgNum += 1;
2165
2166 std::string Name = Def->getName();
2167 // Omit type checking for the pointer arguments of vld1_lane, vld1_dup,
2168 // and vst1_lane intrinsics. Using a pointer to the vector element
2169 // type with one of those operations causes codegen to select an aligned
2170 // load/store instruction. If you want an unaligned operation,
2171 // the pointer argument needs to have less alignment than element type,
2172 // so just accept any pointer type.
2173 if (Name == "vld1_lane" || Name == "vld1_dup" || Name == "vst1_lane") {
2174 PtrArgNum = -1;
2175 HasConstPtr = false;
2176 }
2177
2178 if (Mask) {
2179 std::string Name = Def->getMangledName();
2180 OverloadMap.insert(std::make_pair(Name, OverloadInfo()));
2181 OverloadInfo &OI = OverloadMap[Name];
2182 OI.Mask |= Mask;
2183 OI.PtrArgNum |= PtrArgNum;
2184 OI.HasConstPtr = HasConstPtr;
2185 }
2186 }
2187
2188 for (auto &I : OverloadMap) {
2189 OverloadInfo &OI = I.second;
2190
2191 OS << "case NEON::BI__builtin_neon_" << I.first << ": ";
2192 OS << "mask = 0x" << Twine::utohexstr(OI.Mask) << "ULL";
2193 if (OI.PtrArgNum >= 0)
2194 OS << "; PtrArgNum = " << OI.PtrArgNum;
2195 if (OI.HasConstPtr)
2196 OS << "; HasConstPtr = true";
2197 OS << "; break;\n";
2198 }
2199 OS << "#endif\n\n";
2200 }
2201
genIntrinsicRangeCheckCode(raw_ostream & OS,SmallVectorImpl<Intrinsic * > & Defs)2202 void NeonEmitter::genIntrinsicRangeCheckCode(raw_ostream &OS,
2203 SmallVectorImpl<Intrinsic *> &Defs) {
2204 OS << "#ifdef GET_NEON_IMMEDIATE_CHECK\n";
2205
2206 std::set<std::string> Emitted;
2207
2208 for (auto *Def : Defs) {
2209 if (Def->hasBody())
2210 continue;
2211 // Functions with 'a' (the splat code) in the type prototype should not get
2212 // their own builtin as they use the non-splat variant.
2213 if (Def->hasSplat())
2214 continue;
2215 // Functions which do not have an immediate do not need to have range
2216 // checking code emitted.
2217 if (!Def->hasImmediate())
2218 continue;
2219 if (Emitted.find(Def->getMangledName()) != Emitted.end())
2220 continue;
2221
2222 std::string LowerBound, UpperBound;
2223
2224 Record *R = Def->getRecord();
2225 if (R->getValueAsBit("isVCVT_N")) {
2226 // VCVT between floating- and fixed-point values takes an immediate
2227 // in the range [1, 32) for f32 or [1, 64) for f64 or [1, 16) for f16.
2228 LowerBound = "1";
2229 if (Def->getBaseType().getElementSizeInBits() == 16 ||
2230 Def->getName().find('h') != std::string::npos)
2231 // VCVTh operating on FP16 intrinsics in range [1, 16)
2232 UpperBound = "15";
2233 else if (Def->getBaseType().getElementSizeInBits() == 32)
2234 UpperBound = "31";
2235 else
2236 UpperBound = "63";
2237 } else if (R->getValueAsBit("isScalarShift")) {
2238 // Right shifts have an 'r' in the name, left shifts do not. Convert
2239 // instructions have the same bounds and right shifts.
2240 if (Def->getName().find('r') != std::string::npos ||
2241 Def->getName().find("cvt") != std::string::npos)
2242 LowerBound = "1";
2243
2244 UpperBound = utostr(Def->getReturnType().getElementSizeInBits() - 1);
2245 } else if (R->getValueAsBit("isShift")) {
2246 // Builtins which are overloaded by type will need to have their upper
2247 // bound computed at Sema time based on the type constant.
