1 //===- AddressSanitizer.cpp - memory error detector -----------------------===//
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 file is a part of AddressSanitizer, an address sanity checker.
11 // Details of the algorithm:
12 //  https://github.com/google/sanitizers/wiki/AddressSanitizerAlgorithm
13 //
14 //===----------------------------------------------------------------------===//
15 
16 #include "llvm/ADT/ArrayRef.h"
17 #include "llvm/ADT/DenseMap.h"
18 #include "llvm/ADT/DepthFirstIterator.h"
19 #include "llvm/ADT/SmallPtrSet.h"
20 #include "llvm/ADT/SmallVector.h"
21 #include "llvm/ADT/Statistic.h"
22 #include "llvm/ADT/StringExtras.h"
23 #include "llvm/ADT/StringRef.h"
24 #include "llvm/ADT/Triple.h"
25 #include "llvm/ADT/Twine.h"
26 #include "llvm/Analysis/MemoryBuiltins.h"
27 #include "llvm/Analysis/TargetLibraryInfo.h"
28 #include "llvm/Transforms/Utils/Local.h"
29 #include "llvm/Analysis/ValueTracking.h"
30 #include "llvm/BinaryFormat/MachO.h"
31 #include "llvm/IR/Argument.h"
32 #include "llvm/IR/Attributes.h"
33 #include "llvm/IR/BasicBlock.h"
34 #include "llvm/IR/CallSite.h"
35 #include "llvm/IR/Comdat.h"
36 #include "llvm/IR/Constant.h"
37 #include "llvm/IR/Constants.h"
38 #include "llvm/IR/DIBuilder.h"
39 #include "llvm/IR/DataLayout.h"
40 #include "llvm/IR/DebugInfoMetadata.h"
41 #include "llvm/IR/DebugLoc.h"
42 #include "llvm/IR/DerivedTypes.h"
43 #include "llvm/IR/Dominators.h"
44 #include "llvm/IR/Function.h"
45 #include "llvm/IR/GlobalAlias.h"
46 #include "llvm/IR/GlobalValue.h"
47 #include "llvm/IR/GlobalVariable.h"
48 #include "llvm/IR/IRBuilder.h"
49 #include "llvm/IR/InlineAsm.h"
50 #include "llvm/IR/InstVisitor.h"
51 #include "llvm/IR/InstrTypes.h"
52 #include "llvm/IR/Instruction.h"
53 #include "llvm/IR/Instructions.h"
54 #include "llvm/IR/IntrinsicInst.h"
55 #include "llvm/IR/Intrinsics.h"
56 #include "llvm/IR/LLVMContext.h"
57 #include "llvm/IR/MDBuilder.h"
58 #include "llvm/IR/Metadata.h"
59 #include "llvm/IR/Module.h"
60 #include "llvm/IR/Type.h"
61 #include "llvm/IR/Use.h"
62 #include "llvm/IR/Value.h"
63 #include "llvm/MC/MCSectionMachO.h"
64 #include "llvm/Pass.h"
65 #include "llvm/Support/Casting.h"
66 #include "llvm/Support/CommandLine.h"
67 #include "llvm/Support/Debug.h"
68 #include "llvm/Support/ErrorHandling.h"
69 #include "llvm/Support/MathExtras.h"
70 #include "llvm/Support/ScopedPrinter.h"
71 #include "llvm/Support/raw_ostream.h"
72 #include "llvm/Transforms/Instrumentation.h"
73 #include "llvm/Transforms/Utils/ASanStackFrameLayout.h"
74 #include "llvm/Transforms/Utils/BasicBlockUtils.h"
75 #include "llvm/Transforms/Utils/ModuleUtils.h"
76 #include "llvm/Transforms/Utils/PromoteMemToReg.h"
77 #include <algorithm>
78 #include <cassert>
79 #include <cstddef>
80 #include <cstdint>
81 #include <iomanip>
82 #include <limits>
83 #include <memory>
84 #include <sstream>
85 #include <string>
86 #include <tuple>
87 
88 using namespace llvm;
89 
90 #define DEBUG_TYPE "asan"
91 
92 static const uint64_t kDefaultShadowScale = 3;
93 static const uint64_t kDefaultShadowOffset32 = 1ULL << 29;
94 static const uint64_t kDefaultShadowOffset64 = 1ULL << 44;
95 static const uint64_t kDynamicShadowSentinel =
96     std::numeric_limits<uint64_t>::max();
97 static const uint64_t kIOSShadowOffset32 = 1ULL << 30;
98 static const uint64_t kIOSSimShadowOffset32 = 1ULL << 30;
99 static const uint64_t kIOSSimShadowOffset64 = kDefaultShadowOffset64;
100 static const uint64_t kSmallX86_64ShadowOffsetBase = 0x7FFFFFFF;  // < 2G.
101 static const uint64_t kSmallX86_64ShadowOffsetAlignMask = ~0xFFFULL;
102 static const uint64_t kLinuxKasan_ShadowOffset64 = 0xdffffc0000000000;
103 static const uint64_t kPPC64_ShadowOffset64 = 1ULL << 44;
104 static const uint64_t kSystemZ_ShadowOffset64 = 1ULL << 52;
105 static const uint64_t kMIPS32_ShadowOffset32 = 0x0aaa0000;
106 static const uint64_t kMIPS64_ShadowOffset64 = 1ULL << 37;
107 static const uint64_t kAArch64_ShadowOffset64 = 1ULL << 36;
108 static const uint64_t kFreeBSD_ShadowOffset32 = 1ULL << 30;
109 static const uint64_t kFreeBSD_ShadowOffset64 = 1ULL << 46;
110 static const uint64_t kNetBSD_ShadowOffset32 = 1ULL << 30;
111 static const uint64_t kNetBSD_ShadowOffset64 = 1ULL << 46;
112 static const uint64_t kPS4CPU_ShadowOffset64 = 1ULL << 40;
113 static const uint64_t kWindowsShadowOffset32 = 3ULL << 28;
114 
115 static const uint64_t kMyriadShadowScale = 5;
116 static const uint64_t kMyriadMemoryOffset32 = 0x80000000ULL;
117 static const uint64_t kMyriadMemorySize32 = 0x20000000ULL;
118 static const uint64_t kMyriadTagShift = 29;
119 static const uint64_t kMyriadDDRTag = 4;
120 static const uint64_t kMyriadCacheBitMask32 = 0x40000000ULL;
121 
122 // The shadow memory space is dynamically allocated.
123 static const uint64_t kWindowsShadowOffset64 = kDynamicShadowSentinel;
124 
125 static const size_t kMinStackMallocSize = 1 << 6;   // 64B
126 static const size_t kMaxStackMallocSize = 1 << 16;  // 64K
127 static const uintptr_t kCurrentStackFrameMagic = 0x41B58AB3;
128 static const uintptr_t kRetiredStackFrameMagic = 0x45E0360E;
129 
130 static const char *const kAsanModuleCtorName = "asan.module_ctor";
131 static const char *const kAsanModuleDtorName = "asan.module_dtor";
132 static const uint64_t kAsanCtorAndDtorPriority = 1;
133 static const char *const kAsanReportErrorTemplate = "__asan_report_";
134 static const char *const kAsanRegisterGlobalsName = "__asan_register_globals";
135 static const char *const kAsanUnregisterGlobalsName =
136     "__asan_unregister_globals";
137 static const char *const kAsanRegisterImageGlobalsName =
138   "__asan_register_image_globals";
139 static const char *const kAsanUnregisterImageGlobalsName =
140   "__asan_unregister_image_globals";
141 static const char *const kAsanRegisterElfGlobalsName =
142   "__asan_register_elf_globals";
143 static const char *const kAsanUnregisterElfGlobalsName =
144   "__asan_unregister_elf_globals";
145 static const char *const kAsanPoisonGlobalsName = "__asan_before_dynamic_init";
146 static const char *const kAsanUnpoisonGlobalsName = "__asan_after_dynamic_init";
147 static const char *const kAsanInitName = "__asan_init";
148 static const char *const kAsanVersionCheckNamePrefix =
149     "__asan_version_mismatch_check_v";
150 static const char *const kAsanPtrCmp = "__sanitizer_ptr_cmp";
151 static const char *const kAsanPtrSub = "__sanitizer_ptr_sub";
152 static const char *const kAsanHandleNoReturnName = "__asan_handle_no_return";
153 static const int kMaxAsanStackMallocSizeClass = 10;
154 static const char *const kAsanStackMallocNameTemplate = "__asan_stack_malloc_";
155 static const char *const kAsanStackFreeNameTemplate = "__asan_stack_free_";
156 static const char *const kAsanGenPrefix = "___asan_gen_";
157 static const char *const kODRGenPrefix = "__odr_asan_gen_";
158 static const char *const kSanCovGenPrefix = "__sancov_gen_";
159 static const char *const kAsanSetShadowPrefix = "__asan_set_shadow_";
160 static const char *const kAsanPoisonStackMemoryName =
161     "__asan_poison_stack_memory";
162 static const char *const kAsanUnpoisonStackMemoryName =
163     "__asan_unpoison_stack_memory";
164 
165 // ASan version script has __asan_* wildcard. Triple underscore prevents a
166 // linker (gold) warning about attempting to export a local symbol.
167 static const char *const kAsanGlobalsRegisteredFlagName =
168     "___asan_globals_registered";
169 
170 static const char *const kAsanOptionDetectUseAfterReturn =
171     "__asan_option_detect_stack_use_after_return";
172 
173 static const char *const kAsanShadowMemoryDynamicAddress =
174     "__asan_shadow_memory_dynamic_address";
175 
176 static const char *const kAsanAllocaPoison = "__asan_alloca_poison";
177 static const char *const kAsanAllocasUnpoison = "__asan_allocas_unpoison";
178 
179 // Accesses sizes are powers of two: 1, 2, 4, 8, 16.
180 static const size_t kNumberOfAccessSizes = 5;
181 
182 static const unsigned kAllocaRzSize = 32;
183 
184 // Command-line flags.
185 
186 static cl::opt<bool> ClEnableKasan(
187     "asan-kernel", cl::desc("Enable KernelAddressSanitizer instrumentation"),
188     cl::Hidden, cl::init(false));
189 
190 static cl::opt<bool> ClRecover(
191     "asan-recover",
192     cl::desc("Enable recovery mode (continue-after-error)."),
193     cl::Hidden, cl::init(false));
194 
195 // This flag may need to be replaced with -f[no-]asan-reads.
196 static cl::opt<bool> ClInstrumentReads("asan-instrument-reads",
197                                        cl::desc("instrument read instructions"),
198                                        cl::Hidden, cl::init(true));
199 
200 static cl::opt<bool> ClInstrumentWrites(
201     "asan-instrument-writes", cl::desc("instrument write instructions"),
202     cl::Hidden, cl::init(true));
203 
204 static cl::opt<bool> ClInstrumentAtomics(
205     "asan-instrument-atomics",
206     cl::desc("instrument atomic instructions (rmw, cmpxchg)"), cl::Hidden,
207     cl::init(true));
208 
209 static cl::opt<bool> ClAlwaysSlowPath(
210     "asan-always-slow-path",
211     cl::desc("use instrumentation with slow path for all accesses"), cl::Hidden,
212     cl::init(false));
213 
214 static cl::opt<bool> ClForceDynamicShadow(
215     "asan-force-dynamic-shadow",
216     cl::desc("Load shadow address into a local variable for each function"),
217     cl::Hidden, cl::init(false));
218 
219 static cl::opt<bool>
220     ClWithIfunc("asan-with-ifunc",
221                 cl::desc("Access dynamic shadow through an ifunc global on "
222                          "platforms that support this"),
223                 cl::Hidden, cl::init(true));
224 
225 static cl::opt<bool> ClWithIfuncSuppressRemat(
226     "asan-with-ifunc-suppress-remat",
227     cl::desc("Suppress rematerialization of dynamic shadow address by passing "
228              "it through inline asm in prologue."),
229     cl::Hidden, cl::init(true));
230 
231 // This flag limits the number of instructions to be instrumented
232 // in any given BB. Normally, this should be set to unlimited (INT_MAX),
233 // but due to http://llvm.org/bugs/show_bug.cgi?id=12652 we temporary
234 // set it to 10000.
235 static cl::opt<int> ClMaxInsnsToInstrumentPerBB(
236     "asan-max-ins-per-bb", cl::init(10000),
237     cl::desc("maximal number of instructions to instrument in any given BB"),
238     cl::Hidden);
239 
240 // This flag may need to be replaced with -f[no]asan-stack.
241 static cl::opt<bool> ClStack("asan-stack", cl::desc("Handle stack memory"),
242                              cl::Hidden, cl::init(true));
243 static cl::opt<uint32_t> ClMaxInlinePoisoningSize(
244     "asan-max-inline-poisoning-size",
245     cl::desc(
246         "Inline shadow poisoning for blocks up to the given size in bytes."),
247     cl::Hidden, cl::init(64));
248 
249 static cl::opt<bool> ClUseAfterReturn("asan-use-after-return",
250                                       cl::desc("Check stack-use-after-return"),
251                                       cl::Hidden, cl::init(true));
252 
253 static cl::opt<bool> ClRedzoneByvalArgs("asan-redzone-byval-args",
254                                         cl::desc("Create redzones for byval "
255                                                  "arguments (extra copy "
256                                                  "required)"), cl::Hidden,
257                                         cl::init(true));
258 
259 static cl::opt<bool> ClUseAfterScope("asan-use-after-scope",
260                                      cl::desc("Check stack-use-after-scope"),
261                                      cl::Hidden, cl::init(false));
262 
263 // This flag may need to be replaced with -f[no]asan-globals.
264 static cl::opt<bool> ClGlobals("asan-globals",
265                                cl::desc("Handle global objects"), cl::Hidden,
266                                cl::init(true));
267 
268 static cl::opt<bool> ClInitializers("asan-initialization-order",
269                                     cl::desc("Handle C++ initializer order"),
270                                     cl::Hidden, cl::init(true));
271 
272 static cl::opt<bool> ClInvalidPointerPairs(
273     "asan-detect-invalid-pointer-pair",
274     cl::desc("Instrument <, <=, >, >=, - with pointer operands"), cl::Hidden,
275     cl::init(false));
276 
277 static cl::opt<unsigned> ClRealignStack(
278     "asan-realign-stack",
279     cl::desc("Realign stack to the value of this flag (power of two)"),
280     cl::Hidden, cl::init(32));
281 
282 static cl::opt<int> ClInstrumentationWithCallsThreshold(
283     "asan-instrumentation-with-call-threshold",
284     cl::desc(
285         "If the function being instrumented contains more than "
286         "this number of memory accesses, use callbacks instead of "
287         "inline checks (-1 means never use callbacks)."),
288     cl::Hidden, cl::init(7000));
289 
290 static cl::opt<std::string> ClMemoryAccessCallbackPrefix(
291     "asan-memory-access-callback-prefix",
292     cl::desc("Prefix for memory access callbacks"), cl::Hidden,
293     cl::init("__asan_"));
294 
295 static cl::opt<bool>
296     ClInstrumentDynamicAllocas("asan-instrument-dynamic-allocas",
297                                cl::desc("instrument dynamic allocas"),
298                                cl::Hidden, cl::init(true));
299 
300 static cl::opt<bool> ClSkipPromotableAllocas(
301     "asan-skip-promotable-allocas",
302     cl::desc("Do not instrument promotable allocas"), cl::Hidden,
303     cl::init(true));
304 
305 // These flags allow to change the shadow mapping.
306 // The shadow mapping looks like
307 //    Shadow = (Mem >> scale) + offset
308 
309 static cl::opt<int> ClMappingScale("asan-mapping-scale",
310                                    cl::desc("scale of asan shadow mapping"),
311                                    cl::Hidden, cl::init(0));
312 
313 static cl::opt<unsigned long long> ClMappingOffset(
314     "asan-mapping-offset",
315     cl::desc("offset of asan shadow mapping [EXPERIMENTAL]"), cl::Hidden,
316     cl::init(0));
317 
318 // Optimization flags. Not user visible, used mostly for testing
319 // and benchmarking the tool.
320 
321 static cl::opt<bool> ClOpt("asan-opt", cl::desc("Optimize instrumentation"),
322                            cl::Hidden, cl::init(true));
323 
324 static cl::opt<bool> ClOptSameTemp(
325     "asan-opt-same-temp", cl::desc("Instrument the same temp just once"),
326     cl::Hidden, cl::init(true));
327 
328 static cl::opt<bool> ClOptGlobals("asan-opt-globals",
329                                   cl::desc("Don't instrument scalar globals"),
330                                   cl::Hidden, cl::init(true));
331 
332 static cl::opt<bool> ClOptStack(
333     "asan-opt-stack", cl::desc("Don't instrument scalar stack variables"),
334     cl::Hidden, cl::init(false));
335 
336 static cl::opt<bool> ClDynamicAllocaStack(
337     "asan-stack-dynamic-alloca",
338     cl::desc("Use dynamic alloca to represent stack variables"), cl::Hidden,
339     cl::init(true));
340 
341 static cl::opt<uint32_t> ClForceExperiment(
342     "asan-force-experiment",
343     cl::desc("Force optimization experiment (for testing)"), cl::Hidden,
344     cl::init(0));
345 
346 static cl::opt<bool>
347     ClUsePrivateAliasForGlobals("asan-use-private-alias",
348                                 cl::desc("Use private aliases for global"
349                                          " variables"),
350                                 cl::Hidden, cl::init(false));
351 
352 static cl::opt<bool>
353     ClUseGlobalsGC("asan-globals-live-support",
354                    cl::desc("Use linker features to support dead "
355                             "code stripping of globals"),
356                    cl::Hidden, cl::init(true));
357 
358 // This is on by default even though there is a bug in gold:
359 // https://sourceware.org/bugzilla/show_bug.cgi?id=19002
360 static cl::opt<bool>
361     ClWithComdat("asan-with-comdat",
362                  cl::desc("Place ASan constructors in comdat sections"),
363                  cl::Hidden, cl::init(true));
364 
365 // Debug flags.
366 
367 static cl::opt<int> ClDebug("asan-debug", cl::desc("debug"), cl::Hidden,
368                             cl::init(0));
369 
370 static cl::opt<int> ClDebugStack("asan-debug-stack", cl::desc("debug stack"),
371                                  cl::Hidden, cl::init(0));
372 
373 static cl::opt<std::string> ClDebugFunc("asan-debug-func", cl::Hidden,
374                                         cl::desc("Debug func"));
375 
376 static cl::opt<int> ClDebugMin("asan-debug-min", cl::desc("Debug min inst"),
377                                cl::Hidden, cl::init(-1));
378 
379 static cl::opt<int> ClDebugMax("asan-debug-max", cl::desc("Debug max inst"),
380                                cl::Hidden, cl::init(-1));
381 
382 STATISTIC(NumInstrumentedReads, "Number of instrumented reads");
383 STATISTIC(NumInstrumentedWrites, "Number of instrumented writes");
384 STATISTIC(NumOptimizedAccessesToGlobalVar,
385           "Number of optimized accesses to global vars");
386 STATISTIC(NumOptimizedAccessesToStackVar,
387           "Number of optimized accesses to stack vars");
388 
389 namespace {
390 
391 /// Frontend-provided metadata for source location.
392 struct LocationMetadata {
393   StringRef Filename;
394   int LineNo = 0;
395   int ColumnNo = 0;
396 
397   LocationMetadata() = default;
398 
399   bool empty() const { return Filename.empty(); }
400 
401   void parse(MDNode *MDN) {
402     assert(MDN->getNumOperands() == 3);
403     MDString *DIFilename = cast<MDString>(MDN->getOperand(0));
404     Filename = DIFilename->getString();
405     LineNo =
406         mdconst::extract<ConstantInt>(MDN->getOperand(1))->getLimitedValue();
407     ColumnNo =
408         mdconst::extract<ConstantInt>(MDN->getOperand(2))->getLimitedValue();
409   }
410 };
411 
412 /// Frontend-provided metadata for global variables.
413 class GlobalsMetadata {
414 public:
415   struct Entry {
416     LocationMetadata SourceLoc;
417     StringRef Name;
418     bool IsDynInit = false;
419     bool IsBlacklisted = false;
420 
421     Entry() = default;
422   };
423 
424   GlobalsMetadata() = default;
425 
426   void reset() {
427     inited_ = false;
428     Entries.clear();
429   }
430 
431   void init(Module &M) {
432     assert(!inited_);
433     inited_ = true;
434     NamedMDNode *Globals = M.getNamedMetadata("llvm.asan.globals");
435     if (!Globals) return;
436     for (auto MDN : Globals->operands()) {
437       // Metadata node contains the global and the fields of "Entry".
438       assert(MDN->getNumOperands() == 5);
439       auto *GV = mdconst::extract_or_null<GlobalVariable>(MDN->getOperand(0));
440       // The optimizer may optimize away a global entirely.
