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Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001//===-- MemorySanitizer.cpp - detector of uninitialized reads -------------===//
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/// \file
10/// This file is a part of MemorySanitizer, a detector of uninitialized
11/// reads.
12///
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +000013/// The algorithm of the tool is similar to Memcheck
14/// (http://goo.gl/QKbem). We associate a few shadow bits with every
15/// byte of the application memory, poison the shadow of the malloc-ed
16/// or alloca-ed memory, load the shadow bits on every memory read,
17/// propagate the shadow bits through some of the arithmetic
18/// instruction (including MOV), store the shadow bits on every memory
19/// write, report a bug on some other instructions (e.g. JMP) if the
20/// associated shadow is poisoned.
21///
22/// But there are differences too. The first and the major one:
23/// compiler instrumentation instead of binary instrumentation. This
24/// gives us much better register allocation, possible compiler
25/// optimizations and a fast start-up. But this brings the major issue
26/// as well: msan needs to see all program events, including system
27/// calls and reads/writes in system libraries, so we either need to
28/// compile *everything* with msan or use a binary translation
29/// component (e.g. DynamoRIO) to instrument pre-built libraries.
30/// Another difference from Memcheck is that we use 8 shadow bits per
31/// byte of application memory and use a direct shadow mapping. This
32/// greatly simplifies the instrumentation code and avoids races on
33/// shadow updates (Memcheck is single-threaded so races are not a
34/// concern there. Memcheck uses 2 shadow bits per byte with a slow
35/// path storage that uses 8 bits per byte).
36///
37/// The default value of shadow is 0, which means "clean" (not poisoned).
38///
39/// Every module initializer should call __msan_init to ensure that the
40/// shadow memory is ready. On error, __msan_warning is called. Since
41/// parameters and return values may be passed via registers, we have a
42/// specialized thread-local shadow for return values
43/// (__msan_retval_tls) and parameters (__msan_param_tls).
Evgeniy Stepanovd8be0c52012-12-26 10:59:00 +000044///
45/// Origin tracking.
46///
47/// MemorySanitizer can track origins (allocation points) of all uninitialized
48/// values. This behavior is controlled with a flag (msan-track-origins) and is
49/// disabled by default.
50///
51/// Origins are 4-byte values created and interpreted by the runtime library.
52/// They are stored in a second shadow mapping, one 4-byte value for 4 bytes
53/// of application memory. Propagation of origins is basically a bunch of
54/// "select" instructions that pick the origin of a dirty argument, if an
55/// instruction has one.
56///
57/// Every 4 aligned, consecutive bytes of application memory have one origin
58/// value associated with them. If these bytes contain uninitialized data
59/// coming from 2 different allocations, the last store wins. Because of this,
60/// MemorySanitizer reports can show unrelated origins, but this is unlikely in
Alexey Samsonov3efc87e2012-12-28 09:30:44 +000061/// practice.
Evgeniy Stepanovd8be0c52012-12-26 10:59:00 +000062///
63/// Origins are meaningless for fully initialized values, so MemorySanitizer
64/// avoids storing origin to memory when a fully initialized value is stored.
65/// This way it avoids needless overwritting origin of the 4-byte region on
66/// a short (i.e. 1 byte) clean store, and it is also good for performance.
Evgeniy Stepanov5522a702013-09-24 11:20:27 +000067///
68/// Atomic handling.
69///
70/// Ideally, every atomic store of application value should update the
71/// corresponding shadow location in an atomic way. Unfortunately, atomic store
72/// of two disjoint locations can not be done without severe slowdown.
73///
74/// Therefore, we implement an approximation that may err on the safe side.
75/// In this implementation, every atomically accessed location in the program
76/// may only change from (partially) uninitialized to fully initialized, but
77/// not the other way around. We load the shadow _after_ the application load,
78/// and we store the shadow _before_ the app store. Also, we always store clean
79/// shadow (if the application store is atomic). This way, if the store-load
80/// pair constitutes a happens-before arc, shadow store and load are correctly
81/// ordered such that the load will get either the value that was stored, or
82/// some later value (which is always clean).
83///
84/// This does not work very well with Compare-And-Swap (CAS) and
85/// Read-Modify-Write (RMW) operations. To follow the above logic, CAS and RMW
86/// must store the new shadow before the app operation, and load the shadow
87/// after the app operation. Computers don't work this way. Current
88/// implementation ignores the load aspect of CAS/RMW, always returning a clean
89/// value. It implements the store part as a simple atomic store by storing a
90/// clean shadow.
91
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +000092//===----------------------------------------------------------------------===//
93
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +000094#include "llvm/ADT/DepthFirstIterator.h"
95#include "llvm/ADT/SmallString.h"
96#include "llvm/ADT/SmallVector.h"
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +000097#include "llvm/ADT/StringExtras.h"
Evgeniy Stepanovebd7f8e2013-05-21 12:27:47 +000098#include "llvm/ADT/Triple.h"
Chandler Carruth9fb823b2013-01-02 11:36:10 +000099#include "llvm/IR/DataLayout.h"
100#include "llvm/IR/Function.h"
101#include "llvm/IR/IRBuilder.h"
102#include "llvm/IR/InlineAsm.h"
Chandler Carruth7da14f12014-03-06 03:23:41 +0000103#include "llvm/IR/InstVisitor.h"
Chandler Carruth9fb823b2013-01-02 11:36:10 +0000104#include "llvm/IR/IntrinsicInst.h"
105#include "llvm/IR/LLVMContext.h"
106#include "llvm/IR/MDBuilder.h"
107#include "llvm/IR/Module.h"
108#include "llvm/IR/Type.h"
Chandler Carrutha4ea2692014-03-04 11:26:31 +0000109#include "llvm/IR/ValueMap.h"
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000110#include "llvm/Support/CommandLine.h"
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000111#include "llvm/Support/Debug.h"
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000112#include "llvm/Support/raw_ostream.h"
Mehdi Aminib550cb12016-04-18 09:17:29 +0000113#include "llvm/Transforms/Instrumentation.h"
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000114#include "llvm/Transforms/Utils/BasicBlockUtils.h"
Evgeniy Stepanov4fbc0d082012-12-21 11:18:49 +0000115#include "llvm/Transforms/Utils/Local.h"
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000116#include "llvm/Transforms/Utils/ModuleUtils.h"
117
118using namespace llvm;
119
Chandler Carruth964daaa2014-04-22 02:55:47 +0000120#define DEBUG_TYPE "msan"
121
Evgeniy Stepanov79ca0fd2015-01-21 13:21:31 +0000122static const unsigned kOriginSize = 4;
Evgeniy Stepanov5eb5bf82012-12-26 11:55:09 +0000123static const unsigned kMinOriginAlignment = 4;
124static const unsigned kShadowTLSAlignment = 8;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000125
Evgeniy Stepanov35eb2652014-10-22 00:12:40 +0000126// These constants must be kept in sync with the ones in msan.h.