2248
2249 // Right shifts have an 'r' in the name, left shifts do not.
2250 if (Def->getName().find('r') != std::string::npos)
2251 LowerBound = "1";
2252 UpperBound = "RFT(TV, true)";
2253 } else if (Def->getClassKind(true) == ClassB) {
2254 // ClassB intrinsics have a type (and hence lane number) that is only
2255 // known at runtime.
2256 if (R->getValueAsBit("isLaneQ"))
2257 UpperBound = "RFT(TV, false, true)";
2258 else
2259 UpperBound = "RFT(TV, false, false)";
2260 } else {
2261 // The immediate generally refers to a lane in the preceding argument.
2262 assert(Def->getImmediateIdx() > 0);
2263 Type T = Def->getParamType(Def->getImmediateIdx() - 1);
2264 UpperBound = utostr(T.getNumElements() - 1);
2265 }
2266
2267 // Calculate the index of the immediate that should be range checked.
2268 unsigned Idx = Def->getNumParams();
2269 if (Def->hasImmediate())
2270 Idx = Def->getGeneratedParamIdx(Def->getImmediateIdx());
2271
2272 OS << "case NEON::BI__builtin_neon_" << Def->getMangledName() << ": "
2273 << "i = " << Idx << ";";
2274 if (!LowerBound.empty())
2275 OS << " l = " << LowerBound << ";";
2276 if (!UpperBound.empty())
2277 OS << " u = " << UpperBound << ";";
2278 OS << " break;\n";
2279
2280 Emitted.insert(Def->getMangledName());
2281 }
2282
2283 OS << "#endif\n\n";
2284 }
2285
2286 /// runHeader - Emit a file with sections defining:
2287 /// 1. the NEON section of BuiltinsARM.def and BuiltinsAArch64.def.
2288 /// 2. the SemaChecking code for the type overload checking.
2289 /// 3. the SemaChecking code for validation of intrinsic immediate arguments.
runHeader(raw_ostream & OS)2290 void NeonEmitter::runHeader(raw_ostream &OS) {
2291 std::vector<Record *> RV = Records.getAllDerivedDefinitions("Inst");
2292
2293 SmallVector<Intrinsic *, 128> Defs;
2294 for (auto *R : RV)
2295 createIntrinsic(R, Defs);
2296
2297 // Generate shared BuiltinsXXX.def
2298 genBuiltinsDef(OS, Defs);
2299
2300 // Generate ARM overloaded type checking code for SemaChecking.cpp
2301 genOverloadTypeCheckCode(OS, Defs);
2302
2303 // Generate ARM range checking code for shift/lane immediates.
2304 genIntrinsicRangeCheckCode(OS, Defs);
2305 }
2306
2307 /// run - Read the records in arm_neon.td and output arm_neon.h. arm_neon.h
2308 /// is comprised of type definitions and function declarations.
run(raw_ostream & OS)2309 void NeonEmitter::run(raw_ostream &OS) {
2310 OS << "/*===---- arm_neon.h - ARM Neon intrinsics "
2311 "------------------------------"
2312 "---===\n"
2313 " *\n"
2314 " * Permission is hereby granted, free of charge, to any person "
2315 "obtaining "
2316 "a copy\n"
2317 " * of this software and associated documentation files (the "
2318 "\"Software\"),"
2319 " to deal\n"
2320 " * in the Software without restriction, including without limitation "
2321 "the "
2322 "rights\n"
2323 " * to use, copy, modify, merge, publish, distribute, sublicense, "
2324 "and/or sell\n"
2325 " * copies of the Software, and to permit persons to whom the Software "
2326 "is\n"
2327 " * furnished to do so, subject to the following conditions:\n"
2328 " *\n"
2329 " * The above copyright notice and this permission notice shall be "
2330 "included in\n"
2331 " * all copies or substantial portions of the Software.\n"
2332 " *\n"
2333 " * THE SOFTWARE IS PROVIDED \"AS IS\", WITHOUT WARRANTY OF ANY KIND, "
2334 "EXPRESS OR\n"
2335 " * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF "
2336 "MERCHANTABILITY,\n"
2337 " * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT "
2338 "SHALL THE\n"
2339 " * AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR "
2340 "OTHER\n"
2341 " * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, "
2342 "ARISING FROM,\n"
2343 " * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER "
2344 "DEALINGS IN\n"
2345 " * THE SOFTWARE.\n"
2346 " *\n"
2347 " *===-----------------------------------------------------------------"
2348 "---"
2349 "---===\n"
2350 " */\n\n";
2351
2352 OS << "#ifndef __ARM_NEON_H\n";
2353 OS << "#define __ARM_NEON_H\n\n";
2354
2355 OS << "#if !defined(__ARM_NEON)\n";
2356 OS << "#error \"NEON support not enabled\"\n";
2357 OS << "#endif\n\n";
2358
2359 OS << "#include <stdint.h>\n\n";
2360
2361 // Emit NEON-specific scalar typedefs.