441       if (!GV) continue;
442       // We can already have an entry for GV if it was merged with another
443       // global.
444       Entry &E = Entries[GV];
445       if (auto *Loc = cast_or_null<MDNode>(MDN->getOperand(1)))
446         E.SourceLoc.parse(Loc);
447       if (auto *Name = cast_or_null<MDString>(MDN->getOperand(2)))
448         E.Name = Name->getString();
449       ConstantInt *IsDynInit =
450           mdconst::extract<ConstantInt>(MDN->getOperand(3));
451       E.IsDynInit |= IsDynInit->isOne();
452       ConstantInt *IsBlacklisted =
453           mdconst::extract<ConstantInt>(MDN->getOperand(4));
454       E.IsBlacklisted |= IsBlacklisted->isOne();
455     }
456   }
457 
458   /// Returns metadata entry for a given global.
459   Entry get(GlobalVariable *G) const {
460     auto Pos = Entries.find(G);
461     return (Pos != Entries.end()) ? Pos->second : Entry();
462   }
463 
464 private:
465   bool inited_ = false;
466   DenseMap<GlobalVariable *, Entry> Entries;
467 };
468 
469 /// This struct defines the shadow mapping using the rule:
470 ///   shadow = (mem >> Scale) ADD-or-OR Offset.
471 /// If InGlobal is true, then
472 ///   extern char __asan_shadow[];
473 ///   shadow = (mem >> Scale) + &__asan_shadow
474 struct ShadowMapping {
475   int Scale;
476   uint64_t Offset;
477   bool OrShadowOffset;
478   bool InGlobal;
479 };
480 
481 } // end anonymous namespace
482 
483 static ShadowMapping getShadowMapping(Triple &TargetTriple, int LongSize,
484                                       bool IsKasan) {
485   bool IsAndroid = TargetTriple.isAndroid();
486   bool IsIOS = TargetTriple.isiOS() || TargetTriple.isWatchOS();
487   bool IsFreeBSD = TargetTriple.isOSFreeBSD();
488   bool IsNetBSD = TargetTriple.isOSNetBSD();
489   bool IsPS4CPU = TargetTriple.isPS4CPU();
490   bool IsLinux = TargetTriple.isOSLinux();
491   bool IsPPC64 = TargetTriple.getArch() == Triple::ppc64 ||
492                  TargetTriple.getArch() == Triple::ppc64le;
493   bool IsSystemZ = TargetTriple.getArch() == Triple::systemz;
494   bool IsX86 = TargetTriple.getArch() == Triple::x86;
495   bool IsX86_64 = TargetTriple.getArch() == Triple::x86_64;
496   bool IsMIPS32 = TargetTriple.isMIPS32();
497   bool IsMIPS64 = TargetTriple.isMIPS64();
498   bool IsArmOrThumb = TargetTriple.isARM() || TargetTriple.isThumb();
499   bool IsAArch64 = TargetTriple.getArch() == Triple::aarch64;
500   bool IsWindows = TargetTriple.isOSWindows();
501   bool IsFuchsia = TargetTriple.isOSFuchsia();
502   bool IsMyriad = TargetTriple.getVendor() == llvm::Triple::Myriad;
503 
504   ShadowMapping Mapping;
505 
506   Mapping.Scale = IsMyriad ? kMyriadShadowScale : kDefaultShadowScale;
507   if (ClMappingScale.getNumOccurrences() > 0) {
508     Mapping.Scale = ClMappingScale;
509   }
510 
511   if (LongSize == 32) {
512     if (IsAndroid)
513       Mapping.Offset = kDynamicShadowSentinel;
514     else if (IsMIPS32)
515       Mapping.Offset = kMIPS32_ShadowOffset32;
516     else if (IsFreeBSD)
517       Mapping.Offset = kFreeBSD_ShadowOffset32;
518     else if (IsNetBSD)
519       Mapping.Offset = kNetBSD_ShadowOffset32;
520     else if (IsIOS)
521       // If we're targeting iOS and x86, the binary is built for iOS simulator.
522       Mapping.Offset = IsX86 ? kIOSSimShadowOffset32 : kIOSShadowOffset32;
523     else if (IsWindows)
524       Mapping.Offset = kWindowsShadowOffset32;
525     else if (IsMyriad) {
526       uint64_t ShadowOffset = (kMyriadMemoryOffset32 + kMyriadMemorySize32 -
527                                (kMyriadMemorySize32 >> Mapping.Scale));
528       Mapping.Offset = ShadowOffset - (kMyriadMemoryOffset32 >> Mapping.Scale);
529     }
530     else
531       Mapping.Offset = kDefaultShadowOffset32;
532   } else {  // LongSize == 64
533     // Fuchsia is always PIE, which means that the beginning of the address
534     // space is always available.
535     if (IsFuchsia)
536       Mapping.Offset = 0;
537     else if (IsPPC64)
538       Mapping.Offset = kPPC64_ShadowOffset64;
539     else if (IsSystemZ)
540       Mapping.Offset = kSystemZ_ShadowOffset64;
541     else if (IsFreeBSD && !IsMIPS64)
542       Mapping.Offset = kFreeBSD_ShadowOffset64;
543     else if (IsNetBSD)
544       Mapping.Offset = kNetBSD_ShadowOffset64;
545     else if (IsPS4CPU)
546       Mapping.Offset = kPS4CPU_ShadowOffset64;
547     else if (IsLinux && IsX86_64) {
548       if (IsKasan)
549         Mapping.Offset = kLinuxKasan_ShadowOffset64;
550       else
551         Mapping.Offset = (kSmallX86_64ShadowOffsetBase &
552                           (kSmallX86_64ShadowOffsetAlignMask << Mapping.Scale));
553     } else if (IsWindows && IsX86_64) {
554       Mapping.Offset = kWindowsShadowOffset64;
555     } else if (IsMIPS64)
556       Mapping.Offset = kMIPS64_ShadowOffset64;
557     else if (IsIOS)
558       // If we're targeting iOS and x86, the binary is built for iOS simulator.
559       // We are using dynamic shadow offset on the 64-bit devices.
560       Mapping.Offset =
561         IsX86_64 ? kIOSSimShadowOffset64 : kDynamicShadowSentinel;
562     else if (IsAArch64)
563       Mapping.Offset = kAArch64_ShadowOffset64;
564     else
565       Mapping.Offset = kDefaultShadowOffset64;
566   }
567 
568   if (ClForceDynamicShadow) {
569     Mapping.Offset = kDynamicShadowSentinel;
570   }
571 
572   if (ClMappingOffset.getNumOccurrences() > 0) {
573     Mapping.Offset = ClMappingOffset;
574   }
575 
576   // OR-ing shadow offset if more efficient (at least on x86) if the offset
577   // is a power of two, but on ppc64 we have to use add since the shadow
578   // offset is not necessary 1/8-th of the address space.  On SystemZ,
579   // we could OR the constant in a single instruction, but it's more
580   // efficient to load it once and use indexed addressing.
581   Mapping.OrShadowOffset = !IsAArch64 && !IsPPC64 && !IsSystemZ && !IsPS4CPU &&
582                            !(Mapping.Offset & (Mapping.Offset - 1)) &&
583                            Mapping.Offset != kDynamicShadowSentinel;
584   bool IsAndroidWithIfuncSupport =
585       IsAndroid && !TargetTriple.isAndroidVersionLT(21);
586   Mapping.InGlobal = ClWithIfunc && IsAndroidWithIfuncSupport && IsArmOrThumb;
587 
588   return Mapping;
589 }
590 
591 static size_t RedzoneSizeForScale(int MappingScale) {
592   // Redzone used for stack and globals is at least 32 bytes.
593   // For scales 6 and 7, the redzone has to be 64 and 128 bytes respectively.
594   return std::max(32U, 1U << MappingScale);
595 }
596 
597 namespace {
598 
599 /// AddressSanitizer: instrument the code in module to find memory bugs.
600 struct AddressSanitizer : public FunctionPass {
601   // Pass identification, replacement for typeid
602   static char ID;
603 
604   explicit AddressSanitizer(bool CompileKernel = false, bool Recover = false,
605                             bool UseAfterScope = false)
606       : FunctionPass(ID), UseAfterScope(UseAfterScope || ClUseAfterScope) {
607     this->Recover = ClRecover.getNumOccurrences() > 0 ? ClRecover : Recover;
608     this->CompileKernel = ClEnableKasan.getNumOccurrences() > 0 ?
609         ClEnableKasan : CompileKernel;
610     initializeAddressSanitizerPass(*PassRegistry::getPassRegistry());
611   }
612 
613   StringRef getPassName() const override {
614     return "AddressSanitizerFunctionPass";
615   }
616 
617   void getAnalysisUsage(AnalysisUsage &AU) const override {
618     AU.addRequired<DominatorTreeWrapperPass>();
619     AU.addRequired<TargetLibraryInfoWrapperPass>();
620   }
621 
622   uint64_t getAllocaSizeInBytes(const AllocaInst &AI) const {
623     uint64_t ArraySize = 1;
624     if (AI.isArrayAllocation()) {
625       const ConstantInt *CI = dyn_cast<ConstantInt>(AI.getArraySize());
626       assert(CI && "non-constant array size");
627       ArraySize = CI->getZExtValue();
628     }
629     Type *Ty = AI.getAllocatedType();
630     uint64_t SizeInBytes =
631         AI.getModule()->getDataLayout().getTypeAllocSize(Ty);
632     return SizeInBytes * ArraySize;
633   }
634 
635   /// Check if we want (and can) handle this alloca.
636   bool isInterestingAlloca(const AllocaInst &AI);
637 
638   /// If it is an interesting memory access, return the PointerOperand
639   /// and set IsWrite/Alignment. Otherwise return nullptr.
640   /// MaybeMask is an output parameter for the mask Value, if we're looking at a
641   /// masked load/store.
642   Value *isInterestingMemoryAccess(Instruction *I, bool *IsWrite,
643                                    uint64_t *TypeSize, unsigned *Alignment,
644                                    Value **MaybeMask = nullptr);
645 
646   void instrumentMop(ObjectSizeOffsetVisitor &ObjSizeVis, Instruction *I,
647                      bool UseCalls, const DataLayout &DL);
648   void instrumentPointerComparisonOrSubtraction(Instruction *I);
649   void instrumentAddress(Instruction *OrigIns, Instruction *InsertBefore,
650                          Value *Addr, uint32_t TypeSize, bool IsWrite,
651                          Value *SizeArgument, bool UseCalls, uint32_t Exp);
652   void instrumentUnusualSizeOrAlignment(Instruction *I,
653                                         Instruction *InsertBefore, Value *Addr,
654                                         uint32_t TypeSize, bool IsWrite,
655                                         Value *SizeArgument, bool UseCalls,
656                                         uint32_t Exp);
657   Value *createSlowPathCmp(IRBuilder<> &IRB, Value *AddrLong,
658                            Value *ShadowValue, uint32_t TypeSize);
659   Instruction *generateCrashCode(Instruction *InsertBefore, Value *Addr,
660                                  bool IsWrite, size_t AccessSizeIndex,
661                                  Value *SizeArgument, uint32_t Exp);
662   void instrumentMemIntrinsic(MemIntrinsic *MI);
663   Value *memToShadow(Value *Shadow, IRBuilder<> &IRB);
664   bool runOnFunction(Function &F) override;
665   bool maybeInsertAsanInitAtFunctionEntry(Function &F);
666   void maybeInsertDynamicShadowAtFunctionEntry(Function &F);
667   void markEscapedLocalAllocas(Function &F);
668   bool doInitialization(Module &M) override;
669   bool doFinalization(Module &M) override;
670 
671   DominatorTree &getDominatorTree() const { return *DT; }
672 
673 private:
674   friend struct FunctionStackPoisoner;
675 
676   void initializeCallbacks(Module &M);
677 
678   bool LooksLikeCodeInBug11395(Instruction *I);
679   bool GlobalIsLinkerInitialized(GlobalVariable *G);
680   bool isSafeAccess(ObjectSizeOffsetVisitor &ObjSizeVis, Value *Addr,
681                     uint64_t TypeSize) const;
682 
683   /// Helper to cleanup per-function state.
684   struct FunctionStateRAII {
685     AddressSanitizer *Pass;
686 
687     FunctionStateRAII(AddressSanitizer *Pass) : Pass(Pass) {
688       assert(Pass->ProcessedAllocas.empty() &&
689              "last pass forgot to clear cache");
690       assert(!Pass->LocalDynamicShadow);
691     }
692 
693     ~FunctionStateRAII() {
694       Pass->LocalDynamicShadow = nullptr;
695       Pass->ProcessedAllocas.clear();
696     }
697   };
698 
699   LLVMContext *C;
700   Triple TargetTriple;
701   int LongSize;
702   bool CompileKernel;
703   bool Recover;
704   bool UseAfterScope;
705   Type *IntptrTy;
706   ShadowMapping Mapping;
707   DominatorTree *DT;
708   Function *AsanHandleNoReturnFunc;
709   Function *AsanPtrCmpFunction, *AsanPtrSubFunction;
710   Constant *AsanShadowGlobal;
711 
712   // These arrays is indexed by AccessIsWrite, Experiment and log2(AccessSize).
713   Function *AsanErrorCallback[2][2][kNumberOfAccessSizes];
714   Function *AsanMemoryAccessCallback[2][2][kNumberOfAccessSizes];
715 
716   // These arrays is indexed by AccessIsWrite and Experiment.
717   Function *AsanErrorCallbackSized[2][2];
718   Function *AsanMemoryAccessCallbackSized[2][2];
719 
720   Function *AsanMemmove, *AsanMemcpy, *AsanMemset;
721   InlineAsm *EmptyAsm;
722   Value *LocalDynamicShadow = nullptr;
723   GlobalsMetadata GlobalsMD;
724   DenseMap<const AllocaInst *, bool> ProcessedAllocas;
725 };
726 
727 class AddressSanitizerModule : public ModulePass {
728 public:
729   // Pass identification, replacement for typeid
730   static char ID;
731 
732   explicit AddressSanitizerModule(bool CompileKernel = false,
733                                   bool Recover = false,
734                                   bool UseGlobalsGC = true)
735       : ModulePass(ID),
736         UseGlobalsGC(UseGlobalsGC && ClUseGlobalsGC),
737         // Not a typo: ClWithComdat is almost completely pointless without
738         // ClUseGlobalsGC (because then it only works on modules without
739         // globals, which are rare); it is a prerequisite for ClUseGlobalsGC;
740         // and both suffer from gold PR19002 for which UseGlobalsGC constructor
741         // argument is designed as workaround. Therefore, disable both
742         // ClWithComdat and ClUseGlobalsGC unless the frontend says it's ok to
743         // do globals-gc.
744         UseCtorComdat(UseGlobalsGC && ClWithComdat) {
745           this->Recover = ClRecover.getNumOccurrences() > 0 ?
746               ClRecover : Recover;
747           this->CompileKernel = ClEnableKasan.getNumOccurrences() > 0 ?
748               ClEnableKasan : CompileKernel;
749 	}
750 
751   bool runOnModule(Module &M) override;
752   StringRef getPassName() const override { return "AddressSanitizerModule"; }
753 
754 private:
755   void initializeCallbacks(Module &M);
756 
757   bool InstrumentGlobals(IRBuilder<> &IRB, Module &M, bool *CtorComdat);
758   void InstrumentGlobalsCOFF(IRBuilder<> &IRB, Module &M,
759                              ArrayRef<GlobalVariable *> ExtendedGlobals,
760                              ArrayRef<Constant *> MetadataInitializers);
761   void InstrumentGlobalsELF(IRBuilder<> &IRB, Module &M,
762                             ArrayRef<GlobalVariable *> ExtendedGlobals,
763                             ArrayRef<Constant *> MetadataInitializers,
764                             const std::string &UniqueModuleId);
765   void InstrumentGlobalsMachO(IRBuilder<> &IRB, Module &M,
766                               ArrayRef<GlobalVariable *> ExtendedGlobals,
767                               ArrayRef<Constant *> MetadataInitializers);
768   void
769   InstrumentGlobalsWithMetadataArray(IRBuilder<> &IRB, Module &M,
770                                      ArrayRef<GlobalVariable *> ExtendedGlobals,
771                                      ArrayRef<Constant *> MetadataInitializers);
772 
773   GlobalVariable *CreateMetadataGlobal(Module &M, Constant *Initializer,
774                                        StringRef OriginalName);
775   void SetComdatForGlobalMetadata(GlobalVariable *G, GlobalVariable *Metadata,
776                                   StringRef InternalSuffix);
777   IRBuilder<> CreateAsanModuleDtor(Module &M);
778 
779   bool ShouldInstrumentGlobal(GlobalVariable *G);
780   bool ShouldUseMachOGlobalsSection() const;
781   StringRef getGlobalMetadataSection() const;
782   void poisonOneInitializer(Function &GlobalInit, GlobalValue *ModuleName);
783   void createInitializerPoisonCalls(Module &M, GlobalValue *ModuleName);
784   size_t MinRedzoneSizeForGlobal() const {
785     return RedzoneSizeForScale(Mapping.Scale);
786   }
787   int GetAsanVersion(const Module &M) const;
788 
789   GlobalsMetadata GlobalsMD;
790   bool CompileKernel;
791   bool Recover;
792   bool UseGlobalsGC;
793   bool UseCtorComdat;
794   Type *IntptrTy;
795   LLVMContext *C;
796   Triple TargetTriple;
797   ShadowMapping Mapping;
798   Function *AsanPoisonGlobals;
799   Function *AsanUnpoisonGlobals;
800   Function *AsanRegisterGlobals;
801   Function *AsanUnregisterGlobals;
802   Function *AsanRegisterImageGlobals;
803   Function *AsanUnregisterImageGlobals;
804   Function *AsanRegisterElfGlobals;
805   Function *AsanUnregisterElfGlobals;
806 
807   Function *AsanCtorFunction = nullptr;
808   Function *AsanDtorFunction = nullptr;
809 };
810 
811 // Stack poisoning does not play well with exception handling.
812 // When an exception is thrown, we essentially bypass the code
813 // that unpoisones the stack. This is why the run-time library has
814 // to intercept __cxa_throw (as well as longjmp, etc) and unpoison the entire
815 // stack in the interceptor. This however does not work inside the
816 // actual function which catches the exception. Most likely because the
817 // compiler hoists the load of the shadow value somewhere too high.
818 // This causes asan to report a non-existing bug on 453.povray.
819 // It sounds like an LLVM bug.
820 struct FunctionStackPoisoner : public InstVisitor<FunctionStackPoisoner> {
821   Function &F;
822   AddressSanitizer &ASan;
823   DIBuilder DIB;
824   LLVMContext *C;
825   Type *IntptrTy;
826   Type *IntptrPtrTy;
827   ShadowMapping Mapping;
828 
829   SmallVector<AllocaInst *, 16> AllocaVec;
830   SmallVector<AllocaInst *, 16> StaticAllocasToMoveUp;
831   SmallVector<Instruction *, 8> RetVec;
832   unsigned StackAlignment;
833 
834   Function *AsanStackMallocFunc[kMaxAsanStackMallocSizeClass + 1],
835       *AsanStackFreeFunc[kMaxAsanStackMallocSizeClass + 1];
836   Function *AsanSetShadowFunc[0x100] = {};
837   Function *AsanPoisonStackMemoryFunc, *AsanUnpoisonStackMemoryFunc;
838   Function *AsanAllocaPoisonFunc, *AsanAllocasUnpoisonFunc;
839 
840   // Stores a place and arguments of poisoning/unpoisoning call for alloca.
841   struct AllocaPoisonCall {
842     IntrinsicInst *InsBefore;
843     AllocaInst *AI;
844     uint64_t Size;
845     bool DoPoison;
846   };
847   SmallVector<AllocaPoisonCall, 8> DynamicAllocaPoisonCallVec;
848   SmallVector<AllocaPoisonCall, 8> StaticAllocaPoisonCallVec;
849 
850   SmallVector<AllocaInst *, 1> DynamicAllocaVec;
851   SmallVector<IntrinsicInst *, 1> StackRestoreVec;
852   AllocaInst *DynamicAllocaLayout = nullptr;
853   IntrinsicInst *LocalEscapeCall = nullptr;
854 
855   // Maps Value to an AllocaInst from which the Value is originated.
856   using AllocaForValueMapTy = DenseMap<Value *, AllocaInst *>;
857   AllocaForValueMapTy AllocaForValue;
858 
859   bool HasNonEmptyInlineAsm = false;
860   bool HasReturnsTwiceCall = false;
861   std::unique_ptr<CallInst> EmptyInlineAsm;
862 
863   FunctionStackPoisoner(Function &F, AddressSanitizer &ASan)
864       : F(F),
865         ASan(ASan),
866         DIB(*F.getParent(), /*AllowUnresolved*/ false),
867         C(ASan.C),
868         IntptrTy(ASan.IntptrTy),
869         IntptrPtrTy(PointerType::get(IntptrTy, 0)),
870         Mapping(ASan.Mapping),
871         StackAlignment(1 << Mapping.Scale),
872         EmptyInlineAsm(CallInst::Create(ASan.EmptyAsm)) {}
873 
874   bool runOnFunction() {
875     if (!ClStack) return false;
876 
877     if (ClRedzoneByvalArgs)
878       copyArgsPassedByValToAllocas();
879 
880     // Collect alloca, ret, lifetime instructions etc.