127static const unsigned kParamTLSSize = 800;
128static const unsigned kRetvalTLSSize = 800;
129
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000130// Accesses sizes are powers of two: 1, 2, 4, 8.
131static const size_t kNumberOfAccessSizes = 4;
132
Evgeniy Stepanovd8be0c52012-12-26 10:59:00 +0000133/// \brief Track origins of uninitialized values.
Alexey Samsonov3efc87e2012-12-28 09:30:44 +0000134///
Evgeniy Stepanovd8be0c52012-12-26 10:59:00 +0000135/// Adds a section to MemorySanitizer report that points to the allocation
136/// (stack or heap) the uninitialized bits came from originally.
Evgeniy Stepanov302964e2014-03-18 13:30:56 +0000137static cl::opt<int> ClTrackOrigins("msan-track-origins",
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000138 cl::desc("Track origins (allocation sites) of poisoned memory"),
Evgeniy Stepanov302964e2014-03-18 13:30:56 +0000139 cl::Hidden, cl::init(0));
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000140static cl::opt<bool> ClKeepGoing("msan-keep-going",
141 cl::desc("keep going after reporting a UMR"),
142 cl::Hidden, cl::init(false));
143static cl::opt<bool> ClPoisonStack("msan-poison-stack",
144 cl::desc("poison uninitialized stack variables"),
145 cl::Hidden, cl::init(true));
146static cl::opt<bool> ClPoisonStackWithCall("msan-poison-stack-with-call",
147 cl::desc("poison uninitialized stack variables with a call"),
148 cl::Hidden, cl::init(false));
149static cl::opt<int> ClPoisonStackPattern("msan-poison-stack-pattern",
Evgeniy Stepanov670abcf2015-10-05 18:01:17 +0000150 cl::desc("poison uninitialized stack variables with the given pattern"),
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000151 cl::Hidden, cl::init(0xff));
Evgeniy Stepanova9a962c2013-03-21 09:38:26 +0000152static cl::opt<bool> ClPoisonUndef("msan-poison-undef",
153 cl::desc("poison undef temps"),
154 cl::Hidden, cl::init(true));
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000155
156static cl::opt<bool> ClHandleICmp("msan-handle-icmp",
157 cl::desc("propagate shadow through ICmpEQ and ICmpNE"),
158 cl::Hidden, cl::init(true));
159
Evgeniy Stepanovfac84032013-01-25 15:31:10 +0000160static cl::opt<bool> ClHandleICmpExact("msan-handle-icmp-exact",
161 cl::desc("exact handling of relational integer ICmp"),
Evgeniy Stepanov6f85ef32013-01-28 11:42:28 +0000162 cl::Hidden, cl::init(false));
Evgeniy Stepanovfac84032013-01-25 15:31:10 +0000163
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000164// This flag controls whether we check the shadow of the address
165// operand of load or store. Such bugs are very rare, since load from
166// a garbage address typically results in SEGV, but still happen
167// (e.g. only lower bits of address are garbage, or the access happens
168// early at program startup where malloc-ed memory is more likely to
169// be zeroed. As of 2012-08-28 this flag adds 20% slowdown.
170static cl::opt<bool> ClCheckAccessAddress("msan-check-access-address",
171 cl::desc("report accesses through a pointer which has poisoned shadow"),
172 cl::Hidden, cl::init(true));
173
174static cl::opt<bool> ClDumpStrictInstructions("msan-dump-strict-instructions",
175 cl::desc("print out instructions with default strict semantics"),
176 cl::Hidden, cl::init(false));
177
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000178static cl::opt<int> ClInstrumentationWithCallThreshold(
179 "msan-instrumentation-with-call-threshold",
180 cl::desc(
181 "If the function being instrumented requires more than "
182 "this number of checks and origin stores, use callbacks instead of "
183 "inline checks (-1 means never use callbacks)."),
Evgeniy Stepanov3939f542014-04-21 15:04:05 +0000184 cl::Hidden, cl::init(3500));
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000185
Evgeniy Stepanov7db296e2014-10-23 01:05:46 +0000186// This is an experiment to enable handling of cases where shadow is a non-zero
187// compile-time constant. For some unexplainable reason they were silently
188// ignored in the instrumentation.
189static cl::opt<bool> ClCheckConstantShadow("msan-check-constant-shadow",
190 cl::desc("Insert checks for constant shadow values"),
191 cl::Hidden, cl::init(false));
Evgeniy Stepanov4b96ed62016-03-16 17:39:17 +0000192
193// This is off by default because of a bug in gold:
194// https://sourceware.org/bugzilla/show_bug.cgi?id=19002
Evgeniy Stepanovd6e91362016-03-15 20:25:47 +0000195static cl::opt<bool> ClWithComdat("msan-with-comdat",
196 cl::desc("Place MSan constructors in comdat sections"),
197 cl::Hidden, cl::init(false));
Evgeniy Stepanov7db296e2014-10-23 01:05:46 +0000198
Ismail Pazarbasie5048e12015-05-07 21:41:52 +0000199static const char *const kMsanModuleCtorName = "msan.module_ctor";
200static const char *const kMsanInitName = "__msan_init";
201
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000202namespace {
203
Viktor Kutuzovb4ffb5d2014-12-18 12:12:59 +0000204// Memory map parameters used in application-to-shadow address calculation.