2362 OS << "typedef float float32_t;\n";
2363 OS << "typedef __fp16 float16_t;\n";
2364
2365 OS << "#ifdef __aarch64__\n";
2366 OS << "typedef double float64_t;\n";
2367 OS << "#endif\n\n";
2368
2369 // For now, signedness of polynomial types depends on target
2370 OS << "#ifdef __aarch64__\n";
2371 OS << "typedef uint8_t poly8_t;\n";
2372 OS << "typedef uint16_t poly16_t;\n";
2373 OS << "typedef uint64_t poly64_t;\n";
2374 OS << "typedef __uint128_t poly128_t;\n";
2375 OS << "#else\n";
2376 OS << "typedef int8_t poly8_t;\n";
2377 OS << "typedef int16_t poly16_t;\n";
2378 OS << "#endif\n";
2379
2380 // Emit Neon vector typedefs.
2381 std::string TypedefTypes(
2382 "cQcsQsiQilQlUcQUcUsQUsUiQUiUlQUlhQhfQfdQdPcQPcPsQPsPlQPl");
2383 std::vector<TypeSpec> TDTypeVec = TypeSpec::fromTypeSpecs(TypedefTypes);
2384
2385 // Emit vector typedefs.
2386 bool InIfdef = false;
2387 for (auto &TS : TDTypeVec) {
2388 bool IsA64 = false;
2389 Type T(TS, 'd');
2390 if (T.isDouble() || (T.isPoly() && T.isLong()))
2391 IsA64 = true;
2392
2393 if (InIfdef && !IsA64) {
2394 OS << "#endif\n";
2395 InIfdef = false;
2396 }
2397 if (!InIfdef && IsA64) {
2398 OS << "#ifdef __aarch64__\n";
2399 InIfdef = true;
2400 }
2401
2402 if (T.isPoly())
2403 OS << "typedef __attribute__((neon_polyvector_type(";
2404 else
2405 OS << "typedef __attribute__((neon_vector_type(";
2406
2407 Type T2 = T;
2408 T2.makeScalar();
2409 OS << T.getNumElements() << "))) ";
2410 OS << T2.str();
2411 OS << " " << T.str() << ";\n";
2412 }
2413 if (InIfdef)
2414 OS << "#endif\n";
2415 OS << "\n";
2416
2417 // Emit struct typedefs.