881     for (BasicBlock *BB : depth_first(&F.getEntryBlock())) visit(*BB);
882 
883     if (AllocaVec.empty() && DynamicAllocaVec.empty()) return false;
884 
885     initializeCallbacks(*F.getParent());
886 
887     processDynamicAllocas();
888     processStaticAllocas();
889 
890     if (ClDebugStack) {
891       LLVM_DEBUG(dbgs() << F);
892     }
893     return true;
894   }
895 
896   // Arguments marked with the "byval" attribute are implicitly copied without
897   // using an alloca instruction.  To produce redzones for those arguments, we
898   // copy them a second time into memory allocated with an alloca instruction.
899   void copyArgsPassedByValToAllocas();
900 
901   // Finds all Alloca instructions and puts
902   // poisoned red zones around all of them.
903   // Then unpoison everything back before the function returns.
904   void processStaticAllocas();
905   void processDynamicAllocas();
906 
907   void createDynamicAllocasInitStorage();
908 
909   // ----------------------- Visitors.
910   /// Collect all Ret instructions.
911   void visitReturnInst(ReturnInst &RI) { RetVec.push_back(&RI); }
912 
913   /// Collect all Resume instructions.
914   void visitResumeInst(ResumeInst &RI) { RetVec.push_back(&RI); }
915 
916   /// Collect all CatchReturnInst instructions.
917   void visitCleanupReturnInst(CleanupReturnInst &CRI) { RetVec.push_back(&CRI); }
918 
919   void unpoisonDynamicAllocasBeforeInst(Instruction *InstBefore,
920                                         Value *SavedStack) {
921     IRBuilder<> IRB(InstBefore);
922     Value *DynamicAreaPtr = IRB.CreatePtrToInt(SavedStack, IntptrTy);
923     // When we insert _asan_allocas_unpoison before @llvm.stackrestore, we
924     // need to adjust extracted SP to compute the address of the most recent
925     // alloca. We have a special @llvm.get.dynamic.area.offset intrinsic for
926     // this purpose.
927     if (!isa<ReturnInst>(InstBefore)) {
928       Function *DynamicAreaOffsetFunc = Intrinsic::getDeclaration(
929           InstBefore->getModule(), Intrinsic::get_dynamic_area_offset,
930           {IntptrTy});
931 
932       Value *DynamicAreaOffset = IRB.CreateCall(DynamicAreaOffsetFunc, {});
933 
934       DynamicAreaPtr = IRB.CreateAdd(IRB.CreatePtrToInt(SavedStack, IntptrTy),
935                                      DynamicAreaOffset);
936     }
937 
938     IRB.CreateCall(AsanAllocasUnpoisonFunc,
939                    {IRB.CreateLoad(DynamicAllocaLayout), DynamicAreaPtr});
940   }
941 
942   // Unpoison dynamic allocas redzones.
943   void unpoisonDynamicAllocas() {
944     for (auto &Ret : RetVec)
945       unpoisonDynamicAllocasBeforeInst(Ret, DynamicAllocaLayout);
946 
947     for (auto &StackRestoreInst : StackRestoreVec)
948       unpoisonDynamicAllocasBeforeInst(StackRestoreInst,
949                                        StackRestoreInst->getOperand(0));
950   }
951 
952   // Deploy and poison redzones around dynamic alloca call. To do this, we
953   // should replace this call with another one with changed parameters and
954   // replace all its uses with new address, so
955   //   addr = alloca type, old_size, align
956   // is replaced by
957   //   new_size = (old_size + additional_size) * sizeof(type)
958   //   tmp = alloca i8, new_size, max(align, 32)
959   //   addr = tmp + 32 (first 32 bytes are for the left redzone).
960   // Additional_size is added to make new memory allocation contain not only
961   // requested memory, but also left, partial and right redzones.
962   void handleDynamicAllocaCall(AllocaInst *AI);
963 
964   /// Collect Alloca instructions we want (and can) handle.
965   void visitAllocaInst(AllocaInst &AI) {
966     if (!ASan.isInterestingAlloca(AI)) {
967       if (AI.isStaticAlloca()) {
968         // Skip over allocas that are present *before* the first instrumented
969         // alloca, we don't want to move those around.
970         if (AllocaVec.empty())
971           return;
972 
973         StaticAllocasToMoveUp.push_back(&AI);
974       }
975       return;
976     }
977 
978     StackAlignment = std::max(StackAlignment, AI.getAlignment());
979     if (!AI.isStaticAlloca())
980       DynamicAllocaVec.push_back(&AI);
981     else
982       AllocaVec.push_back(&AI);
983   }
984 
985   /// Collect lifetime intrinsic calls to check for use-after-scope
986   /// errors.
987   void visitIntrinsicInst(IntrinsicInst &II) {
988     Intrinsic::ID ID = II.getIntrinsicID();
989     if (ID == Intrinsic::stackrestore) StackRestoreVec.push_back(&II);
990     if (ID == Intrinsic::localescape) LocalEscapeCall = &II;
991     if (!ASan.UseAfterScope)
992       return;
993     if (ID != Intrinsic::lifetime_start && ID != Intrinsic::lifetime_end)
994       return;
995     // Found lifetime intrinsic, add ASan instrumentation if necessary.
996     ConstantInt *Size = dyn_cast<ConstantInt>(II.getArgOperand(0));
997     // If size argument is undefined, don't do anything.
998     if (Size->isMinusOne()) return;
999     // Check that size doesn't saturate uint64_t and can
1000     // be stored in IntptrTy.
1001     const uint64_t SizeValue = Size->getValue().getLimitedValue();
1002     if (SizeValue == ~0ULL ||
1003         !ConstantInt::isValueValidForType(IntptrTy, SizeValue))
1004       return;
1005     // Find alloca instruction that corresponds to llvm.lifetime argument.
1006     AllocaInst *AI = findAllocaForValue(II.getArgOperand(1));
1007     if (!AI || !ASan.isInterestingAlloca(*AI))
1008       return;
1009     bool DoPoison = (ID == Intrinsic::lifetime_end);
1010     AllocaPoisonCall APC = {&II, AI, SizeValue, DoPoison};
1011     if (AI->isStaticAlloca())
1012       StaticAllocaPoisonCallVec.push_back(APC);
1013     else if (ClInstrumentDynamicAllocas)
1014       DynamicAllocaPoisonCallVec.push_back(APC);
1015   }
1016 
1017   void visitCallSite(CallSite CS) {
1018     Instruction *I = CS.getInstruction();
1019     if (CallInst *CI = dyn_cast<CallInst>(I)) {
1020       HasNonEmptyInlineAsm |= CI->isInlineAsm() &&
1021                               !CI->isIdenticalTo(EmptyInlineAsm.get()) &&
1022                               I != ASan.LocalDynamicShadow;
1023       HasReturnsTwiceCall |= CI->canReturnTwice();
1024     }
1025   }
1026 
1027   // ---------------------- Helpers.
1028   void initializeCallbacks(Module &M);
1029 
1030   bool doesDominateAllExits(const Instruction *I) const {
1031     for (auto Ret : RetVec) {
1032       if (!ASan.getDominatorTree().dominates(I, Ret)) return false;
1033     }
1034     return true;
1035   }
1036 
1037   /// Finds alloca where the value comes from.
1038   AllocaInst *findAllocaForValue(Value *V);
1039 
1040   // Copies bytes from ShadowBytes into shadow memory for indexes where
1041   // ShadowMask is not zero. If ShadowMask[i] is zero, we assume that
1042   // ShadowBytes[i] is constantly zero and doesn't need to be overwritten.
1043   void copyToShadow(ArrayRef<uint8_t> ShadowMask, ArrayRef<uint8_t> ShadowBytes,
1044                     IRBuilder<> &IRB, Value *ShadowBase);
1045   void copyToShadow(ArrayRef<uint8_t> ShadowMask, ArrayRef<uint8_t> ShadowBytes,
1046                     size_t Begin, size_t End, IRBuilder<> &IRB,
1047                     Value *ShadowBase);
1048   void copyToShadowInline(ArrayRef<uint8_t> ShadowMask,
1049                           ArrayRef<uint8_t> ShadowBytes, size_t Begin,
1050                           size_t End, IRBuilder<> &IRB, Value *ShadowBase);
1051 
1052   void poisonAlloca(Value *V, uint64_t Size, IRBuilder<> &IRB, bool DoPoison);
1053 
1054   Value *createAllocaForLayout(IRBuilder<> &IRB, const ASanStackFrameLayout &L,
1055                                bool Dynamic);
1056   PHINode *createPHI(IRBuilder<> &IRB, Value *Cond, Value *ValueIfTrue,
1057                      Instruction *ThenTerm, Value *ValueIfFalse);
1058 };
1059 
1060 } // end anonymous namespace
1061 
1062 char AddressSanitizer::ID = 0;
1063 
1064 INITIALIZE_PASS_BEGIN(
1065     AddressSanitizer, "asan",
1066     "AddressSanitizer: detects use-after-free and out-of-bounds bugs.", false,
1067     false)
1068 INITIALIZE_PASS_DEPENDENCY(DominatorTreeWrapperPass)
1069 INITIALIZE_PASS_DEPENDENCY(TargetLibraryInfoWrapperPass)
1070 INITIALIZE_PASS_END(
1071     AddressSanitizer, "asan",
1072     "AddressSanitizer: detects use-after-free and out-of-bounds bugs.", false,
1073     false)
1074 
1075 FunctionPass *llvm::createAddressSanitizerFunctionPass(bool CompileKernel,
1076                                                        bool Recover,
1077                                                        bool UseAfterScope) {
1078   assert(!CompileKernel || Recover);
1079   return new AddressSanitizer(CompileKernel, Recover, UseAfterScope);
1080 }
1081 
1082 char AddressSanitizerModule::ID = 0;
1083 
1084 INITIALIZE_PASS(
1085     AddressSanitizerModule, "asan-module",
1086     "AddressSanitizer: detects use-after-free and out-of-bounds bugs."
1087     "ModulePass",
1088     false, false)
1089 
1090 ModulePass *llvm::createAddressSanitizerModulePass(bool CompileKernel,
1091                                                    bool Recover,
1092                                                    bool UseGlobalsGC) {
1093   assert(!CompileKernel || Recover);
1094   return new AddressSanitizerModule(CompileKernel, Recover, UseGlobalsGC);
1095 }
1096 
1097 static size_t TypeSizeToSizeIndex(uint32_t TypeSize) {
1098   size_t Res = countTrailingZeros(TypeSize / 8);
1099   assert(Res < kNumberOfAccessSizes);
1100   return Res;
1101 }
1102 
1103 /// Create a global describing a source location.
1104 static GlobalVariable *createPrivateGlobalForSourceLoc(Module &M,
1105                                                        LocationMetadata MD) {
1106   Constant *LocData[] = {
1107       createPrivateGlobalForString(M, MD.Filename, true, kAsanGenPrefix),
1108       ConstantInt::get(Type::getInt32Ty(M.getContext()), MD.LineNo),
1109       ConstantInt::get(Type::getInt32Ty(M.getContext()), MD.ColumnNo),
1110   };
1111   auto LocStruct = ConstantStruct::getAnon(LocData);
1112   auto GV = new GlobalVariable(M, LocStruct->getType(), true,
1113                                GlobalValue::PrivateLinkage, LocStruct,
1114                                kAsanGenPrefix);
1115   GV->setUnnamedAddr(GlobalValue::UnnamedAddr::Global);
1116   return GV;
1117 }
1118 
1119 /// Check if \p G has been created by a trusted compiler pass.
1120 static bool GlobalWasGeneratedByCompiler(GlobalVariable *G) {
1121   // Do not instrument @llvm.global_ctors, @llvm.used, etc.
1122   if (G->getName().startswith("llvm."))
1123     return true;
1124 
1125   // Do not instrument asan globals.
1126   if (G->getName().startswith(kAsanGenPrefix) ||
1127       G->getName().startswith(kSanCovGenPrefix) ||
1128       G->getName().startswith(kODRGenPrefix))
1129     return true;
1130 
1131   // Do not instrument gcov counter arrays.
1132   if (G->getName() == "__llvm_gcov_ctr")
1133     return true;
1134 
1135   return false;
1136 }
1137 
1138 Value *AddressSanitizer::memToShadow(Value *Shadow, IRBuilder<> &IRB) {
1139   // Shadow >> scale
1140   Shadow = IRB.CreateLShr(Shadow, Mapping.Scale);
1141   if (Mapping.Offset == 0) return Shadow;
1142   // (Shadow >> scale) | offset
1143   Value *ShadowBase;
1144   if (LocalDynamicShadow)
1145     ShadowBase = LocalDynamicShadow;
1146   else
1147     ShadowBase = ConstantInt::get(IntptrTy, Mapping.Offset);
1148   if (Mapping.OrShadowOffset)
1149     return IRB.CreateOr(Shadow, ShadowBase);
1150   else
1151     return IRB.CreateAdd(Shadow, ShadowBase);
1152 }
1153 
1154 // Instrument memset/memmove/memcpy
1155 void AddressSanitizer::instrumentMemIntrinsic(MemIntrinsic *MI) {
1156   IRBuilder<> IRB(MI);
1157   if (isa<MemTransferInst>(MI)) {
1158     IRB.CreateCall(
1159         isa<MemMoveInst>(MI) ? AsanMemmove : AsanMemcpy,
1160         {IRB.CreatePointerCast(MI->getOperand(0), IRB.getInt8PtrTy()),
1161          IRB.CreatePointerCast(MI->getOperand(1), IRB.getInt8PtrTy()),
1162          IRB.CreateIntCast(MI->getOperand(2), IntptrTy, false)});
1163   } else if (isa<MemSetInst>(MI)) {
1164     IRB.CreateCall(
1165         AsanMemset,
1166         {IRB.CreatePointerCast(MI->getOperand(0), IRB.getInt8PtrTy()),
1167          IRB.CreateIntCast(MI->getOperand(1), IRB.getInt32Ty(), false),
1168          IRB.CreateIntCast(MI->getOperand(2), IntptrTy, false)});
1169   }
1170   MI->eraseFromParent();
1171 }
1172 
1173 /// Check if we want (and can) handle this alloca.
1174 bool AddressSanitizer::isInterestingAlloca(const AllocaInst &AI) {
1175   auto PreviouslySeenAllocaInfo = ProcessedAllocas.find(&AI);
1176 
1177   if (PreviouslySeenAllocaInfo != ProcessedAllocas.end())
1178     return PreviouslySeenAllocaInfo->getSecond();
1179 
1180   bool IsInteresting =
1181       (AI.getAllocatedType()->isSized() &&
1182        // alloca() may be called with 0 size, ignore it.
1183        ((!AI.isStaticAlloca()) || getAllocaSizeInBytes(AI) > 0) &&
1184        // We are only interested in allocas not promotable to registers.
1185        // Promotable allocas are common under -O0.
1186        (!ClSkipPromotableAllocas || !isAllocaPromotable(&AI)) &&
1187        // inalloca allocas are not treated as static, and we don't want
1188        // dynamic alloca instrumentation for them as well.
1189        !AI.isUsedWithInAlloca() &&
1190        // swifterror allocas are register promoted by ISel
1191        !AI.isSwiftError());
1192 
1193   ProcessedAllocas[&AI] = IsInteresting;
1194   return IsInteresting;
1195 }
1196 
1197 Value *AddressSanitizer::isInterestingMemoryAccess(Instruction *I,
1198                                                    bool *IsWrite,
1199                                                    uint64_t *TypeSize,
1200                                                    unsigned *Alignment,
1201                                                    Value **MaybeMask) {
1202   // Skip memory accesses inserted by another instrumentation.
1203   if (I->getMetadata("nosanitize")) return nullptr;
1204 
1205   // Do not instrument the load fetching the dynamic shadow address.
1206   if (LocalDynamicShadow == I)
1207     return nullptr;
1208 
1209   Value *PtrOperand = nullptr;
1210   const DataLayout &DL = I->getModule()->getDataLayout();
1211   if (LoadInst *LI = dyn_cast<LoadInst>(I)) {
1212     if (!ClInstrumentReads) return nullptr;
1213     *IsWrite = false;
1214     *TypeSize = DL.getTypeStoreSizeInBits(LI->getType());
1215     *Alignment = LI->getAlignment();
1216     PtrOperand = LI->getPointerOperand();
1217   } else if (StoreInst *SI = dyn_cast<StoreInst>(I)) {
1218     if (!ClInstrumentWrites) return nullptr;
1219     *IsWrite = true;
1220     *TypeSize = DL.getTypeStoreSizeInBits(SI->getValueOperand()->getType());
1221     *Alignment = SI->getAlignment();
1222     PtrOperand = SI->getPointerOperand();
1223   } else if (AtomicRMWInst *RMW = dyn_cast<AtomicRMWInst>(I)) {
1224     if (!ClInstrumentAtomics) return nullptr;
1225     *IsWrite = true;
1226     *TypeSize = DL.getTypeStoreSizeInBits(RMW->getValOperand()->getType());
1227     *Alignment = 0;
1228     PtrOperand = RMW->getPointerOperand();
1229   } else if (AtomicCmpXchgInst *XCHG = dyn_cast<AtomicCmpXchgInst>(I)) {
1230     if (!ClInstrumentAtomics) return nullptr;
1231     *IsWrite = true;
1232     *TypeSize = DL.getTypeStoreSizeInBits(XCHG->getCompareOperand()->getType());
1233     *Alignment = 0;
1234     PtrOperand = XCHG->getPointerOperand();
1235   } else if (auto CI = dyn_cast<CallInst>(I)) {
1236     auto *F = dyn_cast<Function>(CI->getCalledValue());
1237     if (F && (F->getName().startswith("llvm.masked.load.") ||
1238               F->getName().startswith("llvm.masked.store."))) {
1239       unsigned OpOffset = 0;
1240       if (F->getName().startswith("llvm.masked.store.")) {
1241         if (!ClInstrumentWrites)
1242           return nullptr;
1243         // Masked store has an initial operand for the value.
1244         OpOffset = 1;
1245         *IsWrite = true;
1246       } else {
1247         if (!ClInstrumentReads)
1248           return nullptr;
1249         *IsWrite = false;
1250       }
1251 
1252       auto BasePtr = CI->getOperand(0 + OpOffset);
1253       auto Ty = cast<PointerType>(BasePtr->getType())->getElementType();
1254       *TypeSize = DL.getTypeStoreSizeInBits(Ty);
1255       if (auto AlignmentConstant =
1256               dyn_cast<ConstantInt>(CI->getOperand(1 + OpOffset)))
1257         *Alignment = (unsigned)AlignmentConstant->getZExtValue();
1258       else
1259         *Alignment = 1; // No alignment guarantees. We probably got Undef
1260       if (MaybeMask)
1261         *MaybeMask = CI->getOperand(2 + OpOffset);
1262       PtrOperand = BasePtr;
1263     }
1264   }
1265 
1266   if (PtrOperand) {
1267     // Do not instrument acesses from different address spaces; we cannot deal
1268     // with them.
1269     Type *PtrTy = cast<PointerType>(PtrOperand->getType()->getScalarType());
1270     if (PtrTy->getPointerAddressSpace() != 0)
1271       return nullptr;
1272 
1273     // Ignore swifterror addresses.
1274     // swifterror memory addresses are mem2reg promoted by instruction
1275     // selection. As such they cannot have regular uses like an instrumentation
1276     // function and it makes no sense to track them as memory.
1277     if (PtrOperand->isSwiftError())
1278       return nullptr;
1279   }
1280 
1281   // Treat memory accesses to promotable allocas as non-interesting since they
1282   // will not cause memory violations. This greatly speeds up the instrumented
1283   // executable at -O0.
1284   if (ClSkipPromotableAllocas)
1285     if (auto AI = dyn_cast_or_null<AllocaInst>(PtrOperand))
1286       return isInterestingAlloca(*AI) ? AI : nullptr;
1287 
1288   return PtrOperand;
1289 }
1290 
1291 static bool isPointerOperand(Value *V) {
1292   return V->getType()->isPointerTy() || isa<PtrToIntInst>(V);
1293 }
1294 
1295 // This is a rough heuristic; it may cause both false positives and
1296 // false negatives. The proper implementation requires cooperation with
1297 // the frontend.