205// Offset = (Addr & ~AndMask) ^ XorMask
206// Shadow = ShadowBase + Offset
207// Origin = OriginBase + Offset
208struct MemoryMapParams {
209 uint64_t AndMask;
210 uint64_t XorMask;
211 uint64_t ShadowBase;
212 uint64_t OriginBase;
213};
214
215struct PlatformMemoryMapParams {
216 const MemoryMapParams *bits32;
217 const MemoryMapParams *bits64;
218};
219
220// i386 Linux
Mohit K. Bhakkad46ad7f72015-01-20 13:05:42 +0000221static const MemoryMapParams Linux_I386_MemoryMapParams = {
Viktor Kutuzovb4ffb5d2014-12-18 12:12:59 +0000222 0x000080000000, // AndMask
223 0, // XorMask (not used)
224 0, // ShadowBase (not used)
225 0x000040000000, // OriginBase
226};
227
228// x86_64 Linux
Mohit K. Bhakkad46ad7f72015-01-20 13:05:42 +0000229static const MemoryMapParams Linux_X86_64_MemoryMapParams = {
Evgeniy Stepanovd12212b2015-10-08 21:35:26 +0000230#ifdef MSAN_LINUX_X86_64_OLD_MAPPING
Viktor Kutuzovb4ffb5d2014-12-18 12:12:59 +0000231 0x400000000000, // AndMask
232 0, // XorMask (not used)
233 0, // ShadowBase (not used)
234 0x200000000000, // OriginBase
Evgeniy Stepanovd12212b2015-10-08 21:35:26 +0000235#else
236 0, // AndMask (not used)
237 0x500000000000, // XorMask
238 0, // ShadowBase (not used)
239 0x100000000000, // OriginBase
240#endif
Viktor Kutuzovb4ffb5d2014-12-18 12:12:59 +0000241};
242
Mohit K. Bhakkad46ad7f72015-01-20 13:05:42 +0000243// mips64 Linux
244static const MemoryMapParams Linux_MIPS64_MemoryMapParams = {
245 0x004000000000, // AndMask
246 0, // XorMask (not used)
247 0, // ShadowBase (not used)
248 0x002000000000, // OriginBase
249};
250
Jay Foad7a28cdc2015-06-25 10:34:29 +0000251// ppc64 Linux
252static const MemoryMapParams Linux_PowerPC64_MemoryMapParams = {
253 0x200000000000, // AndMask
254 0x100000000000, // XorMask
255 0x080000000000, // ShadowBase
256 0x1C0000000000, // OriginBase
257};
258
Adhemerval Zanellaf0c95bd2015-09-16 15:10:27 +0000259// aarch64 Linux
260static const MemoryMapParams Linux_AArch64_MemoryMapParams = {
Adhemerval Zanella1edb0842015-10-29 13:02:30 +0000261 0, // AndMask (not used)
262 0x06000000000, // XorMask
263 0, // ShadowBase (not used)
264 0x01000000000, // OriginBase
Adhemerval Zanellaf0c95bd2015-09-16 15:10:27 +0000265};
266
Viktor Kutuzovb4ffb5d2014-12-18 12:12:59 +0000267// i386 FreeBSD
Mohit K. Bhakkad46ad7f72015-01-20 13:05:42 +0000268static const MemoryMapParams FreeBSD_I386_MemoryMapParams = {
Viktor Kutuzovb4ffb5d2014-12-18 12:12:59 +0000269 0x000180000000, // AndMask
270 0x000040000000, // XorMask
271 0x000020000000, // ShadowBase
272 0x000700000000, // OriginBase
273};
274
275// x86_64 FreeBSD
Mohit K. Bhakkad46ad7f72015-01-20 13:05:42 +0000276static const MemoryMapParams FreeBSD_X86_64_MemoryMapParams = {
Viktor Kutuzovb4ffb5d2014-12-18 12:12:59 +0000277 0xc00000000000, // AndMask
278 0x200000000000, // XorMask
279 0x100000000000, // ShadowBase
280 0x380000000000, // OriginBase
281};
282
Mohit K. Bhakkad46ad7f72015-01-20 13:05:42 +0000283static const PlatformMemoryMapParams Linux_X86_MemoryMapParams = {
284 &Linux_I386_MemoryMapParams,
285 &Linux_X86_64_MemoryMapParams,
Viktor Kutuzovb4ffb5d2014-12-18 12:12:59 +0000286};
287
Mohit K. Bhakkad46ad7f72015-01-20 13:05:42 +0000288static const PlatformMemoryMapParams Linux_MIPS_MemoryMapParams = {
Hans Wennborg083ca9b2015-10-06 23:24:35 +0000289 nullptr,
Mohit K. Bhakkad46ad7f72015-01-20 13:05:42 +0000290 &Linux_MIPS64_MemoryMapParams,
291};
292
Jay Foad7a28cdc2015-06-25 10:34:29 +0000293static const PlatformMemoryMapParams Linux_PowerPC_MemoryMapParams = {
Hans Wennborg083ca9b2015-10-06 23:24:35 +0000294 nullptr,
Jay Foad7a28cdc2015-06-25 10:34:29 +0000295 &Linux_PowerPC64_MemoryMapParams,
296};
297
Adhemerval Zanellaf0c95bd2015-09-16 15:10:27 +0000298static const PlatformMemoryMapParams Linux_ARM_MemoryMapParams = {
Hans Wennborg083ca9b2015-10-06 23:24:35 +0000299 nullptr,
Adhemerval Zanellaf0c95bd2015-09-16 15:10:27 +0000300 &Linux_AArch64_MemoryMapParams,
301};
302
Mohit K. Bhakkad46ad7f72015-01-20 13:05:42 +0000303static const PlatformMemoryMapParams FreeBSD_X86_MemoryMapParams = {
304 &FreeBSD_I386_MemoryMapParams,
305 &FreeBSD_X86_64_MemoryMapParams,
Viktor Kutuzovb4ffb5d2014-12-18 12:12:59 +0000306};
307
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000308/// \brief An instrumentation pass implementing detection of uninitialized
309/// reads.
310///
311/// MemorySanitizer: instrument the code in module to find
312/// uninitialized reads.
313class MemorySanitizer : public FunctionPass {
Evgeniy Stepanov9b72e992012-12-14 13:48:31 +0000314 public:
Alexey Samsonov6d8bab82014-06-02 18:08:27 +0000315 MemorySanitizer(int TrackOrigins = 0)
Evgeniy Stepanov37b86452013-09-19 15:22:35 +0000316 : FunctionPass(ID),
Evgeniy Stepanov302964e2014-03-18 13:30:56 +0000317 TrackOrigins(std::max(TrackOrigins, (int)ClTrackOrigins)),
Evgeniy Stepanove402d9e2014-11-27 14:54:02 +0000318 WarningFn(nullptr) {}
Craig Topper3e4c6972014-03-05 09:10:37 +0000319 const char *getPassName() const override { return "MemorySanitizer"; }
320 bool runOnFunction(Function &F) override;
321 bool doInitialization(Module &M) override;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000322 static char ID; // Pass identification, replacement for typeid.