2418 InIfdef = false;
2419 for (unsigned NumMembers = 2; NumMembers <= 4; ++NumMembers) {
2420 for (auto &TS : TDTypeVec) {
2421 bool IsA64 = false;
2422 Type T(TS, 'd');
2423 if (T.isDouble() || (T.isPoly() && T.isLong()))
2424 IsA64 = true;
2425
2426 if (InIfdef && !IsA64) {
2427 OS << "#endif\n";
2428 InIfdef = false;
2429 }
2430 if (!InIfdef && IsA64) {
2431 OS << "#ifdef __aarch64__\n";
2432 InIfdef = true;
2433 }
2434
2435 char M = '2' + (NumMembers - 2);
2436 Type VT(TS, M);
2437 OS << "typedef struct " << VT.str() << " {\n";
2438 OS << " " << T.str() << " val";
2439 OS << "[" << NumMembers << "]";
2440 OS << ";\n} ";
2441 OS << VT.str() << ";\n";
2442 OS << "\n";
2443 }
2444 }
2445 if (InIfdef)
2446 OS << "#endif\n";
2447 OS << "\n";
2448
2449 OS << "#define __ai static __inline__ __attribute__((__always_inline__, "
2450 "__nodebug__))\n\n";
2451
2452 SmallVector<Intrinsic *, 128> Defs;
2453 std::vector<Record *> RV = Records.getAllDerivedDefinitions("Inst");
2454 for (auto *R : RV)
2455 createIntrinsic(R, Defs);
2456
2457 for (auto *I : Defs)
2458 I->indexBody();
2459
2460 std::stable_sort(
2461 Defs.begin(), Defs.end(),
2462 [](const Intrinsic *A, const Intrinsic *B) { return *A < *B; });
2463
2464 // Only emit a def when its requirements have been met.
2465 // FIXME: This loop could be made faster, but it's fast enough for now.
2466 bool MadeProgress = true;
2467 std::string InGuard;
2468 while (!Defs.empty() && MadeProgress) {
2469 MadeProgress = false;
2470
2471 for (SmallVector<Intrinsic *, 128>::iterator I = Defs.begin();
2472 I != Defs.end(); /*No step*/) {
2473 bool DependenciesSatisfied = true;
2474 for (auto *II : (*I)->getDependencies()) {
2475 if (std::find(Defs.begin(), Defs.end(), II) != Defs.end())
2476 DependenciesSatisfied = false;
2477 }
2478 if (!DependenciesSatisfied) {
2479 // Try the next one.
2480 ++I;
2481 continue;
2482 }
2483
2484 // Emit #endif/#if pair if needed.
2485 if ((*I)->getGuard() != InGuard) {
2486 if (!InGuard.empty())
2487 OS << "#endif\n";
2488 InGuard = (*I)->getGuard();
2489 if (!InGuard.empty())
2490 OS << "#if " << InGuard << "\n";
2491 }
2492
2493 // Actually generate the intrinsic code.
2494 OS << (*I)->generate();
2495
2496 MadeProgress = true;
2497 I = Defs.erase(I);
2498 }
2499 }
2500 assert(Defs.empty() && "Some requirements were not satisfied!");
2501 if (!InGuard.empty())
2502 OS << "#endif\n";
2503
2504 OS << "\n";
2505 OS << "#undef __ai\n\n";
2506 OS << "#endif /* __ARM_NEON_H */\n";
2507 }
2508
2509 /// run - Read the records in arm_fp16.td and output arm_fp16.h. arm_fp16.h
2510 /// is comprised of type definitions and function declarations.
runFP16(raw_ostream & OS)2511 void NeonEmitter::runFP16(raw_ostream &OS) {
2512 OS << "/*===---- arm_fp16.h - ARM FP16 intrinsics "
2513 "------------------------------"
2514 "---===\n"
2515 " *\n"
2516 " * Permission is hereby granted, free of charge, to any person "
2517 "obtaining a copy\n"
2518 " * of this software and associated documentation files (the "
2519 "\"Software\"), to deal\n"
2520 " * in the Software without restriction, including without limitation "
2521 "the rights\n"
2522 " * to use, copy, modify, merge, publish, distribute, sublicense, "
2523 "and/or sell\n"
2524 " * copies of the Software, and to permit persons to whom the Software "
2525 "is\n"
2526 " * furnished to do so, subject to the following conditions:\n"
2527 " *\n"
2528 " * The above copyright notice and this permission notice shall be "