1298 static bool isInterestingPointerComparisonOrSubtraction(Instruction *I) {
1299   if (ICmpInst *Cmp = dyn_cast<ICmpInst>(I)) {
1300     if (!Cmp->isRelational()) return false;
1301   } else if (BinaryOperator *BO = dyn_cast<BinaryOperator>(I)) {
1302     if (BO->getOpcode() != Instruction::Sub) return false;
1303   } else {
1304     return false;
1305   }
1306   return isPointerOperand(I->getOperand(0)) &&
1307          isPointerOperand(I->getOperand(1));
1308 }
1309 
1310 bool AddressSanitizer::GlobalIsLinkerInitialized(GlobalVariable *G) {
1311   // If a global variable does not have dynamic initialization we don't
1312   // have to instrument it.  However, if a global does not have initializer
1313   // at all, we assume it has dynamic initializer (in other TU).
1314   return G->hasInitializer() && !GlobalsMD.get(G).IsDynInit;
1315 }
1316 
1317 void AddressSanitizer::instrumentPointerComparisonOrSubtraction(
1318     Instruction *I) {
1319   IRBuilder<> IRB(I);
1320   Function *F = isa<ICmpInst>(I) ? AsanPtrCmpFunction : AsanPtrSubFunction;
1321   Value *Param[2] = {I->getOperand(0), I->getOperand(1)};
1322   for (Value *&i : Param) {
1323     if (i->getType()->isPointerTy())
1324       i = IRB.CreatePointerCast(i, IntptrTy);
1325   }
1326   IRB.CreateCall(F, Param);
1327 }
1328 
1329 static void doInstrumentAddress(AddressSanitizer *Pass, Instruction *I,
1330                                 Instruction *InsertBefore, Value *Addr,
1331                                 unsigned Alignment, unsigned Granularity,
1332                                 uint32_t TypeSize, bool IsWrite,
1333                                 Value *SizeArgument, bool UseCalls,
1334                                 uint32_t Exp) {
1335   // Instrument a 1-, 2-, 4-, 8-, or 16- byte access with one check
1336   // if the data is properly aligned.
1337   if ((TypeSize == 8 || TypeSize == 16 || TypeSize == 32 || TypeSize == 64 ||
1338        TypeSize == 128) &&
1339       (Alignment >= Granularity || Alignment == 0 || Alignment >= TypeSize / 8))
1340     return Pass->instrumentAddress(I, InsertBefore, Addr, TypeSize, IsWrite,
1341                                    nullptr, UseCalls, Exp);
1342   Pass->instrumentUnusualSizeOrAlignment(I, InsertBefore, Addr, TypeSize,
1343                                          IsWrite, nullptr, UseCalls, Exp);
1344 }
1345 
1346 static void instrumentMaskedLoadOrStore(AddressSanitizer *Pass,
1347                                         const DataLayout &DL, Type *IntptrTy,
1348                                         Value *Mask, Instruction *I,
1349                                         Value *Addr, unsigned Alignment,
1350                                         unsigned Granularity, uint32_t TypeSize,
1351                                         bool IsWrite, Value *SizeArgument,
1352                                         bool UseCalls, uint32_t Exp) {
1353   auto *VTy = cast<PointerType>(Addr->getType())->getElementType();
1354   uint64_t ElemTypeSize = DL.getTypeStoreSizeInBits(VTy->getScalarType());
1355   unsigned Num = VTy->getVectorNumElements();
1356   auto Zero = ConstantInt::get(IntptrTy, 0);
1357   for (unsigned Idx = 0; Idx < Num; ++Idx) {
1358     Value *InstrumentedAddress = nullptr;
1359     Instruction *InsertBefore = I;
1360     if (auto *Vector = dyn_cast<ConstantVector>(Mask)) {
1361       // dyn_cast as we might get UndefValue
1362       if (auto *Masked = dyn_cast<ConstantInt>(Vector->getOperand(Idx))) {
1363         if (Masked->isZero())
1364           // Mask is constant false, so no instrumentation needed.
1365           continue;
1366         // If we have a true or undef value, fall through to doInstrumentAddress
1367         // with InsertBefore == I
1368       }
1369     } else {
1370       IRBuilder<> IRB(I);
1371       Value *MaskElem = IRB.CreateExtractElement(Mask, Idx);
1372       Instruction *ThenTerm = SplitBlockAndInsertIfThen(MaskElem, I, false);
1373       InsertBefore = ThenTerm;
1374     }
1375 
1376     IRBuilder<> IRB(InsertBefore);
1377     InstrumentedAddress =
1378         IRB.CreateGEP(Addr, {Zero, ConstantInt::get(IntptrTy, Idx)});
1379     doInstrumentAddress(Pass, I, InsertBefore, InstrumentedAddress, Alignment,
1380                         Granularity, ElemTypeSize, IsWrite, SizeArgument,
1381                         UseCalls, Exp);
1382   }
1383 }
1384 
1385 void AddressSanitizer::instrumentMop(ObjectSizeOffsetVisitor &ObjSizeVis,
1386                                      Instruction *I, bool UseCalls,
1387                                      const DataLayout &DL) {
1388   bool IsWrite = false;
1389   unsigned Alignment = 0;
1390   uint64_t TypeSize = 0;
1391   Value *MaybeMask = nullptr;
1392   Value *Addr =
1393       isInterestingMemoryAccess(I, &IsWrite, &TypeSize, &Alignment, &MaybeMask);
1394   assert(Addr);
1395 
1396   // Optimization experiments.
1397   // The experiments can be used to evaluate potential optimizations that remove
1398   // instrumentation (assess false negatives). Instead of completely removing
1399   // some instrumentation, you set Exp to a non-zero value (mask of optimization
1400   // experiments that want to remove instrumentation of this instruction).
1401   // If Exp is non-zero, this pass will emit special calls into runtime
1402   // (e.g. __asan_report_exp_load1 instead of __asan_report_load1). These calls
1403   // make runtime terminate the program in a special way (with a different
1404   // exit status). Then you run the new compiler on a buggy corpus, collect
1405   // the special terminations (ideally, you don't see them at all -- no false
1406   // negatives) and make the decision on the optimization.
1407   uint32_t Exp = ClForceExperiment;
1408 
1409   if (ClOpt && ClOptGlobals) {
1410     // If initialization order checking is disabled, a simple access to a
1411     // dynamically initialized global is always valid.
1412     GlobalVariable *G = dyn_cast<GlobalVariable>(GetUnderlyingObject(Addr, DL));
1413     if (G && (!ClInitializers || GlobalIsLinkerInitialized(G)) &&
1414         isSafeAccess(ObjSizeVis, Addr, TypeSize)) {
1415       NumOptimizedAccessesToGlobalVar++;
1416       return;
1417     }
1418   }
1419 
1420   if (ClOpt && ClOptStack) {
1421     // A direct inbounds access to a stack variable is always valid.
1422     if (isa<AllocaInst>(GetUnderlyingObject(Addr, DL)) &&
1423         isSafeAccess(ObjSizeVis, Addr, TypeSize)) {
1424       NumOptimizedAccessesToStackVar++;
1425       return;
1426     }
1427   }
1428 
1429   if (IsWrite)
1430     NumInstrumentedWrites++;
1431   else
1432     NumInstrumentedReads++;
1433 
1434   unsigned Granularity = 1 << Mapping.Scale;
1435   if (MaybeMask) {
1436     instrumentMaskedLoadOrStore(this, DL, IntptrTy, MaybeMask, I, Addr,
1437                                 Alignment, Granularity, TypeSize, IsWrite,
1438                                 nullptr, UseCalls, Exp);
1439   } else {
1440     doInstrumentAddress(this, I, I, Addr, Alignment, Granularity, TypeSize,
1441                         IsWrite, nullptr, UseCalls, Exp);
1442   }
1443 }
1444 
1445 Instruction *AddressSanitizer::generateCrashCode(Instruction *InsertBefore,
1446                                                  Value *Addr, bool IsWrite,
1447                                                  size_t AccessSizeIndex,
1448                                                  Value *SizeArgument,
1449                                                  uint32_t Exp) {
1450   IRBuilder<> IRB(InsertBefore);
1451   Value *ExpVal = Exp == 0 ? nullptr : ConstantInt::get(IRB.getInt32Ty(), Exp);
1452   CallInst *Call = nullptr;
1453   if (SizeArgument) {
1454     if (Exp == 0)
1455       Call = IRB.CreateCall(AsanErrorCallbackSized[IsWrite][0],
1456                             {Addr, SizeArgument});
1457     else
1458       Call = IRB.CreateCall(AsanErrorCallbackSized[IsWrite][1],
1459                             {Addr, SizeArgument, ExpVal});
1460   } else {
1461     if (Exp == 0)
1462       Call =
1463           IRB.CreateCall(AsanErrorCallback[IsWrite][0][AccessSizeIndex], Addr);
1464     else
1465       Call = IRB.CreateCall(AsanErrorCallback[IsWrite][1][AccessSizeIndex],
1466                             {Addr, ExpVal});
1467   }
1468 
1469   // We don't do Call->setDoesNotReturn() because the BB already has
1470   // UnreachableInst at the end.
1471   // This EmptyAsm is required to avoid callback merge.
1472   IRB.CreateCall(EmptyAsm, {});
1473   return Call;
1474 }
1475 
1476 Value *AddressSanitizer::createSlowPathCmp(IRBuilder<> &IRB, Value *AddrLong,
1477                                            Value *ShadowValue,
1478                                            uint32_t TypeSize) {
1479   size_t Granularity = static_cast<size_t>(1) << Mapping.Scale;
1480   // Addr & (Granularity - 1)
1481   Value *LastAccessedByte =
1482       IRB.CreateAnd(AddrLong, ConstantInt::get(IntptrTy, Granularity - 1));
1483   // (Addr & (Granularity - 1)) + size - 1
1484   if (TypeSize / 8 > 1)
1485     LastAccessedByte = IRB.CreateAdd(
1486         LastAccessedByte, ConstantInt::get(IntptrTy, TypeSize / 8 - 1));
1487   // (uint8_t) ((Addr & (Granularity-1)) + size - 1)
1488   LastAccessedByte =
1489       IRB.CreateIntCast(LastAccessedByte, ShadowValue->getType(), false);
1490   // ((uint8_t) ((Addr & (Granularity-1)) + size - 1)) >= ShadowValue
1491   return IRB.CreateICmpSGE(LastAccessedByte, ShadowValue);
1492 }
1493 
1494 void AddressSanitizer::instrumentAddress(Instruction *OrigIns,
1495                                          Instruction *InsertBefore, Value *Addr,
1496                                          uint32_t TypeSize, bool IsWrite,
1497                                          Value *SizeArgument, bool UseCalls,
1498                                          uint32_t Exp) {
1499   bool IsMyriad = TargetTriple.getVendor() == llvm::Triple::Myriad;
1500 
1501   IRBuilder<> IRB(InsertBefore);
1502   Value *AddrLong = IRB.CreatePointerCast(Addr, IntptrTy);
1503   size_t AccessSizeIndex = TypeSizeToSizeIndex(TypeSize);
1504 
1505   if (UseCalls) {
1506     if (Exp == 0)
1507       IRB.CreateCall(AsanMemoryAccessCallback[IsWrite][0][AccessSizeIndex],
1508                      AddrLong);
1509     else
1510       IRB.CreateCall(AsanMemoryAccessCallback[IsWrite][1][AccessSizeIndex],
1511                      {AddrLong, ConstantInt::get(IRB.getInt32Ty(), Exp)});
1512     return;
1513   }
1514 
1515   if (IsMyriad) {
1516     // Strip the cache bit and do range check.
1517     // AddrLong &= ~kMyriadCacheBitMask32
1518     AddrLong = IRB.CreateAnd(AddrLong, ~kMyriadCacheBitMask32);
1519     // Tag = AddrLong >> kMyriadTagShift
1520     Value *Tag = IRB.CreateLShr(AddrLong, kMyriadTagShift);
1521     // Tag == kMyriadDDRTag
1522     Value *TagCheck =
1523         IRB.CreateICmpEQ(Tag, ConstantInt::get(IntptrTy, kMyriadDDRTag));
1524 
1525     Instruction *TagCheckTerm =
1526         SplitBlockAndInsertIfThen(TagCheck, InsertBefore, false,
1527                                   MDBuilder(*C).createBranchWeights(1, 100000));
1528     assert(cast<BranchInst>(TagCheckTerm)->isUnconditional());
1529     IRB.SetInsertPoint(TagCheckTerm);
1530     InsertBefore = TagCheckTerm;
1531   }
1532 
1533   Type *ShadowTy =
1534       IntegerType::get(*C, std::max(8U, TypeSize >> Mapping.Scale));
1535   Type *ShadowPtrTy = PointerType::get(ShadowTy, 0);
1536   Value *ShadowPtr = memToShadow(AddrLong, IRB);
1537   Value *CmpVal = Constant::getNullValue(ShadowTy);
1538   Value *ShadowValue =
1539       IRB.CreateLoad(IRB.CreateIntToPtr(ShadowPtr, ShadowPtrTy));
1540 
1541   Value *Cmp = IRB.CreateICmpNE(ShadowValue, CmpVal);
1542   size_t Granularity = 1ULL << Mapping.Scale;
1543   Instruction *CrashTerm = nullptr;
1544 
1545   if (ClAlwaysSlowPath || (TypeSize < 8 * Granularity)) {
1546     // We use branch weights for the slow path check, to indicate that the slow
1547     // path is rarely taken. This seems to be the case for SPEC benchmarks.
1548     Instruction *CheckTerm = SplitBlockAndInsertIfThen(
1549         Cmp, InsertBefore, false, MDBuilder(*C).createBranchWeights(1, 100000));
1550     assert(cast<BranchInst>(CheckTerm)->isUnconditional());
1551     BasicBlock *NextBB = CheckTerm->getSuccessor(0);
1552     IRB.SetInsertPoint(CheckTerm);
1553     Value *Cmp2 = createSlowPathCmp(IRB, AddrLong, ShadowValue, TypeSize);
1554     if (Recover) {
1555       CrashTerm = SplitBlockAndInsertIfThen(Cmp2, CheckTerm, false);
1556     } else {
1557       BasicBlock *CrashBlock =
1558         BasicBlock::Create(*C, "", NextBB->getParent(), NextBB);
1559       CrashTerm = new UnreachableInst(*C, CrashBlock);
1560       BranchInst *NewTerm = BranchInst::Create(CrashBlock, NextBB, Cmp2);
1561       ReplaceInstWithInst(CheckTerm, NewTerm);
1562     }
1563   } else {
1564     CrashTerm = SplitBlockAndInsertIfThen(Cmp, InsertBefore, !Recover);
1565   }
1566 
1567   Instruction *Crash = generateCrashCode(CrashTerm, AddrLong, IsWrite,
1568                                          AccessSizeIndex, SizeArgument, Exp);
1569   Crash->setDebugLoc(OrigIns->getDebugLoc());
1570 }
1571 
1572 // Instrument unusual size or unusual alignment.
1573 // We can not do it with a single check, so we do 1-byte check for the first
1574 // and the last bytes. We call __asan_report_*_n(addr, real_size) to be able
1575 // to report the actual access size.
1576 void AddressSanitizer::instrumentUnusualSizeOrAlignment(
1577     Instruction *I, Instruction *InsertBefore, Value *Addr, uint32_t TypeSize,
1578     bool IsWrite, Value *SizeArgument, bool UseCalls, uint32_t Exp) {
1579   IRBuilder<> IRB(InsertBefore);
1580   Value *Size = ConstantInt::get(IntptrTy, TypeSize / 8);
1581   Value *AddrLong = IRB.CreatePointerCast(Addr, IntptrTy);
1582   if (UseCalls) {
1583     if (Exp == 0)
1584       IRB.CreateCall(AsanMemoryAccessCallbackSized[IsWrite][0],
1585                      {AddrLong, Size});
1586     else
1587       IRB.CreateCall(AsanMemoryAccessCallbackSized[IsWrite][1],
1588                      {AddrLong, Size, ConstantInt::get(IRB.getInt32Ty(), Exp)});
1589   } else {
1590     Value *LastByte = IRB.CreateIntToPtr(
1591         IRB.CreateAdd(AddrLong, ConstantInt::get(IntptrTy, TypeSize / 8 - 1)),
1592         Addr->getType());
1593     instrumentAddress(I, InsertBefore, Addr, 8, IsWrite, Size, false, Exp);
1594     instrumentAddress(I, InsertBefore, LastByte, 8, IsWrite, Size, false, Exp);
1595   }
1596 }
1597 
1598 void AddressSanitizerModule::poisonOneInitializer(Function &GlobalInit,
1599                                                   GlobalValue *ModuleName) {
1600   // Set up the arguments to our poison/unpoison functions.
1601   IRBuilder<> IRB(&GlobalInit.front(),
1602                   GlobalInit.front().getFirstInsertionPt());
1603 
1604   // Add a call to poison all external globals before the given function starts.
1605   Value *ModuleNameAddr = ConstantExpr::getPointerCast(ModuleName, IntptrTy);
1606   IRB.CreateCall(AsanPoisonGlobals, ModuleNameAddr);
1607 
1608   // Add calls to unpoison all globals before each return instruction.
1609   for (auto &BB : GlobalInit.getBasicBlockList())
1610     if (ReturnInst *RI = dyn_cast<ReturnInst>(BB.getTerminator()))
1611       CallInst::Create(AsanUnpoisonGlobals, "", RI);
1612 }
1613 
1614 void AddressSanitizerModule::createInitializerPoisonCalls(
1615     Module &M, GlobalValue *ModuleName) {
1616   GlobalVariable *GV = M.getGlobalVariable("llvm.global_ctors");
1617   if (!GV)
1618     return;
1619 
1620   ConstantArray *CA = dyn_cast<ConstantArray>(GV->getInitializer());
1621   if (!CA)
1622     return;
1623 
1624   for (Use &OP : CA->operands()) {
1625     if (isa<ConstantAggregateZero>(OP)) continue;
1626     ConstantStruct *CS = cast<ConstantStruct>(OP);
1627 
1628     // Must have a function or null ptr.
1629     if (Function *F = dyn_cast<Function>(CS->getOperand(1))) {
1630       if (F->getName() == kAsanModuleCtorName) continue;
1631       ConstantInt *Priority = dyn_cast<ConstantInt>(CS->getOperand(0));
1632       // Don't instrument CTORs that will run before asan.module_ctor.
1633       if (Priority->getLimitedValue() <= kAsanCtorAndDtorPriority) continue;
1634       poisonOneInitializer(*F, ModuleName);
1635     }
1636   }
1637 }
1638 
1639 bool AddressSanitizerModule::ShouldInstrumentGlobal(GlobalVariable *G) {
1640   Type *Ty = G->getValueType();
1641   LLVM_DEBUG(dbgs() << "GLOBAL: " << *G << "\n");
1642 
1643   if (GlobalsMD.get(G).IsBlacklisted) return false;
1644   if (!Ty->isSized()) return false;
1645   if (!G->hasInitializer()) return false;
1646   if (GlobalWasGeneratedByCompiler(G)) return false; // Our own globals.
1647   // Two problems with thread-locals:
1648   //   - The address of the main thread's copy can't be computed at link-time.
1649   //   - Need to poison all copies, not just the main thread's one.
1650   if (G->isThreadLocal()) return false;
1651   // For now, just ignore this Global if the alignment is large.
1652   if (G->getAlignment() > MinRedzoneSizeForGlobal()) return false;
1653 
1654   // For non-COFF targets, only instrument globals known to be defined by this
1655   // TU.
1656   // FIXME: We can instrument comdat globals on ELF if we are using the
1657   // GC-friendly metadata scheme.
1658   if (!TargetTriple.isOSBinFormatCOFF()) {
1659     if (!G->hasExactDefinition() || G->hasComdat())
1660       return false;
1661   } else {
1662     // On COFF, don't instrument non-ODR linkages.
1663     if (G->isInterposable())
1664       return false;
1665   }
1666 
1667   // If a comdat is present, it must have a selection kind that implies ODR
1668   // semantics: no duplicates, any, or exact match.
1669   if (Comdat *C = G->getComdat()) {
1670     switch (C->getSelectionKind()) {
1671     case Comdat::Any:
1672     case Comdat::ExactMatch:
1673     case Comdat::NoDuplicates:
1674       break;
1675     case Comdat::Largest:
1676     case Comdat::SameSize:
1677       return false;
1678     }
1679   }
1680 
1681   if (G->hasSection()) {
1682     StringRef Section = G->getSection();
1683 
1684     // Globals from llvm.metadata aren't emitted, do not instrument them.
1685     if (Section == "llvm.metadata") return false;
1686     // Do not instrument globals from special LLVM sections.
1687     if (Section.find("__llvm") != StringRef::npos || Section.find("__LLVM") != StringRef::npos) return false;
1688 
1689     // Do not instrument function pointers to initialization and termination
1690     // routines: dynamic linker will not properly handle redzones.