323
Evgeniy Stepanov9b72e992012-12-14 13:48:31 +0000324 private:
Evgeniy Stepanov94b257d2012-12-05 13:14:33 +0000325 void initializeCallbacks(Module &M);
326
Evgeniy Stepanovabeae5c2012-12-19 13:55:51 +0000327 /// \brief Track origins (allocation points) of uninitialized values.
Evgeniy Stepanov302964e2014-03-18 13:30:56 +0000328 int TrackOrigins;
Evgeniy Stepanovabeae5c2012-12-19 13:55:51 +0000329
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000330 LLVMContext *C;
331 Type *IntptrTy;
332 Type *OriginTy;
333 /// \brief Thread-local shadow storage for function parameters.
334 GlobalVariable *ParamTLS;
335 /// \brief Thread-local origin storage for function parameters.
336 GlobalVariable *ParamOriginTLS;
337 /// \brief Thread-local shadow storage for function return value.
338 GlobalVariable *RetvalTLS;
339 /// \brief Thread-local origin storage for function return value.
340 GlobalVariable *RetvalOriginTLS;
341 /// \brief Thread-local shadow storage for in-register va_arg function
342 /// parameters (x86_64-specific).
343 GlobalVariable *VAArgTLS;
344 /// \brief Thread-local shadow storage for va_arg overflow area
345 /// (x86_64-specific).
346 GlobalVariable *VAArgOverflowSizeTLS;
347 /// \brief Thread-local space used to pass origin value to the UMR reporting
348 /// function.
349 GlobalVariable *OriginTLS;
350
351 /// \brief The run-time callback to print a warning.
352 Value *WarningFn;
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000353 // These arrays are indexed by log2(AccessSize).
354 Value *MaybeWarningFn[kNumberOfAccessSizes];
355 Value *MaybeStoreOriginFn[kNumberOfAccessSizes];
356
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000357 /// \brief Run-time helper that generates a new origin value for a stack
358 /// allocation.
Evgeniy Stepanov0435ecd2013-09-13 12:54:49 +0000359 Value *MsanSetAllocaOrigin4Fn;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000360 /// \brief Run-time helper that poisons stack on function entry.
361 Value *MsanPoisonStackFn;
Evgeniy Stepanov302964e2014-03-18 13:30:56 +0000362 /// \brief Run-time helper that records a store (or any event) of an
363 /// uninitialized value and returns an updated origin id encoding this info.
364 Value *MsanChainOriginFn;
Evgeniy Stepanov62b5db92012-11-29 12:49:04 +0000365 /// \brief MSan runtime replacements for memmove, memcpy and memset.
366 Value *MemmoveFn, *MemcpyFn, *MemsetFn;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000367
Viktor Kutuzovb4ffb5d2014-12-18 12:12:59 +0000368 /// \brief Memory map parameters used in application-to-shadow calculation.
369 const MemoryMapParams *MapParams;
370
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000371 MDNode *ColdCallWeights;
Evgeniy Stepanov4f220d92012-12-06 11:41:03 +0000372 /// \brief Branch weights for origin store.
373 MDNode *OriginStoreWeights;
Evgeniy Stepanov1d2da652012-11-29 12:30:18 +0000374 /// \brief An empty volatile inline asm that prevents callback merge.
375 InlineAsm *EmptyAsm;
Ismail Pazarbasie5048e12015-05-07 21:41:52 +0000376 Function *MsanCtorFunction;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000377
Evgeniy Stepanovda0072b2012-11-29 13:12:03 +0000378 friend struct MemorySanitizerVisitor;
379 friend struct VarArgAMD64Helper;
Mohit K. Bhakkad518946e2015-02-18 11:41:24 +0000380 friend struct VarArgMIPS64Helper;
Adhemerval Zanellad2b10c52015-12-14 14:14:15 +0000381 friend struct VarArgAArch64Helper;
Marcin Koscielnickia4fcd362016-05-13 23:55:33 +0000382 friend struct VarArgPowerPC64Helper;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000383};
Hans Wennborg083ca9b2015-10-06 23:24:35 +0000384} // anonymous namespace
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000385
386char MemorySanitizer::ID = 0;
387INITIALIZE_PASS(MemorySanitizer, "msan",
388 "MemorySanitizer: detects uninitialized reads.",
389 false, false)
390
Alexey Samsonov6d8bab82014-06-02 18:08:27 +0000391FunctionPass *llvm::createMemorySanitizerPass(int TrackOrigins) {
392 return new MemorySanitizer(TrackOrigins);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000393}
394
395/// \brief Create a non-const global initialized with the given string.
396///
397/// Creates a writable global for Str so that we can pass it to the
398/// run-time lib. Runtime uses first 4 bytes of the string to store the
399/// frame ID, so the string needs to be mutable.
400static GlobalVariable *createPrivateNonConstGlobalForString(Module &M,
401 StringRef Str) {
402 Constant *StrConst = ConstantDataArray::getString(M.getContext(), Str);
403 return new GlobalVariable(M, StrConst->getType(), /*isConstant=*/false,
404 GlobalValue::PrivateLinkage, StrConst, "");
405}
406
Evgeniy Stepanov94b257d2012-12-05 13:14:33 +0000407/// \brief Insert extern declaration of runtime-provided functions and globals.
408void MemorySanitizer::initializeCallbacks(Module &M) {
409 // Only do this once.
410 if (WarningFn)
411 return;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000412
413 IRBuilder<> IRB(*C);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000414 // Create the callback.
415 // FIXME: this function should have "Cold" calling conv,
416 // which is not yet implemented.