2529 "included in\n"
2530 " * all copies or substantial portions of the Software.\n"
2531 " *\n"
2532 " * THE SOFTWARE IS PROVIDED \"AS IS\", WITHOUT WARRANTY OF ANY KIND, "
2533 "EXPRESS OR\n"
2534 " * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF "
2535 "MERCHANTABILITY,\n"
2536 " * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT "
2537 "SHALL THE\n"
2538 " * AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR "
2539 "OTHER\n"
2540 " * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, "
2541 "ARISING FROM,\n"
2542 " * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER "
2543 "DEALINGS IN\n"
2544 " * THE SOFTWARE.\n"
2545 " *\n"
2546 " *===-----------------------------------------------------------------"
2547 "---"
2548 "---===\n"
2549 " */\n\n";
2550
2551 OS << "#ifndef __ARM_FP16_H\n";
2552 OS << "#define __ARM_FP16_H\n\n";
2553
2554 OS << "#include <stdint.h>\n\n";
2555
2556 OS << "typedef __fp16 float16_t;\n";
2557
2558 OS << "#define __ai static __inline__ __attribute__((__always_inline__, "
2559 "__nodebug__))\n\n";
2560
2561 SmallVector<Intrinsic *, 128> Defs;
2562 std::vector<Record *> RV = Records.getAllDerivedDefinitions("Inst");
2563 for (auto *R : RV)
2564 createIntrinsic(R, Defs);
2565
2566 for (auto *I : Defs)
2567 I->indexBody();
2568
2569 std::stable_sort(
2570 Defs.begin(), Defs.end(),
2571 [](const Intrinsic *A, const Intrinsic *B) { return *A < *B; });
2572
2573 // Only emit a def when its requirements have been met.
2574 // FIXME: This loop could be made faster, but it's fast enough for now.
2575 bool MadeProgress = true;
2576 std::string InGuard;
2577 while (!Defs.empty() && MadeProgress) {
2578 MadeProgress = false;
2579
2580 for (SmallVector<Intrinsic *, 128>::iterator I = Defs.begin();
2581 I != Defs.end(); /*No step*/) {
2582 bool DependenciesSatisfied = true;
2583 for (auto *II : (*I)->getDependencies()) {
2584 if (std::find(Defs.begin(), Defs.end(), II) != Defs.end())
2585 DependenciesSatisfied = false;
2586 }
2587 if (!DependenciesSatisfied) {
2588 // Try the next one.
2589 ++I;
2590 continue;
2591 }
2592
2593 // Emit #endif/#if pair if needed.
2594 if ((*I)->getGuard() != InGuard) {
2595 if (!InGuard.empty())
2596 OS << "#endif\n";
2597 InGuard = (*I)->getGuard();
2598 if (!InGuard.empty())
2599 OS << "#if " << InGuard << "\n";
2600 }
2601
2602 // Actually generate the intrinsic code.
2603 OS << (*I)->generate();
2604
2605 MadeProgress = true;
2606 I = Defs.erase(I);
2607 }
2608 }
2609 assert(Defs.empty() && "Some requirements were not satisfied!");
2610 if (!InGuard.empty())
2611 OS << "#endif\n";
2612
2613 OS << "\n";
2614 OS << "#undef __ai\n\n";
2615 OS << "#endif /* __ARM_FP16_H */\n";
2616 }
2617
2618 namespace clang {
2619
EmitNeon(RecordKeeper & Records,raw_ostream & OS)2620 void EmitNeon(RecordKeeper &Records, raw_ostream &OS) {
2621 NeonEmitter(Records).run(OS);
2622 }
2623
EmitFP16(RecordKeeper & Records,raw_ostream & OS)2624 void EmitFP16(RecordKeeper &Records, raw_ostream &OS) {
2625 NeonEmitter(Records).runFP16(OS);
2626 }
2627
EmitNeonSema(RecordKeeper & Records,raw_ostream & OS)2628 void EmitNeonSema(RecordKeeper &Records, raw_ostream &OS) {
2629 NeonEmitter(Records).runHeader(OS);
2630 }
2631
EmitNeonTest(RecordKeeper & Records,raw_ostream & OS)2632 void EmitNeonTest(RecordKeeper &Records, raw_ostream &OS) {
2633 llvm_unreachable("Neon test generation no longer implemented!");
2634 }
2635
2636 } // end namespace clang
2637