1691     if (Section.startswith(".preinit_array") ||
1692         Section.startswith(".init_array") ||
1693         Section.startswith(".fini_array")) {
1694       return false;
1695     }
1696 
1697     // On COFF, if the section name contains '$', it is highly likely that the
1698     // user is using section sorting to create an array of globals similar to
1699     // the way initialization callbacks are registered in .init_array and
1700     // .CRT$XCU. The ATL also registers things in .ATL$__[azm]. Adding redzones
1701     // to such globals is counterproductive, because the intent is that they
1702     // will form an array, and out-of-bounds accesses are expected.
1703     // See https://github.com/google/sanitizers/issues/305
1704     // and http://msdn.microsoft.com/en-US/en-en/library/bb918180(v=vs.120).aspx
1705     if (TargetTriple.isOSBinFormatCOFF() && Section.contains('$')) {
1706       LLVM_DEBUG(dbgs() << "Ignoring global in sorted section (contains '$'): "
1707                         << *G << "\n");
1708       return false;
1709     }
1710 
1711     if (TargetTriple.isOSBinFormatMachO()) {
1712       StringRef ParsedSegment, ParsedSection;
1713       unsigned TAA = 0, StubSize = 0;
1714       bool TAAParsed;
1715       std::string ErrorCode = MCSectionMachO::ParseSectionSpecifier(
1716           Section, ParsedSegment, ParsedSection, TAA, TAAParsed, StubSize);
1717       assert(ErrorCode.empty() && "Invalid section specifier.");
1718 
1719       // Ignore the globals from the __OBJC section. The ObjC runtime assumes
1720       // those conform to /usr/lib/objc/runtime.h, so we can't add redzones to
1721       // them.
1722       if (ParsedSegment == "__OBJC" ||
1723           (ParsedSegment == "__DATA" && ParsedSection.startswith("__objc_"))) {
1724         LLVM_DEBUG(dbgs() << "Ignoring ObjC runtime global: " << *G << "\n");
1725         return false;
1726       }
1727       // See https://github.com/google/sanitizers/issues/32
1728       // Constant CFString instances are compiled in the following way:
1729       //  -- the string buffer is emitted into
1730       //     __TEXT,__cstring,cstring_literals
1731       //  -- the constant NSConstantString structure referencing that buffer
1732       //     is placed into __DATA,__cfstring
1733       // Therefore there's no point in placing redzones into __DATA,__cfstring.
1734       // Moreover, it causes the linker to crash on OS X 10.7
1735       if (ParsedSegment == "__DATA" && ParsedSection == "__cfstring") {
1736         LLVM_DEBUG(dbgs() << "Ignoring CFString: " << *G << "\n");
1737         return false;
1738       }
1739       // The linker merges the contents of cstring_literals and removes the
1740       // trailing zeroes.
1741       if (ParsedSegment == "__TEXT" && (TAA & MachO::S_CSTRING_LITERALS)) {
1742         LLVM_DEBUG(dbgs() << "Ignoring a cstring literal: " << *G << "\n");
1743         return false;
1744       }
1745     }
1746   }
1747 
1748   return true;
1749 }
1750 
1751 // On Mach-O platforms, we emit global metadata in a separate section of the
1752 // binary in order to allow the linker to properly dead strip. This is only
1753 // supported on recent versions of ld64.
1754 bool AddressSanitizerModule::ShouldUseMachOGlobalsSection() const {
1755   if (!TargetTriple.isOSBinFormatMachO())
1756     return false;
1757 
1758   if (TargetTriple.isMacOSX() && !TargetTriple.isMacOSXVersionLT(10, 11))
1759     return true;
1760   if (TargetTriple.isiOS() /* or tvOS */ && !TargetTriple.isOSVersionLT(9))
1761     return true;
1762   if (TargetTriple.isWatchOS() && !TargetTriple.isOSVersionLT(2))
1763     return true;
1764 
1765   return false;
1766 }
1767 
1768 StringRef AddressSanitizerModule::getGlobalMetadataSection() const {
1769   switch (TargetTriple.getObjectFormat()) {
1770   case Triple::COFF:  return ".ASAN$GL";
1771   case Triple::ELF:   return "asan_globals";
1772   case Triple::MachO: return "__DATA,__asan_globals,regular";
1773   default: break;
1774   }
1775   llvm_unreachable("unsupported object format");
1776 }
1777 
1778 void AddressSanitizerModule::initializeCallbacks(Module &M) {
1779   IRBuilder<> IRB(*C);
1780 
1781   // Declare our poisoning and unpoisoning functions.
1782   AsanPoisonGlobals = checkSanitizerInterfaceFunction(M.getOrInsertFunction(
1783       kAsanPoisonGlobalsName, IRB.getVoidTy(), IntptrTy));
1784   AsanPoisonGlobals->setLinkage(Function::ExternalLinkage);
1785   AsanUnpoisonGlobals = checkSanitizerInterfaceFunction(M.getOrInsertFunction(
1786       kAsanUnpoisonGlobalsName, IRB.getVoidTy()));
1787   AsanUnpoisonGlobals->setLinkage(Function::ExternalLinkage);
1788 
1789   // Declare functions that register/unregister globals.
1790   AsanRegisterGlobals = checkSanitizerInterfaceFunction(M.getOrInsertFunction(
1791       kAsanRegisterGlobalsName, IRB.getVoidTy(), IntptrTy, IntptrTy));
1792   AsanRegisterGlobals->setLinkage(Function::ExternalLinkage);
1793   AsanUnregisterGlobals = checkSanitizerInterfaceFunction(
1794       M.getOrInsertFunction(kAsanUnregisterGlobalsName, IRB.getVoidTy(),
1795                             IntptrTy, IntptrTy));
1796   AsanUnregisterGlobals->setLinkage(Function::ExternalLinkage);
1797 
1798   // Declare the functions that find globals in a shared object and then invoke
1799   // the (un)register function on them.
1800   AsanRegisterImageGlobals =
1801       checkSanitizerInterfaceFunction(M.getOrInsertFunction(
1802           kAsanRegisterImageGlobalsName, IRB.getVoidTy(), IntptrTy));
1803   AsanRegisterImageGlobals->setLinkage(Function::ExternalLinkage);
1804 
1805   AsanUnregisterImageGlobals =
1806       checkSanitizerInterfaceFunction(M.getOrInsertFunction(
1807           kAsanUnregisterImageGlobalsName, IRB.getVoidTy(), IntptrTy));
1808   AsanUnregisterImageGlobals->setLinkage(Function::ExternalLinkage);
1809 
1810   AsanRegisterElfGlobals = checkSanitizerInterfaceFunction(
1811       M.getOrInsertFunction(kAsanRegisterElfGlobalsName, IRB.getVoidTy(),
1812                             IntptrTy, IntptrTy, IntptrTy));
1813   AsanRegisterElfGlobals->setLinkage(Function::ExternalLinkage);
1814 
1815   AsanUnregisterElfGlobals = checkSanitizerInterfaceFunction(
1816       M.getOrInsertFunction(kAsanUnregisterElfGlobalsName, IRB.getVoidTy(),
1817                             IntptrTy, IntptrTy, IntptrTy));
1818   AsanUnregisterElfGlobals->setLinkage(Function::ExternalLinkage);
1819 }
1820 
1821 // Put the metadata and the instrumented global in the same group. This ensures
1822 // that the metadata is discarded if the instrumented global is discarded.
1823 void AddressSanitizerModule::SetComdatForGlobalMetadata(
1824     GlobalVariable *G, GlobalVariable *Metadata, StringRef InternalSuffix) {
1825   Module &M = *G->getParent();
1826   Comdat *C = G->getComdat();
1827   if (!C) {
1828     if (!G->hasName()) {
1829       // If G is unnamed, it must be internal. Give it an artificial name
1830       // so we can put it in a comdat.
1831       assert(G->hasLocalLinkage());
1832       G->setName(Twine(kAsanGenPrefix) + "_anon_global");
1833     }
1834 
1835     if (!InternalSuffix.empty() && G->hasLocalLinkage()) {
1836       std::string Name = G->getName();
1837       Name += InternalSuffix;
1838       C = M.getOrInsertComdat(Name);
1839     } else {
1840       C = M.getOrInsertComdat(G->getName());
1841     }
1842 
1843     // Make this IMAGE_COMDAT_SELECT_NODUPLICATES on COFF. Also upgrade private
1844     // linkage to internal linkage so that a symbol table entry is emitted. This
1845     // is necessary in order to create the comdat group.
1846     if (TargetTriple.isOSBinFormatCOFF()) {
1847       C->setSelectionKind(Comdat::NoDuplicates);
1848       if (G->hasPrivateLinkage())
1849         G->setLinkage(GlobalValue::InternalLinkage);
1850     }
1851     G->setComdat(C);
1852   }
1853 
1854   assert(G->hasComdat());
1855   Metadata->setComdat(G->getComdat());
1856 }
1857 
1858 // Create a separate metadata global and put it in the appropriate ASan
1859 // global registration section.
1860 GlobalVariable *
1861 AddressSanitizerModule::CreateMetadataGlobal(Module &M, Constant *Initializer,
1862                                              StringRef OriginalName) {
1863   auto Linkage = TargetTriple.isOSBinFormatMachO()
1864                      ? GlobalVariable::InternalLinkage
1865                      : GlobalVariable::PrivateLinkage;
1866   GlobalVariable *Metadata = new GlobalVariable(
1867       M, Initializer->getType(), false, Linkage, Initializer,
1868       Twine("__asan_global_") + GlobalValue::dropLLVMManglingEscape(OriginalName));
1869   Metadata->setSection(getGlobalMetadataSection());
1870   return Metadata;
1871 }
1872 
1873 IRBuilder<> AddressSanitizerModule::CreateAsanModuleDtor(Module &M) {
1874   AsanDtorFunction =
1875       Function::Create(FunctionType::get(Type::getVoidTy(*C), false),
1876                        GlobalValue::InternalLinkage, kAsanModuleDtorName, &M);
1877   BasicBlock *AsanDtorBB = BasicBlock::Create(*C, "", AsanDtorFunction);
1878 
1879   return IRBuilder<>(ReturnInst::Create(*C, AsanDtorBB));
1880 }
1881 
1882 void AddressSanitizerModule::InstrumentGlobalsCOFF(
1883     IRBuilder<> &IRB, Module &M, ArrayRef<GlobalVariable *> ExtendedGlobals,
1884     ArrayRef<Constant *> MetadataInitializers) {
1885   assert(ExtendedGlobals.size() == MetadataInitializers.size());
1886   auto &DL = M.getDataLayout();
1887 
1888   for (size_t i = 0; i < ExtendedGlobals.size(); i++) {
1889     Constant *Initializer = MetadataInitializers[i];
1890     GlobalVariable *G = ExtendedGlobals[i];
1891     GlobalVariable *Metadata =
1892         CreateMetadataGlobal(M, Initializer, G->getName());
1893 
1894     // The MSVC linker always inserts padding when linking incrementally. We
1895     // cope with that by aligning each struct to its size, which must be a power
1896     // of two.
1897     unsigned SizeOfGlobalStruct = DL.getTypeAllocSize(Initializer->getType());
1898     assert(isPowerOf2_32(SizeOfGlobalStruct) &&
1899            "global metadata will not be padded appropriately");
1900     Metadata->setAlignment(SizeOfGlobalStruct);
1901 
1902     SetComdatForGlobalMetadata(G, Metadata, "");
1903   }
1904 }
1905 
1906 void AddressSanitizerModule::InstrumentGlobalsELF(
1907     IRBuilder<> &IRB, Module &M, ArrayRef<GlobalVariable *> ExtendedGlobals,
1908     ArrayRef<Constant *> MetadataInitializers,
1909     const std::string &UniqueModuleId) {
1910   assert(ExtendedGlobals.size() == MetadataInitializers.size());
1911 
1912   SmallVector<GlobalValue *, 16> MetadataGlobals(ExtendedGlobals.size());
1913   for (size_t i = 0; i < ExtendedGlobals.size(); i++) {
1914     GlobalVariable *G = ExtendedGlobals[i];
1915     GlobalVariable *Metadata =
1916         CreateMetadataGlobal(M, MetadataInitializers[i], G->getName());
1917     MDNode *MD = MDNode::get(M.getContext(), ValueAsMetadata::get(G));
1918     Metadata->setMetadata(LLVMContext::MD_associated, MD);
1919     MetadataGlobals[i] = Metadata;
1920 
1921     SetComdatForGlobalMetadata(G, Metadata, UniqueModuleId);
1922   }
1923 
1924   // Update llvm.compiler.used, adding the new metadata globals. This is
1925   // needed so that during LTO these variables stay alive.
1926   if (!MetadataGlobals.empty())
1927     appendToCompilerUsed(M, MetadataGlobals);
1928 
1929   // RegisteredFlag serves two purposes. First, we can pass it to dladdr()
1930   // to look up the loaded image that contains it. Second, we can store in it
1931   // whether registration has already occurred, to prevent duplicate
1932   // registration.
1933   //
1934   // Common linkage ensures that there is only one global per shared library.
1935   GlobalVariable *RegisteredFlag = new GlobalVariable(
1936       M, IntptrTy, false, GlobalVariable::CommonLinkage,
1937       ConstantInt::get(IntptrTy, 0), kAsanGlobalsRegisteredFlagName);
1938   RegisteredFlag->setVisibility(GlobalVariable::HiddenVisibility);
1939 
1940   // Create start and stop symbols.
1941   GlobalVariable *StartELFMetadata = new GlobalVariable(
1942       M, IntptrTy, false, GlobalVariable::ExternalWeakLinkage, nullptr,
1943       "__start_" + getGlobalMetadataSection());
1944   StartELFMetadata->setVisibility(GlobalVariable::HiddenVisibility);
1945   GlobalVariable *StopELFMetadata = new GlobalVariable(
1946       M, IntptrTy, false, GlobalVariable::ExternalWeakLinkage, nullptr,
1947       "__stop_" + getGlobalMetadataSection());
1948   StopELFMetadata->setVisibility(GlobalVariable::HiddenVisibility);
1949 
1950   // Create a call to register the globals with the runtime.
1951   IRB.CreateCall(AsanRegisterElfGlobals,
1952                  {IRB.CreatePointerCast(RegisteredFlag, IntptrTy),
1953                   IRB.CreatePointerCast(StartELFMetadata, IntptrTy),
1954                   IRB.CreatePointerCast(StopELFMetadata, IntptrTy)});
1955 
1956   // We also need to unregister globals at the end, e.g., when a shared library
1957   // gets closed.
1958   IRBuilder<> IRB_Dtor = CreateAsanModuleDtor(M);
1959   IRB_Dtor.CreateCall(AsanUnregisterElfGlobals,
1960                       {IRB.CreatePointerCast(RegisteredFlag, IntptrTy),
1961                        IRB.CreatePointerCast(StartELFMetadata, IntptrTy),
1962                        IRB.CreatePointerCast(StopELFMetadata, IntptrTy)});
1963 }
1964 
1965 void AddressSanitizerModule::InstrumentGlobalsMachO(
1966     IRBuilder<> &IRB, Module &M, ArrayRef<GlobalVariable *> ExtendedGlobals,
1967     ArrayRef<Constant *> MetadataInitializers) {
1968   assert(ExtendedGlobals.size() == MetadataInitializers.size());
1969 
1970   // On recent Mach-O platforms, use a structure which binds the liveness of
1971   // the global variable to the metadata struct. Keep the list of "Liveness" GV
1972   // created to be added to llvm.compiler.used
1973   StructType *LivenessTy = StructType::get(IntptrTy, IntptrTy);
1974   SmallVector<GlobalValue *, 16> LivenessGlobals(ExtendedGlobals.size());
1975 
1976   for (size_t i = 0; i < ExtendedGlobals.size(); i++) {
1977     Constant *Initializer = MetadataInitializers[i];
1978     GlobalVariable *G = ExtendedGlobals[i];
1979     GlobalVariable *Metadata =
1980         CreateMetadataGlobal(M, Initializer, G->getName());
1981 
1982     // On recent Mach-O platforms, we emit the global metadata in a way that
1983     // allows the linker to properly strip dead globals.
1984     auto LivenessBinder =
1985         ConstantStruct::get(LivenessTy, Initializer->getAggregateElement(0u),
1986                             ConstantExpr::getPointerCast(Metadata, IntptrTy));
1987     GlobalVariable *Liveness = new GlobalVariable(
1988         M, LivenessTy, false, GlobalVariable::InternalLinkage, LivenessBinder,
1989         Twine("__asan_binder_") + G->getName());
1990     Liveness->setSection("__DATA,__asan_liveness,regular,live_support");
1991     LivenessGlobals[i] = Liveness;
1992   }
1993 
1994   // Update llvm.compiler.used, adding the new liveness globals. This is
1995   // needed so that during LTO these variables stay alive. The alternative
1996   // would be to have the linker handling the LTO symbols, but libLTO
1997   // current API does not expose access to the section for each symbol.
1998   if (!LivenessGlobals.empty())
1999     appendToCompilerUsed(M, LivenessGlobals);
2000 
2001   // RegisteredFlag serves two purposes. First, we can pass it to dladdr()
2002   // to look up the loaded image that contains it. Second, we can store in it
2003   // whether registration has already occurred, to prevent duplicate
2004   // registration.
2005   //
2006   // common linkage ensures that there is only one global per shared library.
2007   GlobalVariable *RegisteredFlag = new GlobalVariable(
2008       M, IntptrTy, false, GlobalVariable::CommonLinkage,
2009       ConstantInt::get(IntptrTy, 0), kAsanGlobalsRegisteredFlagName);
2010   RegisteredFlag->setVisibility(GlobalVariable::HiddenVisibility);
2011 
2012   IRB.CreateCall(AsanRegisterImageGlobals,
2013                  {IRB.CreatePointerCast(RegisteredFlag, IntptrTy)});
2014 
2015   // We also need to unregister globals at the end, e.g., when a shared library
2016   // gets closed.
2017   IRBuilder<> IRB_Dtor = CreateAsanModuleDtor(M);
2018   IRB_Dtor.CreateCall(AsanUnregisterImageGlobals,
2019                       {IRB.CreatePointerCast(RegisteredFlag, IntptrTy)});
2020 }
2021 
2022 void AddressSanitizerModule::InstrumentGlobalsWithMetadataArray(
2023     IRBuilder<> &IRB, Module &M, ArrayRef<GlobalVariable *> ExtendedGlobals,
2024     ArrayRef<Constant *> MetadataInitializers) {
2025   assert(ExtendedGlobals.size() == MetadataInitializers.size());
2026   unsigned N = ExtendedGlobals.size();
2027   assert(N > 0);
2028 
2029   // On platforms that don't have a custom metadata section, we emit an array
2030   // of global metadata structures.
2031   ArrayType *ArrayOfGlobalStructTy =
2032       ArrayType::get(MetadataInitializers[0]->getType(), N);
2033   auto AllGlobals = new GlobalVariable(
2034       M, ArrayOfGlobalStructTy, false, GlobalVariable::InternalLinkage,
2035       ConstantArray::get(ArrayOfGlobalStructTy, MetadataInitializers), "");
2036   if (Mapping.Scale > 3)
2037     AllGlobals->setAlignment(1ULL << Mapping.Scale);
2038 
2039   IRB.CreateCall(AsanRegisterGlobals,
2040                  {IRB.CreatePointerCast(AllGlobals, IntptrTy),
2041                   ConstantInt::get(IntptrTy, N)});
2042 
2043   // We also need to unregister globals at the end, e.g., when a shared library
2044   // gets closed.
2045   IRBuilder<> IRB_Dtor = CreateAsanModuleDtor(M);
2046   IRB_Dtor.CreateCall(AsanUnregisterGlobals,
2047                       {IRB.CreatePointerCast(AllGlobals, IntptrTy),
2048                        ConstantInt::get(IntptrTy, N)});
2049 }
2050 
2051 // This function replaces all global variables with new variables that have
2052 // trailing redzones. It also creates a function that poisons
2053 // redzones and inserts this function into llvm.global_ctors.
2054 // Sets *CtorComdat to true if the global registration code emitted into the
2055 // asan constructor is comdat-compatible.
2056 bool AddressSanitizerModule::InstrumentGlobals(IRBuilder<> &IRB, Module &M, bool *CtorComdat) {
2057   *CtorComdat = false;
2058   GlobalsMD.init(M);
2059 
2060   SmallVector<GlobalVariable *, 16> GlobalsToChange;
2061 
2062   for (auto &G : M.globals()) {
2063     if (ShouldInstrumentGlobal(&G)) GlobalsToChange.push_back(&G);
2064   }
2065 
2066   size_t n = GlobalsToChange.size();
2067   if (n == 0) {
2068     *CtorComdat = true;
2069     return false;
2070   }
2071 
2072   auto &DL = M.getDataLayout();
2073 
2074   // A global is described by a structure
2075   //   size_t beg;
2076   //   size_t size;
2077   //   size_t size_with_redzone;
2078   //   const char *name;
2079   //   const char *module_name;
2080   //   size_t has_dynamic_init;
2081   //   void *source_location;
2082   //   size_t odr_indicator;
2083   // We initialize an array of such structures and pass it to a run-time call.