417 StringRef WarningFnName = ClKeepGoing ? "__msan_warning"
418 : "__msan_warning_noreturn";
Reid Kleckner971c3ea2014-11-13 22:55:19 +0000419 WarningFn = M.getOrInsertFunction(WarningFnName, IRB.getVoidTy(), nullptr);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000420
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000421 for (size_t AccessSizeIndex = 0; AccessSizeIndex < kNumberOfAccessSizes;
422 AccessSizeIndex++) {
423 unsigned AccessSize = 1 << AccessSizeIndex;
424 std::string FunctionName = "__msan_maybe_warning_" + itostr(AccessSize);
425 MaybeWarningFn[AccessSizeIndex] = M.getOrInsertFunction(
426 FunctionName, IRB.getVoidTy(), IRB.getIntNTy(AccessSize * 8),
Reid Kleckner971c3ea2014-11-13 22:55:19 +0000427 IRB.getInt32Ty(), nullptr);
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000428
429 FunctionName = "__msan_maybe_store_origin_" + itostr(AccessSize);
430 MaybeStoreOriginFn[AccessSizeIndex] = M.getOrInsertFunction(
431 FunctionName, IRB.getVoidTy(), IRB.getIntNTy(AccessSize * 8),
Reid Kleckner971c3ea2014-11-13 22:55:19 +0000432 IRB.getInt8PtrTy(), IRB.getInt32Ty(), nullptr);
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000433 }
434
Evgeniy Stepanov0435ecd2013-09-13 12:54:49 +0000435 MsanSetAllocaOrigin4Fn = M.getOrInsertFunction(
436 "__msan_set_alloca_origin4", IRB.getVoidTy(), IRB.getInt8PtrTy(), IntptrTy,
Reid Kleckner971c3ea2014-11-13 22:55:19 +0000437 IRB.getInt8PtrTy(), IntptrTy, nullptr);
David Blaikiea92765c2014-11-14 00:41:42 +0000438 MsanPoisonStackFn =
439 M.getOrInsertFunction("__msan_poison_stack", IRB.getVoidTy(),
440 IRB.getInt8PtrTy(), IntptrTy, nullptr);
Evgeniy Stepanov302964e2014-03-18 13:30:56 +0000441 MsanChainOriginFn = M.getOrInsertFunction(
Reid Kleckner971c3ea2014-11-13 22:55:19 +0000442 "__msan_chain_origin", IRB.getInt32Ty(), IRB.getInt32Ty(), nullptr);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000443 MemmoveFn = M.getOrInsertFunction(
Evgeniy Stepanov9b72e992012-12-14 13:48:31 +0000444 "__msan_memmove", IRB.getInt8PtrTy(), IRB.getInt8PtrTy(),
Reid Kleckner971c3ea2014-11-13 22:55:19 +0000445 IRB.getInt8PtrTy(), IntptrTy, nullptr);
Evgeniy Stepanov62b5db92012-11-29 12:49:04 +0000446 MemcpyFn = M.getOrInsertFunction(
447 "__msan_memcpy", IRB.getInt8PtrTy(), IRB.getInt8PtrTy(), IRB.getInt8PtrTy(),
Reid Kleckner971c3ea2014-11-13 22:55:19 +0000448 IntptrTy, nullptr);
Evgeniy Stepanov62b5db92012-11-29 12:49:04 +0000449 MemsetFn = M.getOrInsertFunction(
450 "__msan_memset", IRB.getInt8PtrTy(), IRB.getInt8PtrTy(), IRB.getInt32Ty(),
Reid Kleckner971c3ea2014-11-13 22:55:19 +0000451 IntptrTy, nullptr);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000452
453 // Create globals.
454 RetvalTLS = new GlobalVariable(
Evgeniy Stepanov35eb2652014-10-22 00:12:40 +0000455 M, ArrayType::get(IRB.getInt64Ty(), kRetvalTLSSize / 8), false,
Craig Topperf40110f2014-04-25 05:29:35 +0000456 GlobalVariable::ExternalLinkage, nullptr, "__msan_retval_tls", nullptr,
Evgeniy Stepanov1e764322013-05-16 09:14:05 +0000457 GlobalVariable::InitialExecTLSModel);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000458 RetvalOriginTLS = new GlobalVariable(
Craig Topperf40110f2014-04-25 05:29:35 +0000459 M, OriginTy, false, GlobalVariable::ExternalLinkage, nullptr,
460 "__msan_retval_origin_tls", nullptr, GlobalVariable::InitialExecTLSModel);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000461
462 ParamTLS = new GlobalVariable(
Evgeniy Stepanov35eb2652014-10-22 00:12:40 +0000463 M, ArrayType::get(IRB.getInt64Ty(), kParamTLSSize / 8), false,
Craig Topperf40110f2014-04-25 05:29:35 +0000464 GlobalVariable::ExternalLinkage, nullptr, "__msan_param_tls", nullptr,
Evgeniy Stepanov1e764322013-05-16 09:14:05 +0000465 GlobalVariable::InitialExecTLSModel);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000466 ParamOriginTLS = new GlobalVariable(
Evgeniy Stepanov35eb2652014-10-22 00:12:40 +0000467 M, ArrayType::get(OriginTy, kParamTLSSize / 4), false,
468 GlobalVariable::ExternalLinkage, nullptr, "__msan_param_origin_tls",
469 nullptr, GlobalVariable::InitialExecTLSModel);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000470
471 VAArgTLS = new GlobalVariable(
Evgeniy Stepanov35eb2652014-10-22 00:12:40 +0000472 M, ArrayType::get(IRB.getInt64Ty(), kParamTLSSize / 8), false,
Craig Topperf40110f2014-04-25 05:29:35 +0000473 GlobalVariable::ExternalLinkage, nullptr, "__msan_va_arg_tls", nullptr,
Evgeniy Stepanov1e764322013-05-16 09:14:05 +0000474 GlobalVariable::InitialExecTLSModel);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000475 VAArgOverflowSizeTLS = new GlobalVariable(
Craig Topperf40110f2014-04-25 05:29:35 +0000476 M, IRB.getInt64Ty(), false, GlobalVariable::ExternalLinkage, nullptr,
477 "__msan_va_arg_overflow_size_tls", nullptr,
Evgeniy Stepanov1e764322013-05-16 09:14:05 +0000478 GlobalVariable::InitialExecTLSModel);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000479 OriginTLS = new GlobalVariable(
Craig Topperf40110f2014-04-25 05:29:35 +0000480 M, IRB.getInt32Ty(), false, GlobalVariable::ExternalLinkage, nullptr,
481 "__msan_origin_tls", nullptr, GlobalVariable::InitialExecTLSModel);
Evgeniy Stepanov1d2da652012-11-29 12:30:18 +0000482
483 // We insert an empty inline asm after __msan_report* to avoid callback merge.
484 EmptyAsm = InlineAsm::get(FunctionType::get(IRB.getVoidTy(), false),
485 StringRef(""), StringRef(""),
486 /*hasSideEffects=*/true);
Evgeniy Stepanov94b257d2012-12-05 13:14:33 +0000487}
488
489/// \brief Module-level initialization.
490///
491/// inserts a call to __msan_init to the module's constructor list.
492bool MemorySanitizer::doInitialization(Module &M) {
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000493 auto &DL = M.getDataLayout();
Rafael Espindola93512512014-02-25 17:30:31 +0000494
Viktor Kutuzovb4ffb5d2014-12-18 12:12:59 +0000495 Triple TargetTriple(M.getTargetTriple());
Mohit K. Bhakkad46ad7f72015-01-20 13:05:42 +0000496 switch (TargetTriple.getOS()) {
497 case Triple::FreeBSD:
498 switch (TargetTriple.getArch()) {
499 case Triple::x86_64:
500 MapParams = FreeBSD_X86_MemoryMapParams.bits64;
501 break;
502 case Triple::x86:
503 MapParams = FreeBSD_X86_MemoryMapParams.bits32;
504 break;
505 default:
506 report_fatal_error("unsupported architecture");
507 }
Evgeniy Stepanov94b257d2012-12-05 13:14:33 +0000508 break;
Mohit K. Bhakkad46ad7f72015-01-20 13:05:42 +0000509 case Triple::Linux:
510 switch (TargetTriple.getArch()) {
511 case Triple::x86_64:
512 MapParams = Linux_X86_MemoryMapParams.bits64;
513 break;
514 case Triple::x86:
515 MapParams = Linux_X86_MemoryMapParams.bits32;
516 break;
517 case Triple::mips64:
518 case Triple::mips64el:
519 MapParams = Linux_MIPS_MemoryMapParams.bits64;
520 break;
Jay Foad7a28cdc2015-06-25 10:34:29 +0000521 case Triple::ppc64:
522 case Triple::ppc64le:
523 MapParams = Linux_PowerPC_MemoryMapParams.bits64;
524 break;
Adhemerval Zanellaf0c95bd2015-09-16 15:10:27 +0000525 case Triple::aarch64:
526 case Triple::aarch64_be:
527 MapParams = Linux_ARM_MemoryMapParams.bits64;
528 break;
Mohit K. Bhakkad46ad7f72015-01-20 13:05:42 +0000529 default:
530 report_fatal_error("unsupported architecture");
531 }
Evgeniy Stepanov94b257d2012-12-05 13:14:33 +0000532 break;
533 default:
Mohit K. Bhakkad46ad7f72015-01-20 13:05:42 +0000534 report_fatal_error("unsupported operating system");
Evgeniy Stepanov94b257d2012-12-05 13:14:33 +0000535 }
536
Mohit K. Bhakkad46ad7f72015-01-20 13:05:42 +0000537 C = &(M.getContext());
Evgeniy Stepanov94b257d2012-12-05 13:14:33 +0000538 IRBuilder<> IRB(*C);
Rafael Espindola37dc9e12014-02-21 00:06:31 +0000539 IntptrTy = IRB.getIntPtrTy(DL);
Evgeniy Stepanov94b257d2012-12-05 13:14:33 +0000540 OriginTy = IRB.getInt32Ty();
541
542 ColdCallWeights = MDBuilder(*C).createBranchWeights(1, 1000);
Evgeniy Stepanov4f220d92012-12-06 11:41:03 +0000543 OriginStoreWeights = MDBuilder(*C).createBranchWeights(1, 1000);
Evgeniy Stepanov94b257d2012-12-05 13:14:33 +0000544
Ismail Pazarbasie5048e12015-05-07 21:41:52 +0000545 std::tie(MsanCtorFunction, std::ignore) =
546 createSanitizerCtorAndInitFunctions(M, kMsanModuleCtorName, kMsanInitName,
547 /*InitArgTypes=*/{},
548 /*InitArgs=*/{});
Evgeniy Stepanovd6e91362016-03-15 20:25:47 +0000549 if (ClWithComdat) {
550 Comdat *MsanCtorComdat = M.getOrInsertComdat(kMsanModuleCtorName);
551 MsanCtorFunction->setComdat(MsanCtorComdat);
552 appendToGlobalCtors(M, MsanCtorFunction, 0, MsanCtorFunction);
553 } else {
554 appendToGlobalCtors(M, MsanCtorFunction, 0);
555 }
Ismail Pazarbasie5048e12015-05-07 21:41:52 +0000556
Evgeniy Stepanov94b257d2012-12-05 13:14:33 +0000557
Evgeniy Stepanov888385e2013-05-31 12:04:29 +0000558 if (TrackOrigins)
559 new GlobalVariable(M, IRB.getInt32Ty(), true, GlobalValue::WeakODRLinkage,
560 IRB.getInt32(TrackOrigins), "__msan_track_origins");
Evgeniy Stepanov94b257d2012-12-05 13:14:33 +0000561
Evgeniy Stepanov888385e2013-05-31 12:04:29 +0000562 if (ClKeepGoing)
563 new GlobalVariable(M, IRB.getInt32Ty(), true, GlobalValue::WeakODRLinkage,
564 IRB.getInt32(ClKeepGoing), "__msan_keep_going");
Evgeniy Stepanovdcf6bcb2013-01-22 13:26:53 +0000565
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000566 return true;
567}
568
569namespace {
570
571/// \brief A helper class that handles instrumentation of VarArg
572/// functions on a particular platform.
573///
574/// Implementations are expected to insert the instrumentation
575/// necessary to propagate argument shadow through VarArg function
576/// calls. Visit* methods are called during an InstVisitor pass over
577/// the function, and should avoid creating new basic blocks. A new
578/// instance of this class is created for each instrumented function.
579struct VarArgHelper {
580 /// \brief Visit a CallSite.
581 virtual void visitCallSite(CallSite &CS, IRBuilder<> &IRB) = 0;
582
583 /// \brief Visit a va_start call.
584 virtual void visitVAStartInst(VAStartInst &I) = 0;
585
586 /// \brief Visit a va_copy call.
587 virtual void visitVACopyInst(VACopyInst &I) = 0;
588
589 /// \brief Finalize function instrumentation.
590 ///
591 /// This method is called after visiting all interesting (see above)
592 /// instructions in a function.