2084   StructType *GlobalStructTy =
2085       StructType::get(IntptrTy, IntptrTy, IntptrTy, IntptrTy, IntptrTy,
2086                       IntptrTy, IntptrTy, IntptrTy);
2087   SmallVector<GlobalVariable *, 16> NewGlobals(n);
2088   SmallVector<Constant *, 16> Initializers(n);
2089 
2090   bool HasDynamicallyInitializedGlobals = false;
2091 
2092   // We shouldn't merge same module names, as this string serves as unique
2093   // module ID in runtime.
2094   GlobalVariable *ModuleName = createPrivateGlobalForString(
2095       M, M.getModuleIdentifier(), /*AllowMerging*/ false, kAsanGenPrefix);
2096 
2097   for (size_t i = 0; i < n; i++) {
2098     static const uint64_t kMaxGlobalRedzone = 1 << 18;
2099     GlobalVariable *G = GlobalsToChange[i];
2100 
2101     auto MD = GlobalsMD.get(G);
2102     StringRef NameForGlobal = G->getName();
2103     // Create string holding the global name (use global name from metadata
2104     // if it's available, otherwise just write the name of global variable).
2105     GlobalVariable *Name = createPrivateGlobalForString(
2106         M, MD.Name.empty() ? NameForGlobal : MD.Name,
2107         /*AllowMerging*/ true, kAsanGenPrefix);
2108 
2109     Type *Ty = G->getValueType();
2110     uint64_t SizeInBytes = DL.getTypeAllocSize(Ty);
2111     uint64_t MinRZ = MinRedzoneSizeForGlobal();
2112     // MinRZ <= RZ <= kMaxGlobalRedzone
2113     // and trying to make RZ to be ~ 1/4 of SizeInBytes.
2114     uint64_t RZ = std::max(
2115         MinRZ, std::min(kMaxGlobalRedzone, (SizeInBytes / MinRZ / 4) * MinRZ));
2116     uint64_t RightRedzoneSize = RZ;
2117     // Round up to MinRZ
2118     if (SizeInBytes % MinRZ) RightRedzoneSize += MinRZ - (SizeInBytes % MinRZ);
2119     assert(((RightRedzoneSize + SizeInBytes) % MinRZ) == 0);
2120     Type *RightRedZoneTy = ArrayType::get(IRB.getInt8Ty(), RightRedzoneSize);
2121 
2122     StructType *NewTy = StructType::get(Ty, RightRedZoneTy);
2123     Constant *NewInitializer = ConstantStruct::get(
2124         NewTy, G->getInitializer(), Constant::getNullValue(RightRedZoneTy));
2125 
2126     // Create a new global variable with enough space for a redzone.
2127     GlobalValue::LinkageTypes Linkage = G->getLinkage();
2128     if (G->isConstant() && Linkage == GlobalValue::PrivateLinkage)
2129       Linkage = GlobalValue::InternalLinkage;
2130     GlobalVariable *NewGlobal =
2131         new GlobalVariable(M, NewTy, G->isConstant(), Linkage, NewInitializer,
2132                            "", G, G->getThreadLocalMode());
2133     NewGlobal->copyAttributesFrom(G);
2134     NewGlobal->setComdat(G->getComdat());
2135     NewGlobal->setAlignment(MinRZ);
2136 
2137     // Move null-terminated C strings to "__asan_cstring" section on Darwin.
2138     if (TargetTriple.isOSBinFormatMachO() && !G->hasSection() &&
2139         G->isConstant()) {
2140       auto Seq = dyn_cast<ConstantDataSequential>(G->getInitializer());
2141       if (Seq && Seq->isCString())
2142         NewGlobal->setSection("__TEXT,__asan_cstring,regular");
2143     }
2144 
2145     // Transfer the debug info.  The payload starts at offset zero so we can
2146     // copy the debug info over as is.
2147     SmallVector<DIGlobalVariableExpression *, 1> GVs;
2148     G->getDebugInfo(GVs);
2149     for (auto *GV : GVs)
2150       NewGlobal->addDebugInfo(GV);
2151 
2152     Value *Indices2[2];
2153     Indices2[0] = IRB.getInt32(0);
2154     Indices2[1] = IRB.getInt32(0);
2155 
2156     G->replaceAllUsesWith(
2157         ConstantExpr::getGetElementPtr(NewTy, NewGlobal, Indices2, true));
2158     NewGlobal->takeName(G);
2159     G->eraseFromParent();
2160     NewGlobals[i] = NewGlobal;
2161 
2162     Constant *SourceLoc;
2163     if (!MD.SourceLoc.empty()) {
2164       auto SourceLocGlobal = createPrivateGlobalForSourceLoc(M, MD.SourceLoc);
2165       SourceLoc = ConstantExpr::getPointerCast(SourceLocGlobal, IntptrTy);
2166     } else {
2167       SourceLoc = ConstantInt::get(IntptrTy, 0);
2168     }
2169 
2170     Constant *ODRIndicator = ConstantExpr::getNullValue(IRB.getInt8PtrTy());
2171     GlobalValue *InstrumentedGlobal = NewGlobal;
2172 
2173     bool CanUsePrivateAliases =
2174         TargetTriple.isOSBinFormatELF() || TargetTriple.isOSBinFormatMachO() ||
2175         TargetTriple.isOSBinFormatWasm();
2176     if (CanUsePrivateAliases && ClUsePrivateAliasForGlobals) {
2177       // Create local alias for NewGlobal to avoid crash on ODR between
2178       // instrumented and non-instrumented libraries.
2179       auto *GA = GlobalAlias::create(GlobalValue::InternalLinkage,
2180                                      NameForGlobal + M.getName(), NewGlobal);
2181 
2182       // With local aliases, we need to provide another externally visible
2183       // symbol __odr_asan_XXX to detect ODR violation.
2184       auto *ODRIndicatorSym =
2185           new GlobalVariable(M, IRB.getInt8Ty(), false, Linkage,
2186                              Constant::getNullValue(IRB.getInt8Ty()),
2187                              kODRGenPrefix + NameForGlobal, nullptr,
2188                              NewGlobal->getThreadLocalMode());
2189 
2190       // Set meaningful attributes for indicator symbol.
2191       ODRIndicatorSym->setVisibility(NewGlobal->getVisibility());
2192       ODRIndicatorSym->setDLLStorageClass(NewGlobal->getDLLStorageClass());
2193       ODRIndicatorSym->setAlignment(1);
2194       ODRIndicator = ODRIndicatorSym;
2195       InstrumentedGlobal = GA;
2196     }
2197 
2198     Constant *Initializer = ConstantStruct::get(
2199         GlobalStructTy,
2200         ConstantExpr::getPointerCast(InstrumentedGlobal, IntptrTy),
2201         ConstantInt::get(IntptrTy, SizeInBytes),
2202         ConstantInt::get(IntptrTy, SizeInBytes + RightRedzoneSize),
2203         ConstantExpr::getPointerCast(Name, IntptrTy),
2204         ConstantExpr::getPointerCast(ModuleName, IntptrTy),
2205         ConstantInt::get(IntptrTy, MD.IsDynInit), SourceLoc,
2206         ConstantExpr::getPointerCast(ODRIndicator, IntptrTy));
2207 
2208     if (ClInitializers && MD.IsDynInit) HasDynamicallyInitializedGlobals = true;
2209 
2210     LLVM_DEBUG(dbgs() << "NEW GLOBAL: " << *NewGlobal << "\n");
2211 
2212     Initializers[i] = Initializer;
2213   }
2214 
2215   // Add instrumented globals to llvm.compiler.used list to avoid LTO from
2216   // ConstantMerge'ing them.
2217   SmallVector<GlobalValue *, 16> GlobalsToAddToUsedList;
2218   for (size_t i = 0; i < n; i++) {
2219     GlobalVariable *G = NewGlobals[i];
2220     if (G->getName().empty()) continue;
2221     GlobalsToAddToUsedList.push_back(G);
2222   }
2223   appendToCompilerUsed(M, ArrayRef<GlobalValue *>(GlobalsToAddToUsedList));
2224 
2225   std::string ELFUniqueModuleId =
2226       (UseGlobalsGC && TargetTriple.isOSBinFormatELF()) ? getUniqueModuleId(&M)
2227                                                         : "";
2228 
2229   if (!ELFUniqueModuleId.empty()) {
2230     InstrumentGlobalsELF(IRB, M, NewGlobals, Initializers, ELFUniqueModuleId);
2231     *CtorComdat = true;
2232   } else if (UseGlobalsGC && TargetTriple.isOSBinFormatCOFF()) {
2233     InstrumentGlobalsCOFF(IRB, M, NewGlobals, Initializers);
2234   } else if (UseGlobalsGC && ShouldUseMachOGlobalsSection()) {
2235     InstrumentGlobalsMachO(IRB, M, NewGlobals, Initializers);
2236   } else {
2237     InstrumentGlobalsWithMetadataArray(IRB, M, NewGlobals, Initializers);
2238   }
2239 
2240   // Create calls for poisoning before initializers run and unpoisoning after.
2241   if (HasDynamicallyInitializedGlobals)
2242     createInitializerPoisonCalls(M, ModuleName);
2243 
2244   LLVM_DEBUG(dbgs() << M);
2245   return true;
2246 }
2247 
2248 int AddressSanitizerModule::GetAsanVersion(const Module &M) const {
2249   int LongSize = M.getDataLayout().getPointerSizeInBits();
2250   bool isAndroid = Triple(M.getTargetTriple()).isAndroid();
2251   int Version = 8;
2252   // 32-bit Android is one version ahead because of the switch to dynamic
2253   // shadow.
2254   Version += (LongSize == 32 && isAndroid);
2255   return Version;
2256 }
2257 
2258 bool AddressSanitizerModule::runOnModule(Module &M) {
2259   C = &(M.getContext());
2260   int LongSize = M.getDataLayout().getPointerSizeInBits();
2261   IntptrTy = Type::getIntNTy(*C, LongSize);
2262   TargetTriple = Triple(M.getTargetTriple());
2263   Mapping = getShadowMapping(TargetTriple, LongSize, CompileKernel);
2264   initializeCallbacks(M);
2265 
2266   if (CompileKernel)
2267     return false;
2268 
2269   // Create a module constructor. A destructor is created lazily because not all
2270   // platforms, and not all modules need it.
2271   std::string VersionCheckName =
2272       kAsanVersionCheckNamePrefix + std::to_string(GetAsanVersion(M));
2273   std::tie(AsanCtorFunction, std::ignore) = createSanitizerCtorAndInitFunctions(
2274       M, kAsanModuleCtorName, kAsanInitName, /*InitArgTypes=*/{},
2275       /*InitArgs=*/{}, VersionCheckName);
2276 
2277   bool CtorComdat = true;
2278   bool Changed = false;
2279   // TODO(glider): temporarily disabled globals instrumentation for KASan.
2280   if (ClGlobals) {
2281     IRBuilder<> IRB(AsanCtorFunction->getEntryBlock().getTerminator());
2282     Changed |= InstrumentGlobals(IRB, M, &CtorComdat);
2283   }
2284 
2285   // Put the constructor and destructor in comdat if both
2286   // (1) global instrumentation is not TU-specific
2287   // (2) target is ELF.
2288   if (UseCtorComdat && TargetTriple.isOSBinFormatELF() && CtorComdat) {
2289     AsanCtorFunction->setComdat(M.getOrInsertComdat(kAsanModuleCtorName));
2290     appendToGlobalCtors(M, AsanCtorFunction, kAsanCtorAndDtorPriority,
2291                         AsanCtorFunction);
2292     if (AsanDtorFunction) {
2293       AsanDtorFunction->setComdat(M.getOrInsertComdat(kAsanModuleDtorName));
2294       appendToGlobalDtors(M, AsanDtorFunction, kAsanCtorAndDtorPriority,
2295                           AsanDtorFunction);
2296     }
2297   } else {
2298     appendToGlobalCtors(M, AsanCtorFunction, kAsanCtorAndDtorPriority);
2299     if (AsanDtorFunction)
2300       appendToGlobalDtors(M, AsanDtorFunction, kAsanCtorAndDtorPriority);
2301   }
2302 
2303   return Changed;
2304 }
2305 
2306 void AddressSanitizer::initializeCallbacks(Module &M) {
2307   IRBuilder<> IRB(*C);
2308   // Create __asan_report* callbacks.
2309   // IsWrite, TypeSize and Exp are encoded in the function name.
2310   for (int Exp = 0; Exp < 2; Exp++) {
2311     for (size_t AccessIsWrite = 0; AccessIsWrite <= 1; AccessIsWrite++) {
2312       const std::string TypeStr = AccessIsWrite ? "store" : "load";
2313       const std::string ExpStr = Exp ? "exp_" : "";
2314       const std::string EndingStr = Recover ? "_noabort" : "";
2315 
2316       SmallVector<Type *, 3> Args2 = {IntptrTy, IntptrTy};
2317       SmallVector<Type *, 2> Args1{1, IntptrTy};
2318       if (Exp) {
2319         Type *ExpType = Type::getInt32Ty(*C);
2320         Args2.push_back(ExpType);
2321         Args1.push_back(ExpType);
2322       }
2323       AsanErrorCallbackSized[AccessIsWrite][Exp] =
2324           checkSanitizerInterfaceFunction(M.getOrInsertFunction(
2325               kAsanReportErrorTemplate + ExpStr + TypeStr + "_n" + EndingStr,
2326               FunctionType::get(IRB.getVoidTy(), Args2, false)));
2327 
2328       AsanMemoryAccessCallbackSized[AccessIsWrite][Exp] =
2329           checkSanitizerInterfaceFunction(M.getOrInsertFunction(
2330               ClMemoryAccessCallbackPrefix + ExpStr + TypeStr + "N" + EndingStr,
2331               FunctionType::get(IRB.getVoidTy(), Args2, false)));
2332 
2333       for (size_t AccessSizeIndex = 0; AccessSizeIndex < kNumberOfAccessSizes;
2334            AccessSizeIndex++) {
2335         const std::string Suffix = TypeStr + itostr(1ULL << AccessSizeIndex);
2336         AsanErrorCallback[AccessIsWrite][Exp][AccessSizeIndex] =
2337             checkSanitizerInterfaceFunction(M.getOrInsertFunction(
2338                 kAsanReportErrorTemplate + ExpStr + Suffix + EndingStr,
2339                 FunctionType::get(IRB.getVoidTy(), Args1, false)));
2340 
2341         AsanMemoryAccessCallback[AccessIsWrite][Exp][AccessSizeIndex] =
2342             checkSanitizerInterfaceFunction(M.getOrInsertFunction(
2343                 ClMemoryAccessCallbackPrefix + ExpStr + Suffix + EndingStr,
2344                 FunctionType::get(IRB.getVoidTy(), Args1, false)));
2345       }
2346     }
2347   }
2348 
2349   const std::string MemIntrinCallbackPrefix =
2350       CompileKernel ? std::string("") : ClMemoryAccessCallbackPrefix;
2351   AsanMemmove = checkSanitizerInterfaceFunction(M.getOrInsertFunction(
2352       MemIntrinCallbackPrefix + "memmove", IRB.getInt8PtrTy(),
2353       IRB.getInt8PtrTy(), IRB.getInt8PtrTy(), IntptrTy));
2354   AsanMemcpy = checkSanitizerInterfaceFunction(M.getOrInsertFunction(
2355       MemIntrinCallbackPrefix + "memcpy", IRB.getInt8PtrTy(),
2356       IRB.getInt8PtrTy(), IRB.getInt8PtrTy(), IntptrTy));
2357   AsanMemset = checkSanitizerInterfaceFunction(M.getOrInsertFunction(
2358       MemIntrinCallbackPrefix + "memset", IRB.getInt8PtrTy(),
2359       IRB.getInt8PtrTy(), IRB.getInt32Ty(), IntptrTy));
2360 
2361   AsanHandleNoReturnFunc = checkSanitizerInterfaceFunction(
2362       M.getOrInsertFunction(kAsanHandleNoReturnName, IRB.getVoidTy()));
2363 
2364   AsanPtrCmpFunction = checkSanitizerInterfaceFunction(M.getOrInsertFunction(
2365       kAsanPtrCmp, IRB.getVoidTy(), IntptrTy, IntptrTy));
2366   AsanPtrSubFunction = checkSanitizerInterfaceFunction(M.getOrInsertFunction(
2367       kAsanPtrSub, IRB.getVoidTy(), IntptrTy, IntptrTy));
2368   // We insert an empty inline asm after __asan_report* to avoid callback merge.
2369   EmptyAsm = InlineAsm::get(FunctionType::get(IRB.getVoidTy(), false),
2370                             StringRef(""), StringRef(""),
2371                             /*hasSideEffects=*/true);
2372   if (Mapping.InGlobal)
2373     AsanShadowGlobal = M.getOrInsertGlobal("__asan_shadow",
2374                                            ArrayType::get(IRB.getInt8Ty(), 0));
2375 }
2376 
2377 // virtual
2378 bool AddressSanitizer::doInitialization(Module &M) {
2379   // Initialize the private fields. No one has accessed them before.
2380   GlobalsMD.init(M);
2381 
2382   C = &(M.getContext());
2383   LongSize = M.getDataLayout().getPointerSizeInBits();
2384   IntptrTy = Type::getIntNTy(*C, LongSize);
2385   TargetTriple = Triple(M.getTargetTriple());
2386 
2387   Mapping = getShadowMapping(TargetTriple, LongSize, CompileKernel);
2388   return true;
2389 }
2390 
2391 bool AddressSanitizer::doFinalization(Module &M) {
2392   GlobalsMD.reset();
2393   return false;
2394 }
2395 
2396 bool AddressSanitizer::maybeInsertAsanInitAtFunctionEntry(Function &F) {
2397   // For each NSObject descendant having a +load method, this method is invoked
2398   // by the ObjC runtime before any of the static constructors is called.
2399   // Therefore we need to instrument such methods with a call to __asan_init
2400   // at the beginning in order to initialize our runtime before any access to
2401   // the shadow memory.
2402   // We cannot just ignore these methods, because they may call other
2403   // instrumented functions.
2404   if (F.getName().find(" load]") != std::string::npos) {
2405     Function *AsanInitFunction =
2406         declareSanitizerInitFunction(*F.getParent(), kAsanInitName, {});
2407     IRBuilder<> IRB(&F.front(), F.front().begin());
2408     IRB.CreateCall(AsanInitFunction, {});
2409     return true;
2410   }
2411   return false;
2412 }
2413 
2414 void AddressSanitizer::maybeInsertDynamicShadowAtFunctionEntry(Function &F) {
2415   // Generate code only when dynamic addressing is needed.
2416   if (Mapping.Offset != kDynamicShadowSentinel)
2417     return;
2418 
2419   IRBuilder<> IRB(&F.front().front());
2420   if (Mapping.InGlobal) {
2421     if (ClWithIfuncSuppressRemat) {
2422       // An empty inline asm with input reg == output reg.
2423       // An opaque pointer-to-int cast, basically.
2424       InlineAsm *Asm = InlineAsm::get(
2425           FunctionType::get(IntptrTy, {AsanShadowGlobal->getType()}, false),
2426           StringRef(""), StringRef("=r,0"),
2427           /*hasSideEffects=*/false);
2428       LocalDynamicShadow =
2429           IRB.CreateCall(Asm, {AsanShadowGlobal}, ".asan.shadow");
2430     } else {
2431       LocalDynamicShadow =
2432           IRB.CreatePointerCast(AsanShadowGlobal, IntptrTy, ".asan.shadow");
2433     }
2434   } else {
2435     Value *GlobalDynamicAddress = F.getParent()->getOrInsertGlobal(
2436         kAsanShadowMemoryDynamicAddress, IntptrTy);
2437     LocalDynamicShadow = IRB.CreateLoad(GlobalDynamicAddress);
2438   }
2439 }
2440 
2441 void AddressSanitizer::markEscapedLocalAllocas(Function &F) {
2442   // Find the one possible call to llvm.localescape and pre-mark allocas passed
2443   // to it as uninteresting. This assumes we haven't started processing allocas
2444   // yet. This check is done up front because iterating the use list in
2445   // isInterestingAlloca would be algorithmically slower.
2446   assert(ProcessedAllocas.empty() && "must process localescape before allocas");
2447 
2448   // Try to get the declaration of llvm.localescape. If it's not in the module,
2449   // we can exit early.
2450   if (!F.getParent()->getFunction("llvm.localescape")) return;
2451 
2452   // Look for a call to llvm.localescape call in the entry block. It can't be in
2453   // any other block.
2454   for (Instruction &I : F.getEntryBlock()) {
2455     IntrinsicInst *II = dyn_cast<IntrinsicInst>(&I);
2456     if (II && II->getIntrinsicID() == Intrinsic::localescape) {
2457       // We found a call. Mark all the allocas passed in as uninteresting.
2458       for (Value *Arg : II->arg_operands()) {
2459         AllocaInst *AI = dyn_cast<AllocaInst>(Arg->stripPointerCasts());
2460         assert(AI && AI->isStaticAlloca() &&
2461                "non-static alloca arg to localescape");
2462         ProcessedAllocas[AI] = false;
2463       }
2464       break;
2465     }
2466   }
2467 }
2468 
2469 bool AddressSanitizer::runOnFunction(Function &F) {
2470   if (F.getLinkage() == GlobalValue::AvailableExternallyLinkage) return false;
2471   if (!ClDebugFunc.empty() && ClDebugFunc == F.getName()) return false;
2472   if (F.getName().startswith("__asan_")) return false;
2473 
2474   bool FunctionModified = false;
2475 
2476   // If needed, insert __asan_init before checking for SanitizeAddress attr.
2477   // This function needs to be called even if the function body is not
2478   // instrumented.
2479   if (maybeInsertAsanInitAtFunctionEntry(F))
2480     FunctionModified = true;
2481 
2482   // Leave if the function doesn't need instrumentation.
2483   if (!F.hasFnAttribute(Attribute::SanitizeAddress)) return FunctionModified;
2484 
2485   LLVM_DEBUG(dbgs() << "ASAN instrumenting:\n" << F << "\n");
2486 
2487   initializeCallbacks(*F.getParent());
2488   DT = &getAnalysis<DominatorTreeWrapperPass>().getDomTree();
2489 
2490   FunctionStateRAII CleanupObj(this);
2491 
2492   maybeInsertDynamicShadowAtFunctionEntry(F);
2493 
2494   // We can't instrument allocas used with llvm.localescape. Only static allocas
2495   // can be passed to that intrinsic.
2496   markEscapedLocalAllocas(F);
2497 
2498   // We want to instrument every address only once per basic block (unless there
2499   // are calls between uses).
2500   SmallPtrSet<Value *, 16> TempsToInstrument;
2501   SmallVector<Instruction *, 16> ToInstrument;
2502   SmallVector<Instruction *, 8> NoReturnCalls;
2503   SmallVector<BasicBlock *, 16> AllBlocks;
2504   SmallVector<Instruction *, 16> PointerComparisonsOrSubtracts;
2505   int NumAllocas = 0;
2506   bool IsWrite;
2507   unsigned Alignment;
2508   uint64_t TypeSize;
2509   const TargetLibraryInfo *TLI =
2510       &getAnalysis<TargetLibraryInfoWrapperPass>().getTLI();
2511 
2512   // Fill the set of memory operations to instrument.
2513   for (auto &BB : F) {
2514     AllBlocks.push_back(&BB);
2515     TempsToInstrument.clear();
2516     int NumInsnsPerBB = 0;
2517     for (auto &Inst : BB) {
2518       if (LooksLikeCodeInBug11395(&Inst)) return false;
2519       Value *MaybeMask = nullptr;
2520       if (Value *Addr = isInterestingMemoryAccess(&Inst, &IsWrite, &TypeSize,
2521                                                   &Alignment, &MaybeMask)) {
2522         if (ClOpt && ClOptSameTemp) {
2523           // If we have a mask, skip instrumentation if we've already
2524           // instrumented the full object. But don't add to TempsToInstrument
2525           // because we might get another load/store with a different mask.
2526           if (MaybeMask) {
2527             if (TempsToInstrument.count(Addr))
2528               continue; // We've seen this (whole) temp in the current BB.
2529           } else {
2530             if (!TempsToInstrument.insert(Addr).second)
2531               continue; // We've seen this temp in the current BB.
2532           }
2533         }
2534       } else if (ClInvalidPointerPairs &&
2535                  isInterestingPointerComparisonOrSubtraction(&Inst)) {
2536         PointerComparisonsOrSubtracts.push_back(&Inst);
2537         continue;
2538       } else if (isa<MemIntrinsic>(Inst)) {
2539         // ok, take it.
2540       } else {
2541         if (isa<AllocaInst>(Inst)) NumAllocas++;
2542         CallSite CS(&Inst);
2543         if (CS) {
2544           // A call inside BB.
2545           TempsToInstrument.clear();
2546           if (CS.doesNotReturn()) NoReturnCalls.push_back(CS.getInstruction());
2547         }
2548         if (CallInst *CI = dyn_cast<CallInst>(&Inst))
2549           maybeMarkSanitizerLibraryCallNoBuiltin(CI, TLI);
2550         continue;
2551       }
2552       ToInstrument.push_back(&Inst);
2553       NumInsnsPerBB++;
2554       if (NumInsnsPerBB >= ClMaxInsnsToInstrumentPerBB) break;
2555     }
2556   }
2557 
2558   bool UseCalls =
2559       (ClInstrumentationWithCallsThreshold >= 0 &&
2560        ToInstrument.size() > (unsigned)ClInstrumentationWithCallsThreshold);
2561   const DataLayout &DL = F.getParent()->getDataLayout();
2562   ObjectSizeOpts ObjSizeOpts;
2563   ObjSizeOpts.RoundToAlign = true;
2564   ObjectSizeOffsetVisitor ObjSizeVis(DL, TLI, F.getContext(), ObjSizeOpts);
2565 
2566   // Instrument.
2567   int NumInstrumented = 0;
2568   for (auto Inst : ToInstrument) {
2569     if (ClDebugMin < 0 || ClDebugMax < 0 ||
2570         (NumInstrumented >= ClDebugMin && NumInstrumented <= ClDebugMax)) {
2571       if (isInterestingMemoryAccess(Inst, &IsWrite, &TypeSize, &Alignment))
2572         instrumentMop(ObjSizeVis, Inst, UseCalls,
2573                       F.getParent()->getDataLayout());
2574       else
2575         instrumentMemIntrinsic(cast<MemIntrinsic>(Inst));
2576     }
2577     NumInstrumented++;
2578   }
2579 
2580   FunctionStackPoisoner FSP(F, *this);
2581   bool ChangedStack = FSP.runOnFunction();
2582 
2583   // We must unpoison the stack before every NoReturn call (throw, _exit, etc).
2584   // See e.g. https://github.com/google/sanitizers/issues/37
2585   for (auto CI : NoReturnCalls) {
2586     IRBuilder<> IRB(CI);
2587     IRB.CreateCall(AsanHandleNoReturnFunc, {});
2588   }
2589 
2590   for (auto Inst : PointerComparisonsOrSubtracts) {
2591     instrumentPointerComparisonOrSubtraction(Inst);
2592     NumInstrumented++;
2593   }
2594 
2595   if (NumInstrumented > 0 || ChangedStack || !NoReturnCalls.empty())
2596     FunctionModified = true;
2597 
2598   LLVM_DEBUG(dbgs() << "ASAN done instrumenting: " << FunctionModified << " "
2599                     << F << "\n");
2600 
2601   return FunctionModified;
2602 }
2603 
2604 // Workaround for bug 11395: we don't want to instrument stack in functions
2605 // with large assembly blobs (32-bit only), otherwise reg alloc may crash.
2606 // FIXME: remove once the bug 11395 is fixed.
2607 bool AddressSanitizer::LooksLikeCodeInBug11395(Instruction *I) {
2608   if (LongSize != 32) return false;
2609   CallInst *CI = dyn_cast<CallInst>(I);
2610   if (!CI || !CI->isInlineAsm()) return false;
2611   if (CI->getNumArgOperands() <= 5) return false;
2612   // We have inline assembly with quite a few arguments.
2613   return true;
2614 }
2615 
2616 void FunctionStackPoisoner::initializeCallbacks(Module &M) {
2617   IRBuilder<> IRB(*C);
2618   for (int i = 0; i <= kMaxAsanStackMallocSizeClass; i++) {
2619     std::string Suffix = itostr(i);
2620     AsanStackMallocFunc[i] = checkSanitizerInterfaceFunction(
2621         M.getOrInsertFunction(kAsanStackMallocNameTemplate + Suffix, IntptrTy,
2622                               IntptrTy));
2623     AsanStackFreeFunc[i] = checkSanitizerInterfaceFunction(
2624         M.getOrInsertFunction(kAsanStackFreeNameTemplate + Suffix,
2625                               IRB.getVoidTy(), IntptrTy, IntptrTy));
2626   }
2627   if (ASan.UseAfterScope) {
2628     AsanPoisonStackMemoryFunc = checkSanitizerInterfaceFunction(
2629         M.getOrInsertFunction(kAsanPoisonStackMemoryName, IRB.getVoidTy(),
2630                               IntptrTy, IntptrTy));
2631     AsanUnpoisonStackMemoryFunc = checkSanitizerInterfaceFunction(
2632         M.getOrInsertFunction(kAsanUnpoisonStackMemoryName, IRB.getVoidTy(),
2633                               IntptrTy, IntptrTy));
2634   }
2635 
2636   for (size_t Val : {0x00, 0xf1, 0xf2, 0xf3, 0xf5, 0xf8}) {
2637     std::ostringstream Name;
2638     Name << kAsanSetShadowPrefix;
2639     Name << std::setw(2) << std::setfill('0') << std::hex << Val;
2640     AsanSetShadowFunc[Val] =
2641         checkSanitizerInterfaceFunction(M.getOrInsertFunction(
2642             Name.str(), IRB.getVoidTy(), IntptrTy, IntptrTy));
2643   }
2644 
2645   AsanAllocaPoisonFunc = checkSanitizerInterfaceFunction(M.getOrInsertFunction(
2646       kAsanAllocaPoison, IRB.getVoidTy(), IntptrTy, IntptrTy));
2647   AsanAllocasUnpoisonFunc =
2648       checkSanitizerInterfaceFunction(M.getOrInsertFunction(
2649           kAsanAllocasUnpoison, IRB.getVoidTy(), IntptrTy, IntptrTy));
2650 }
2651 
2652 void FunctionStackPoisoner::copyToShadowInline(ArrayRef<uint8_t> ShadowMask,
2653                                                ArrayRef<uint8_t> ShadowBytes,
2654                                                size_t Begin, size_t End,
2655                                                IRBuilder<> &IRB,
2656                                                Value *ShadowBase) {
2657   if (Begin >= End)
2658     return;
2659 
2660   const size_t LargestStoreSizeInBytes =
2661       std::min<size_t>(sizeof(uint64_t), ASan.LongSize / 8);
2662 
2663   const bool IsLittleEndian = F.getParent()->getDataLayout().isLittleEndian();
2664 
2665   // Poison given range in shadow using larges store size with out leading and
2666   // trailing zeros in ShadowMask. Zeros never change, so they need neither
2667   // poisoning nor up-poisoning. Still we don't mind if some of them get into a
2668   // middle of a store.
2669   for (size_t i = Begin; i < End;) {
2670     if (!ShadowMask[i]) {
2671       assert(!ShadowBytes[i]);
2672       ++i;
2673       continue;
2674     }
2675 
2676     size_t StoreSizeInBytes = LargestStoreSizeInBytes;
2677     // Fit store size into the range.
2678     while (StoreSizeInBytes > End - i)
2679       StoreSizeInBytes /= 2;
2680 
2681     // Minimize store size by trimming trailing zeros.
2682     for (size_t j = StoreSizeInBytes - 1; j && !ShadowMask[i + j]; --j) {
2683       while (j <= StoreSizeInBytes / 2)
2684         StoreSizeInBytes /= 2;
2685     }
2686 
2687     uint64_t Val = 0;
2688     for (size_t j = 0; j < StoreSizeInBytes; j++) {
2689       if (IsLittleEndian)
2690         Val |= (uint64_t)ShadowBytes[i + j] << (8 * j);
2691       else
2692         Val = (Val << 8) | ShadowBytes[i + j];
2693     }
2694 
2695     Value *Ptr = IRB.CreateAdd(ShadowBase, ConstantInt::get(IntptrTy, i));
2696     Value *Poison = IRB.getIntN(StoreSizeInBytes * 8, Val);
2697     IRB.CreateAlignedStore(
2698         Poison, IRB.CreateIntToPtr(Ptr, Poison->getType()->getPointerTo()), 1);
2699 
2700     i += StoreSizeInBytes;
2701   }
2702 }
2703 
2704 void FunctionStackPoisoner::copyToShadow(ArrayRef<uint8_t> ShadowMask,
2705                                          ArrayRef<uint8_t> ShadowBytes,
2706                                          IRBuilder<> &IRB, Value *ShadowBase) {
2707   copyToShadow(ShadowMask, ShadowBytes, 0, ShadowMask.size(), IRB, ShadowBase);
2708 }
2709 
2710 void FunctionStackPoisoner::copyToShadow(ArrayRef<uint8_t> ShadowMask,
2711                                          ArrayRef<uint8_t> ShadowBytes,
2712                                          size_t Begin, size_t End,
2713                                          IRBuilder<> &IRB, Value *ShadowBase) {
2714   assert(ShadowMask.size() == ShadowBytes.size());
2715   size_t Done = Begin;
2716   for (size_t i = Begin, j = Begin + 1; i < End; i = j++) {
2717     if (!ShadowMask[i]) {
2718       assert(!ShadowBytes[i]);
2719       continue;
2720     }
2721     uint8_t Val = ShadowBytes[i];
2722     if (!AsanSetShadowFunc[Val])
2723       continue;
2724 
2725     // Skip same values.
2726     for (; j < End && ShadowMask[j] && Val == ShadowBytes[j]; ++j) {
2727     }
2728 
2729     if (j - i >= ClMaxInlinePoisoningSize) {
2730       copyToShadowInline(ShadowMask, ShadowBytes, Done, i, IRB, ShadowBase);
2731       IRB.CreateCall(AsanSetShadowFunc[Val],
2732                      {IRB.CreateAdd(ShadowBase, ConstantInt::get(IntptrTy, i)),
2733                       ConstantInt::get(IntptrTy, j - i)});
2734       Done = j;
2735     }
2736   }
2737 
2738   copyToShadowInline(ShadowMask, ShadowBytes, Done, End, IRB, ShadowBase);
2739 }
2740 
2741 // Fake stack allocator (asan_fake_stack.h) has 11 size classes
2742 // for every power of 2 from kMinStackMallocSize to kMaxAsanStackMallocSizeClass
2743 static int StackMallocSizeClass(uint64_t LocalStackSize) {
2744   assert(LocalStackSize <= kMaxStackMallocSize);
2745   uint64_t MaxSize = kMinStackMallocSize;
2746   for (int i = 0;; i++, MaxSize *= 2)
2747     if (LocalStackSize <= MaxSize) return i;
2748   llvm_unreachable("impossible LocalStackSize");
2749 }
2750 
2751 void FunctionStackPoisoner::copyArgsPassedByValToAllocas() {
2752   Instruction *CopyInsertPoint = &F.front().front();
2753   if (CopyInsertPoint == ASan.LocalDynamicShadow) {
2754     // Insert after the dynamic shadow location is determined
2755     CopyInsertPoint = CopyInsertPoint->getNextNode();
2756     assert(CopyInsertPoint);
2757   }
2758   IRBuilder<> IRB(CopyInsertPoint);
2759   const DataLayout &DL = F.getParent()->getDataLayout();
2760   for (Argument &Arg : F.args()) {
2761     if (Arg.hasByValAttr()) {
2762       Type *Ty = Arg.getType()->getPointerElementType();
2763       unsigned Align = Arg.getParamAlignment();
2764       if (Align == 0) Align = DL.getABITypeAlignment(Ty);
2765 
2766       AllocaInst *AI = IRB.CreateAlloca(
2767           Ty, nullptr,
2768           (Arg.hasName() ? Arg.getName() : "Arg" + Twine(Arg.getArgNo())) +
2769               ".byval");
2770       AI->setAlignment(Align);
2771       Arg.replaceAllUsesWith(AI);
2772 
2773       uint64_t AllocSize = DL.getTypeAllocSize(Ty);
2774       IRB.CreateMemCpy(AI, Align, &Arg, Align, AllocSize);
2775     }
2776   }
2777 }
2778 
2779 PHINode *FunctionStackPoisoner::createPHI(IRBuilder<> &IRB, Value *Cond,
2780                                           Value *ValueIfTrue,
2781                                           Instruction *ThenTerm,
2782                                           Value *ValueIfFalse) {
2783   PHINode *PHI = IRB.CreatePHI(IntptrTy, 2);
2784   BasicBlock *CondBlock = cast<Instruction>(Cond)->getParent();
2785   PHI->addIncoming(ValueIfFalse, CondBlock);
2786   BasicBlock *ThenBlock = ThenTerm->getParent();
2787   PHI->addIncoming(ValueIfTrue, ThenBlock);
2788   return PHI;
2789 }
2790 
2791 Value *FunctionStackPoisoner::createAllocaForLayout(
2792     IRBuilder<> &IRB, const ASanStackFrameLayout &L, bool Dynamic) {
2793   AllocaInst *Alloca;
2794   if (Dynamic) {
2795     Alloca = IRB.CreateAlloca(IRB.getInt8Ty(),
2796                               ConstantInt::get(IRB.getInt64Ty(), L.FrameSize),
2797                               "MyAlloca");
2798   } else {
2799     Alloca = IRB.CreateAlloca(ArrayType::get(IRB.getInt8Ty(), L.FrameSize),
2800                               nullptr, "MyAlloca");
2801     assert(Alloca->isStaticAlloca());
2802   }
2803   assert((ClRealignStack & (ClRealignStack - 1)) == 0);
2804   size_t FrameAlignment = std::max(L.FrameAlignment, (size_t)ClRealignStack);
2805   Alloca->setAlignment(FrameAlignment);
2806   return IRB.CreatePointerCast(Alloca, IntptrTy);
2807 }
2808 
2809 void FunctionStackPoisoner::createDynamicAllocasInitStorage() {
2810   BasicBlock &FirstBB = *F.begin();
2811   IRBuilder<> IRB(dyn_cast<Instruction>(FirstBB.begin()));
2812   DynamicAllocaLayout = IRB.CreateAlloca(IntptrTy, nullptr);
2813   IRB.CreateStore(Constant::getNullValue(IntptrTy), DynamicAllocaLayout);
2814   DynamicAllocaLayout->setAlignment(32);
2815 }
2816 
2817 void FunctionStackPoisoner::processDynamicAllocas() {
2818   if (!ClInstrumentDynamicAllocas || DynamicAllocaVec.empty()) {
2819     assert(DynamicAllocaPoisonCallVec.empty());
2820     return;
2821   }
2822 
2823   // Insert poison calls for lifetime intrinsics for dynamic allocas.
2824   for (const auto &APC : DynamicAllocaPoisonCallVec) {
2825     assert(APC.InsBefore);
2826     assert(APC.AI);
2827     assert(ASan.isInterestingAlloca(*APC.AI));
2828     assert(!APC.AI->isStaticAlloca());
2829 
2830     IRBuilder<> IRB(APC.InsBefore);
2831     poisonAlloca(APC.AI, APC.Size, IRB, APC.DoPoison);
2832     // Dynamic allocas will be unpoisoned unconditionally below in
2833     // unpoisonDynamicAllocas.
2834     // Flag that we need unpoison static allocas.
2835   }
2836 
2837   // Handle dynamic allocas.
2838   createDynamicAllocasInitStorage();
2839   for (auto &AI : DynamicAllocaVec)
2840     handleDynamicAllocaCall(AI);
2841   unpoisonDynamicAllocas();
2842 }
2843 
2844 void FunctionStackPoisoner::processStaticAllocas() {
2845   if (AllocaVec.empty()) {
2846     assert(StaticAllocaPoisonCallVec.empty());
2847     return;
2848   }
2849 
2850   int StackMallocIdx = -1;
2851   DebugLoc EntryDebugLocation;
2852   if (auto SP = F.getSubprogram())
2853     EntryDebugLocation = DebugLoc::get(SP->getScopeLine(), 0, SP);
2854 
2855   Instruction *InsBefore = AllocaVec[0];
2856   IRBuilder<> IRB(InsBefore);
2857   IRB.SetCurrentDebugLocation(EntryDebugLocation);
2858 
2859   // Make sure non-instrumented allocas stay in the entry block. Otherwise,
2860   // debug info is broken, because only entry-block allocas are treated as
2861   // regular stack slots.
2862   auto InsBeforeB = InsBefore->getParent();
2863   assert(InsBeforeB == &F.getEntryBlock());
2864   for (auto *AI : StaticAllocasToMoveUp)
2865     if (AI->getParent() == InsBeforeB)
2866       AI->moveBefore(InsBefore);
2867 
2868   // If we have a call to llvm.localescape, keep it in the entry block.