593 virtual void finalizeInstrumentation() = 0;
Evgeniy Stepanovda0072b2012-11-29 13:12:03 +0000594
595 virtual ~VarArgHelper() {}
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000596};
597
598struct MemorySanitizerVisitor;
599
600VarArgHelper*
601CreateVarArgHelper(Function &Func, MemorySanitizer &Msan,
602 MemorySanitizerVisitor &Visitor);
603
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000604unsigned TypeSizeToSizeIndex(unsigned TypeSize) {
605 if (TypeSize <= 8) return 0;
606 return Log2_32_Ceil(TypeSize / 8);
607}
608
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000609/// This class does all the work for a given function. Store and Load
610/// instructions store and load corresponding shadow and origin
611/// values. Most instructions propagate shadow from arguments to their
612/// return values. Certain instructions (most importantly, BranchInst)
613/// test their argument shadow and print reports (with a runtime call) if it's
614/// non-zero.
615struct MemorySanitizerVisitor : public InstVisitor<MemorySanitizerVisitor> {
616 Function &F;
617 MemorySanitizer &MS;
618 SmallVector<PHINode *, 16> ShadowPHINodes, OriginPHINodes;
619 ValueMap<Value*, Value*> ShadowMap, OriginMap;
Ahmed Charles56440fd2014-03-06 05:51:42 +0000620 std::unique_ptr<VarArgHelper> VAHelper;
Evgeniy Stepanovbe83d8f2013-10-14 15:16:25 +0000621
622 // The following flags disable parts of MSan instrumentation based on
623 // blacklist contents and command-line options.
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000624 bool InsertChecks;
Evgeniy Stepanov174242c2014-07-03 11:56:30 +0000625 bool PropagateShadow;
Evgeniy Stepanovdc6d7eb2013-07-03 14:39:14 +0000626 bool PoisonStack;
627 bool PoisonUndef;
Evgeniy Stepanov604293f2013-09-16 13:24:32 +0000628 bool CheckReturnValue;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000629
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000630 struct ShadowOriginAndInsertPoint {
Evgeniy Stepanovbe83d8f2013-10-14 15:16:25 +0000631 Value *Shadow;
632 Value *Origin;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000633 Instruction *OrigIns;
Evgeniy Stepanovbe83d8f2013-10-14 15:16:25 +0000634 ShadowOriginAndInsertPoint(Value *S, Value *O, Instruction *I)
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000635 : Shadow(S), Origin(O), OrigIns(I) { }
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000636 };
637 SmallVector<ShadowOriginAndInsertPoint, 16> InstrumentationList;
Evgeniy Stepanov4f220d92012-12-06 11:41:03 +0000638 SmallVector<Instruction*, 16> StoreList;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000639
640 MemorySanitizerVisitor(Function &F, MemorySanitizer &MS)
Evgeniy Stepanov00062b42013-02-28 11:25:14 +0000641 : F(F), MS(MS), VAHelper(CreateVarArgHelper(F, MS, *this)) {
Duncan P. N. Exon Smith2c79ad92015-02-14 01:11:29 +0000642 bool SanitizeFunction = F.hasFnAttribute(Attribute::SanitizeMemory);
Evgeniy Stepanovdc6d7eb2013-07-03 14:39:14 +0000643 InsertChecks = SanitizeFunction;
Evgeniy Stepanov174242c2014-07-03 11:56:30 +0000644 PropagateShadow = SanitizeFunction;
Evgeniy Stepanovdc6d7eb2013-07-03 14:39:14 +0000645 PoisonStack = SanitizeFunction && ClPoisonStack;
646 PoisonUndef = SanitizeFunction && ClPoisonUndef;
Evgeniy Stepanov604293f2013-09-16 13:24:32 +0000647 // FIXME: Consider using SpecialCaseList to specify a list of functions that
648 // must always return fully initialized values. For now, we hardcode "main".
649 CheckReturnValue = SanitizeFunction && (F.getName() == "main");
Evgeniy Stepanov00062b42013-02-28 11:25:14 +0000650
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000651 DEBUG(if (!InsertChecks)
Evgeniy Stepanov00062b42013-02-28 11:25:14 +0000652 dbgs() << "MemorySanitizer is not inserting checks into '"
653 << F.getName() << "'\n");
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000654 }
655
Evgeniy Stepanov302964e2014-03-18 13:30:56 +0000656 Value *updateOrigin(Value *V, IRBuilder<> &IRB) {
657 if (MS.TrackOrigins <= 1) return V;
658 return IRB.CreateCall(MS.MsanChainOriginFn, V);
659 }
660
Evgeniy Stepanov79ca0fd2015-01-21 13:21:31 +0000661 Value *originToIntptr(IRBuilder<> &IRB, Value *Origin) {
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000662 const DataLayout &DL = F.getParent()->getDataLayout();
663 unsigned IntptrSize = DL.getTypeStoreSize(MS.IntptrTy);
Evgeniy Stepanov79ca0fd2015-01-21 13:21:31 +0000664 if (IntptrSize == kOriginSize) return Origin;
665 assert(IntptrSize == kOriginSize * 2);
666 Origin = IRB.CreateIntCast(Origin, MS.IntptrTy, /* isSigned */ false);
667 return IRB.CreateOr(Origin, IRB.CreateShl(Origin, kOriginSize * 8));
668 }
669
670 /// \brief Fill memory range with the given origin value.