2869   if (LocalEscapeCall) LocalEscapeCall->moveBefore(InsBefore);
2870 
2871   SmallVector<ASanStackVariableDescription, 16> SVD;
2872   SVD.reserve(AllocaVec.size());
2873   for (AllocaInst *AI : AllocaVec) {
2874     ASanStackVariableDescription D = {AI->getName().data(),
2875                                       ASan.getAllocaSizeInBytes(*AI),
2876                                       0,
2877                                       AI->getAlignment(),
2878                                       AI,
2879                                       0,
2880                                       0};
2881     SVD.push_back(D);
2882   }
2883 
2884   // Minimal header size (left redzone) is 4 pointers,
2885   // i.e. 32 bytes on 64-bit platforms and 16 bytes in 32-bit platforms.
2886   size_t Granularity = 1ULL << Mapping.Scale;
2887   size_t MinHeaderSize = std::max((size_t)ASan.LongSize / 2, Granularity);
2888   const ASanStackFrameLayout &L =
2889       ComputeASanStackFrameLayout(SVD, Granularity, MinHeaderSize);
2890 
2891   // Build AllocaToSVDMap for ASanStackVariableDescription lookup.
2892   DenseMap<const AllocaInst *, ASanStackVariableDescription *> AllocaToSVDMap;
2893   for (auto &Desc : SVD)
2894     AllocaToSVDMap[Desc.AI] = &Desc;
2895 
2896   // Update SVD with information from lifetime intrinsics.
2897   for (const auto &APC : StaticAllocaPoisonCallVec) {
2898     assert(APC.InsBefore);
2899     assert(APC.AI);
2900     assert(ASan.isInterestingAlloca(*APC.AI));
2901     assert(APC.AI->isStaticAlloca());
2902 
2903     ASanStackVariableDescription &Desc = *AllocaToSVDMap[APC.AI];
2904     Desc.LifetimeSize = Desc.Size;
2905     if (const DILocation *FnLoc = EntryDebugLocation.get()) {
2906       if (const DILocation *LifetimeLoc = APC.InsBefore->getDebugLoc().get()) {
2907         if (LifetimeLoc->getFile() == FnLoc->getFile())
2908           if (unsigned Line = LifetimeLoc->getLine())
2909             Desc.Line = std::min(Desc.Line ? Desc.Line : Line, Line);
2910       }
2911     }
2912   }
2913 
2914   auto DescriptionString = ComputeASanStackFrameDescription(SVD);
2915   LLVM_DEBUG(dbgs() << DescriptionString << " --- " << L.FrameSize << "\n");
2916   uint64_t LocalStackSize = L.FrameSize;
2917   bool DoStackMalloc = ClUseAfterReturn && !ASan.CompileKernel &&
2918                        LocalStackSize <= kMaxStackMallocSize;
2919   bool DoDynamicAlloca = ClDynamicAllocaStack;
2920   // Don't do dynamic alloca or stack malloc if:
2921   // 1) There is inline asm: too often it makes assumptions on which registers
2922   //    are available.
2923   // 2) There is a returns_twice call (typically setjmp), which is
2924   //    optimization-hostile, and doesn't play well with introduced indirect
2925   //    register-relative calculation of local variable addresses.
2926   DoDynamicAlloca &= !HasNonEmptyInlineAsm && !HasReturnsTwiceCall;
2927   DoStackMalloc &= !HasNonEmptyInlineAsm && !HasReturnsTwiceCall;
2928 
2929   Value *StaticAlloca =
2930       DoDynamicAlloca ? nullptr : createAllocaForLayout(IRB, L, false);
2931 
2932   Value *FakeStack;
2933   Value *LocalStackBase;
2934   Value *LocalStackBaseAlloca;
2935   bool Deref;
2936 
2937   if (DoStackMalloc) {
2938     LocalStackBaseAlloca =
2939         IRB.CreateAlloca(IntptrTy, nullptr, "asan_local_stack_base");
2940     // void *FakeStack = __asan_option_detect_stack_use_after_return
2941     //     ? __asan_stack_malloc_N(LocalStackSize)
2942     //     : nullptr;
2943     // void *LocalStackBase = (FakeStack) ? FakeStack : alloca(LocalStackSize);
2944     Constant *OptionDetectUseAfterReturn = F.getParent()->getOrInsertGlobal(
2945         kAsanOptionDetectUseAfterReturn, IRB.getInt32Ty());
2946     Value *UseAfterReturnIsEnabled =
2947         IRB.CreateICmpNE(IRB.CreateLoad(OptionDetectUseAfterReturn),
2948                          Constant::getNullValue(IRB.getInt32Ty()));
2949     Instruction *Term =
2950         SplitBlockAndInsertIfThen(UseAfterReturnIsEnabled, InsBefore, false);
2951     IRBuilder<> IRBIf(Term);
2952     IRBIf.SetCurrentDebugLocation(EntryDebugLocation);
2953     StackMallocIdx = StackMallocSizeClass(LocalStackSize);
2954     assert(StackMallocIdx <= kMaxAsanStackMallocSizeClass);
2955     Value *FakeStackValue =
2956         IRBIf.CreateCall(AsanStackMallocFunc[StackMallocIdx],
2957                          ConstantInt::get(IntptrTy, LocalStackSize));
2958     IRB.SetInsertPoint(InsBefore);
2959     IRB.SetCurrentDebugLocation(EntryDebugLocation);
2960     FakeStack = createPHI(IRB, UseAfterReturnIsEnabled, FakeStackValue, Term,
2961                           ConstantInt::get(IntptrTy, 0));
2962 
2963     Value *NoFakeStack =
2964         IRB.CreateICmpEQ(FakeStack, Constant::getNullValue(IntptrTy));
2965     Term = SplitBlockAndInsertIfThen(NoFakeStack, InsBefore, false);
2966     IRBIf.SetInsertPoint(Term);
2967     IRBIf.SetCurrentDebugLocation(EntryDebugLocation);
2968     Value *AllocaValue =
2969         DoDynamicAlloca ? createAllocaForLayout(IRBIf, L, true) : StaticAlloca;
2970 
2971     IRB.SetInsertPoint(InsBefore);
2972     IRB.SetCurrentDebugLocation(EntryDebugLocation);
2973     LocalStackBase = createPHI(IRB, NoFakeStack, AllocaValue, Term, FakeStack);
2974     IRB.SetCurrentDebugLocation(EntryDebugLocation);
2975     IRB.CreateStore(LocalStackBase, LocalStackBaseAlloca);
2976     Deref = true;
2977   } else {
2978     // void *FakeStack = nullptr;
2979     // void *LocalStackBase = alloca(LocalStackSize);
2980     FakeStack = ConstantInt::get(IntptrTy, 0);
2981     LocalStackBase =
2982         DoDynamicAlloca ? createAllocaForLayout(IRB, L, true) : StaticAlloca;
2983     LocalStackBaseAlloca = LocalStackBase;
2984     Deref = false;
2985   }
2986 
2987   // Replace Alloca instructions with base+offset.
2988   for (const auto &Desc : SVD) {
2989     AllocaInst *AI = Desc.AI;
2990     replaceDbgDeclareForAlloca(AI, LocalStackBaseAlloca, DIB, Deref,
2991                                Desc.Offset, DIExpression::NoDeref);
2992     Value *NewAllocaPtr = IRB.CreateIntToPtr(
2993         IRB.CreateAdd(LocalStackBase, ConstantInt::get(IntptrTy, Desc.Offset)),
2994         AI->getType());
2995     AI->replaceAllUsesWith(NewAllocaPtr);
2996   }
2997 
2998   // The left-most redzone has enough space for at least 4 pointers.
2999   // Write the Magic value to redzone[0].
3000   Value *BasePlus0 = IRB.CreateIntToPtr(LocalStackBase, IntptrPtrTy);
3001   IRB.CreateStore(ConstantInt::get(IntptrTy, kCurrentStackFrameMagic),
3002                   BasePlus0);
3003   // Write the frame description constant to redzone[1].
3004   Value *BasePlus1 = IRB.CreateIntToPtr(
3005       IRB.CreateAdd(LocalStackBase,
3006                     ConstantInt::get(IntptrTy, ASan.LongSize / 8)),
3007       IntptrPtrTy);
3008   GlobalVariable *StackDescriptionGlobal =
3009       createPrivateGlobalForString(*F.getParent(), DescriptionString,
3010                                    /*AllowMerging*/ true, kAsanGenPrefix);
3011   Value *Description = IRB.CreatePointerCast(StackDescriptionGlobal, IntptrTy);
3012   IRB.CreateStore(Description, BasePlus1);
3013   // Write the PC to redzone[2].
3014   Value *BasePlus2 = IRB.CreateIntToPtr(
3015       IRB.CreateAdd(LocalStackBase,
3016                     ConstantInt::get(IntptrTy, 2 * ASan.LongSize / 8)),
3017       IntptrPtrTy);
3018   IRB.CreateStore(IRB.CreatePointerCast(&F, IntptrTy), BasePlus2);
3019 
3020   const auto &ShadowAfterScope = GetShadowBytesAfterScope(SVD, L);
3021 
3022   // Poison the stack red zones at the entry.
3023   Value *ShadowBase = ASan.memToShadow(LocalStackBase, IRB);
3024   // As mask we must use most poisoned case: red zones and after scope.
3025   // As bytes we can use either the same or just red zones only.
3026   copyToShadow(ShadowAfterScope, ShadowAfterScope, IRB, ShadowBase);
3027 
3028   if (!StaticAllocaPoisonCallVec.empty()) {
3029     const auto &ShadowInScope = GetShadowBytes(SVD, L);
3030 
3031     // Poison static allocas near lifetime intrinsics.
3032     for (const auto &APC : StaticAllocaPoisonCallVec) {
3033       const ASanStackVariableDescription &Desc = *AllocaToSVDMap[APC.AI];
3034       assert(Desc.Offset % L.Granularity == 0);
3035       size_t Begin = Desc.Offset / L.Granularity;
3036       size_t End = Begin + (APC.Size + L.Granularity - 1) / L.Granularity;
3037 
3038       IRBuilder<> IRB(APC.InsBefore);
3039       copyToShadow(ShadowAfterScope,
3040                    APC.DoPoison ? ShadowAfterScope : ShadowInScope, Begin, End,
3041                    IRB, ShadowBase);
3042     }
3043   }
3044 
3045   SmallVector<uint8_t, 64> ShadowClean(ShadowAfterScope.size(), 0);
3046   SmallVector<uint8_t, 64> ShadowAfterReturn;
3047 
3048   // (Un)poison the stack before all ret instructions.
3049   for (auto Ret : RetVec) {
3050     IRBuilder<> IRBRet(Ret);
3051     // Mark the current frame as retired.
3052     IRBRet.CreateStore(ConstantInt::get(IntptrTy, kRetiredStackFrameMagic),
3053                        BasePlus0);
3054     if (DoStackMalloc) {
3055       assert(StackMallocIdx >= 0);
3056       // if FakeStack != 0  // LocalStackBase == FakeStack
3057       //     // In use-after-return mode, poison the whole stack frame.
3058       //     if StackMallocIdx <= 4
3059       //         // For small sizes inline the whole thing:
3060       //         memset(ShadowBase, kAsanStackAfterReturnMagic, ShadowSize);
3061       //         **SavedFlagPtr(FakeStack) = 0
3062       //     else
3063       //         __asan_stack_free_N(FakeStack, LocalStackSize)
3064       // else
3065       //     <This is not a fake stack; unpoison the redzones>
3066       Value *Cmp =
3067           IRBRet.CreateICmpNE(FakeStack, Constant::getNullValue(IntptrTy));
3068       Instruction *ThenTerm, *ElseTerm;
3069       SplitBlockAndInsertIfThenElse(Cmp, Ret, &ThenTerm, &ElseTerm);
3070 
3071       IRBuilder<> IRBPoison(ThenTerm);
3072       if (StackMallocIdx <= 4) {
3073         int ClassSize = kMinStackMallocSize << StackMallocIdx;
3074         ShadowAfterReturn.resize(ClassSize / L.Granularity,
3075                                  kAsanStackUseAfterReturnMagic);
3076         copyToShadow(ShadowAfterReturn, ShadowAfterReturn, IRBPoison,
3077                      ShadowBase);
3078         Value *SavedFlagPtrPtr = IRBPoison.CreateAdd(
3079             FakeStack,
3080             ConstantInt::get(IntptrTy, ClassSize - ASan.LongSize / 8));
3081         Value *SavedFlagPtr = IRBPoison.CreateLoad(
3082             IRBPoison.CreateIntToPtr(SavedFlagPtrPtr, IntptrPtrTy));
3083         IRBPoison.CreateStore(
3084             Constant::getNullValue(IRBPoison.getInt8Ty()),
3085             IRBPoison.CreateIntToPtr(SavedFlagPtr, IRBPoison.getInt8PtrTy()));
3086       } else {
3087         // For larger frames call __asan_stack_free_*.
3088         IRBPoison.CreateCall(
3089             AsanStackFreeFunc[StackMallocIdx],
3090             {FakeStack, ConstantInt::get(IntptrTy, LocalStackSize)});
3091       }
3092 
3093       IRBuilder<> IRBElse(ElseTerm);
3094       copyToShadow(ShadowAfterScope, ShadowClean, IRBElse, ShadowBase);
3095     } else {
3096       copyToShadow(ShadowAfterScope, ShadowClean, IRBRet, ShadowBase);
3097     }
3098   }
3099 
3100   // We are done. Remove the old unused alloca instructions.
3101   for (auto AI : AllocaVec) AI->eraseFromParent();
3102 }
3103 
3104 void FunctionStackPoisoner::poisonAlloca(Value *V, uint64_t Size,
3105                                          IRBuilder<> &IRB, bool DoPoison) {
3106   // For now just insert the call to ASan runtime.
3107   Value *AddrArg = IRB.CreatePointerCast(V, IntptrTy);
3108   Value *SizeArg = ConstantInt::get(IntptrTy, Size);
3109   IRB.CreateCall(
3110       DoPoison ? AsanPoisonStackMemoryFunc : AsanUnpoisonStackMemoryFunc,
3111       {AddrArg, SizeArg});
3112 }
3113 
3114 // Handling llvm.lifetime intrinsics for a given %alloca:
3115 // (1) collect all llvm.lifetime.xxx(%size, %value) describing the alloca.
3116 // (2) if %size is constant, poison memory for llvm.lifetime.end (to detect
3117 //     invalid accesses) and unpoison it for llvm.lifetime.start (the memory
3118 //     could be poisoned by previous llvm.lifetime.end instruction, as the
3119 //     variable may go in and out of scope several times, e.g. in loops).
3120 // (3) if we poisoned at least one %alloca in a function,
3121 //     unpoison the whole stack frame at function exit.
3122 
3123 AllocaInst *FunctionStackPoisoner::findAllocaForValue(Value *V) {
3124   if (AllocaInst *AI = dyn_cast<AllocaInst>(V))
3125     // We're interested only in allocas we can handle.
3126     return ASan.isInterestingAlloca(*AI) ? AI : nullptr;
3127   // See if we've already calculated (or started to calculate) alloca for a
3128   // given value.
3129   AllocaForValueMapTy::iterator I = AllocaForValue.find(V);
3130   if (I != AllocaForValue.end()) return I->second;
3131   // Store 0 while we're calculating alloca for value V to avoid
3132   // infinite recursion if the value references itself.
3133   AllocaForValue[V] = nullptr;
3134   AllocaInst *Res = nullptr;
3135   if (CastInst *CI = dyn_cast<CastInst>(V))
3136     Res = findAllocaForValue(CI->getOperand(0));
3137   else if (PHINode *PN = dyn_cast<PHINode>(V)) {
3138     for (Value *IncValue : PN->incoming_values()) {
3139       // Allow self-referencing phi-nodes.
3140       if (IncValue == PN) continue;
3141       AllocaInst *IncValueAI = findAllocaForValue(IncValue);
3142       // AI for incoming values should exist and should all be equal.
3143       if (IncValueAI == nullptr || (Res != nullptr && IncValueAI != Res))
3144         return nullptr;
3145       Res = IncValueAI;
3146     }
3147   } else if (GetElementPtrInst *EP = dyn_cast<GetElementPtrInst>(V)) {
3148     Res = findAllocaForValue(EP->getPointerOperand());
3149   } else {
3150     LLVM_DEBUG(dbgs() << "Alloca search canceled on unknown instruction: " << *V
3151                       << "\n");
3152   }
3153   if (Res) AllocaForValue[V] = Res;
3154   return Res;
3155 }
3156 
3157 void FunctionStackPoisoner::handleDynamicAllocaCall(AllocaInst *AI) {
3158   IRBuilder<> IRB(AI);
3159 
3160   const unsigned Align = std::max(kAllocaRzSize, AI->getAlignment());
3161   const uint64_t AllocaRedzoneMask = kAllocaRzSize - 1;
3162 
3163   Value *Zero = Constant::getNullValue(IntptrTy);
3164   Value *AllocaRzSize = ConstantInt::get(IntptrTy, kAllocaRzSize);
3165   Value *AllocaRzMask = ConstantInt::get(IntptrTy, AllocaRedzoneMask);
3166 
3167   // Since we need to extend alloca with additional memory to locate
3168   // redzones, and OldSize is number of allocated blocks with
3169   // ElementSize size, get allocated memory size in bytes by
3170   // OldSize * ElementSize.
3171   const unsigned ElementSize =
3172       F.getParent()->getDataLayout().getTypeAllocSize(AI->getAllocatedType());
3173   Value *OldSize =
3174       IRB.CreateMul(IRB.CreateIntCast(AI->getArraySize(), IntptrTy, false),
3175                     ConstantInt::get(IntptrTy, ElementSize));
3176 
3177   // PartialSize = OldSize % 32
3178   Value *PartialSize = IRB.CreateAnd(OldSize, AllocaRzMask);
3179 
3180   // Misalign = kAllocaRzSize - PartialSize;
3181   Value *Misalign = IRB.CreateSub(AllocaRzSize, PartialSize);
3182 
3183   // PartialPadding = Misalign != kAllocaRzSize ? Misalign : 0;
3184   Value *Cond = IRB.CreateICmpNE(Misalign, AllocaRzSize);
3185   Value *PartialPadding = IRB.CreateSelect(Cond, Misalign, Zero);
3186 
3187   // AdditionalChunkSize = Align + PartialPadding + kAllocaRzSize
3188   // Align is added to locate left redzone, PartialPadding for possible
3189   // partial redzone and kAllocaRzSize for right redzone respectively.
3190   Value *AdditionalChunkSize = IRB.CreateAdd(
3191       ConstantInt::get(IntptrTy, Align + kAllocaRzSize), PartialPadding);
3192 
3193   Value *NewSize = IRB.CreateAdd(OldSize, AdditionalChunkSize);
3194 
3195   // Insert new alloca with new NewSize and Align params.
3196   AllocaInst *NewAlloca = IRB.CreateAlloca(IRB.getInt8Ty(), NewSize);
3197   NewAlloca->setAlignment(Align);
3198 
3199   // NewAddress = Address + Align
3200   Value *NewAddress = IRB.CreateAdd(IRB.CreatePtrToInt(NewAlloca, IntptrTy),
3201                                     ConstantInt::get(IntptrTy, Align));
3202 
3203   // Insert __asan_alloca_poison call for new created alloca.
3204   IRB.CreateCall(AsanAllocaPoisonFunc, {NewAddress, OldSize});
3205 
3206   // Store the last alloca's address to DynamicAllocaLayout. We'll need this
3207   // for unpoisoning stuff.
3208   IRB.CreateStore(IRB.CreatePtrToInt(NewAlloca, IntptrTy), DynamicAllocaLayout);
3209 
3210   Value *NewAddressPtr = IRB.CreateIntToPtr(NewAddress, AI->getType());
3211 
3212   // Replace all uses of AddessReturnedByAlloca with NewAddressPtr.
3213   AI->replaceAllUsesWith(NewAddressPtr);
3214 
3215   // We are done. Erase old alloca from parent.
3216   AI->eraseFromParent();
3217 }
3218 
3219 // isSafeAccess returns true if Addr is always inbounds with respect to its
3220 // base object. For example, it is a field access or an array access with
3221 // constant inbounds index.
3222 bool AddressSanitizer::isSafeAccess(ObjectSizeOffsetVisitor &ObjSizeVis,
3223                                     Value *Addr, uint64_t TypeSize) const {
3224   SizeOffsetType SizeOffset = ObjSizeVis.compute(Addr);
3225   if (!ObjSizeVis.bothKnown(SizeOffset)) return false;
3226   uint64_t Size = SizeOffset.first.getZExtValue();
3227   int64_t Offset = SizeOffset.second.getSExtValue();
3228   // Three checks are required to ensure safety:
3229   // . Offset >= 0  (since the offset is given from the base ptr)
3230   // . Size >= Offset  (unsigned)
3231   // . Size - Offset >= NeededSize  (unsigned)
3232   return Offset >= 0 && Size >= uint64_t(Offset) &&
3233          Size - uint64_t(Offset) >= TypeSize / 8;
3234 }
3235