671 void paintOrigin(IRBuilder<> &IRB, Value *Origin, Value *OriginPtr,
672 unsigned Size, unsigned Alignment) {
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000673 const DataLayout &DL = F.getParent()->getDataLayout();
674 unsigned IntptrAlignment = DL.getABITypeAlignment(MS.IntptrTy);
675 unsigned IntptrSize = DL.getTypeStoreSize(MS.IntptrTy);
Evgeniy Stepanov79ca0fd2015-01-21 13:21:31 +0000676 assert(IntptrAlignment >= kMinOriginAlignment);
677 assert(IntptrSize >= kOriginSize);
678
679 unsigned Ofs = 0;
680 unsigned CurrentAlignment = Alignment;
681 if (Alignment >= IntptrAlignment && IntptrSize > kOriginSize) {
682 Value *IntptrOrigin = originToIntptr(IRB, Origin);
683 Value *IntptrOriginPtr =
684 IRB.CreatePointerCast(OriginPtr, PointerType::get(MS.IntptrTy, 0));
685 for (unsigned i = 0; i < Size / IntptrSize; ++i) {
David Blaikie95d3e532015-04-03 23:03:54 +0000686 Value *Ptr = i ? IRB.CreateConstGEP1_32(MS.IntptrTy, IntptrOriginPtr, i)
687 : IntptrOriginPtr;
Evgeniy Stepanov79ca0fd2015-01-21 13:21:31 +0000688 IRB.CreateAlignedStore(IntptrOrigin, Ptr, CurrentAlignment);
689 Ofs += IntptrSize / kOriginSize;
690 CurrentAlignment = IntptrAlignment;
691 }
692 }
693
694 for (unsigned i = Ofs; i < (Size + kOriginSize - 1) / kOriginSize; ++i) {
David Blaikie95d3e532015-04-03 23:03:54 +0000695 Value *GEP =
696 i ? IRB.CreateConstGEP1_32(nullptr, OriginPtr, i) : OriginPtr;
Evgeniy Stepanov79ca0fd2015-01-21 13:21:31 +0000697 IRB.CreateAlignedStore(Origin, GEP, CurrentAlignment);
698 CurrentAlignment = kMinOriginAlignment;
699 }
700 }
701
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000702 void storeOrigin(IRBuilder<> &IRB, Value *Addr, Value *Shadow, Value *Origin,
703 unsigned Alignment, bool AsCall) {
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000704 const DataLayout &DL = F.getParent()->getDataLayout();
Evgeniy Stepanovd85ddee2014-12-05 14:34:03 +0000705 unsigned OriginAlignment = std::max(kMinOriginAlignment, Alignment);
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000706 unsigned StoreSize = DL.getTypeStoreSize(Shadow->getType());
Adhemerval Zanellae600c992016-01-11 19:55:27 +0000707 if (Shadow->getType()->isAggregateType()) {
Evgeniy Stepanov79ca0fd2015-01-21 13:21:31 +0000708 paintOrigin(IRB, updateOrigin(Origin, IRB),
709 getOriginPtr(Addr, IRB, Alignment), StoreSize,
710 OriginAlignment);
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000711 } else {
712 Value *ConvertedShadow = convertToShadowTyNoVec(Shadow, IRB);
Evgeniy Stepanovc5b974e2015-01-20 15:21:35 +0000713 Constant *ConstantShadow = dyn_cast_or_null<Constant>(ConvertedShadow);
714 if (ConstantShadow) {
715 if (ClCheckConstantShadow && !ConstantShadow->isZeroValue())
Evgeniy Stepanov79ca0fd2015-01-21 13:21:31 +0000716 paintOrigin(IRB, updateOrigin(Origin, IRB),
717 getOriginPtr(Addr, IRB, Alignment), StoreSize,
718 OriginAlignment);
Evgeniy Stepanovc5b974e2015-01-20 15:21:35 +0000719 return;
720 }
721
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000722 unsigned TypeSizeInBits =
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000723 DL.getTypeSizeInBits(ConvertedShadow->getType());
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000724 unsigned SizeIndex = TypeSizeToSizeIndex(TypeSizeInBits);
725 if (AsCall && SizeIndex < kNumberOfAccessSizes) {
726 Value *Fn = MS.MaybeStoreOriginFn[SizeIndex];
727 Value *ConvertedShadow2 = IRB.CreateZExt(
728 ConvertedShadow, IRB.getIntNTy(8 * (1 << SizeIndex)));
David Blaikieff6409d2015-05-18 22:13:54 +0000729 IRB.CreateCall(Fn, {ConvertedShadow2,
730 IRB.CreatePointerCast(Addr, IRB.getInt8PtrTy()),
731 Origin});
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000732 } else {
733 Value *Cmp = IRB.CreateICmpNE(
734 ConvertedShadow, getCleanShadow(ConvertedShadow), "_mscmp");
735 Instruction *CheckTerm = SplitBlockAndInsertIfThen(
Duncan P. N. Exon Smithe82c2862015-10-13 17:39:10 +0000736 Cmp, &*IRB.GetInsertPoint(), false, MS.OriginStoreWeights);
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000737 IRBuilder<> IRBNew(CheckTerm);
Evgeniy Stepanov79ca0fd2015-01-21 13:21:31 +0000738 paintOrigin(IRBNew, updateOrigin(Origin, IRBNew),
739 getOriginPtr(Addr, IRBNew, Alignment), StoreSize,
740 OriginAlignment);
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000741 }
742 }
743 }
744
745 void materializeStores(bool InstrumentWithCalls) {
Alexey Samsonova02e6642014-05-29 18:40:48 +0000746 for (auto Inst : StoreList) {
747 StoreInst &SI = *dyn_cast<StoreInst>(Inst);
Evgeniy Stepanov4f220d92012-12-06 11:41:03 +0000748
Alexey Samsonova02e6642014-05-29 18:40:48 +0000749 IRBuilder<> IRB(&SI);
750 Value *Val = SI.getValueOperand();
751 Value *Addr = SI.getPointerOperand();
752 Value *Shadow = SI.isAtomic() ? getCleanShadow(Val) : getShadow(Val);
Evgeniy Stepanov4f220d92012-12-06 11:41:03 +0000753 Value *ShadowPtr = getShadowPtr(Addr, Shadow->getType(), IRB);
754
Evgeniy Stepanov9b72e992012-12-14 13:48:31 +0000755 StoreInst *NewSI =
Alexey Samsonova02e6642014-05-29 18:40:48 +0000756 IRB.CreateAlignedStore(Shadow, ShadowPtr, SI.getAlignment());
Evgeniy Stepanov4f220d92012-12-06 11:41:03 +0000757 DEBUG(dbgs() << " STORE: " << *NewSI << "\n");
NAKAMURA Takumie0b1b462012-12-06 13:38:00 +0000758 (void)NewSI;
Evgeniy Stepanovc4415592013-01-22 12:30:52 +0000759
Alexey Samsonova02e6642014-05-29 18:40:48 +0000760 if (ClCheckAccessAddress) insertShadowCheck(Addr, &SI);
Evgeniy Stepanov4f220d92012-12-06 11:41:03 +0000761
Alexey Samsonova02e6642014-05-29 18:40:48 +0000762 if (SI.isAtomic()) SI.setOrdering(addReleaseOrdering(SI.getOrdering()));
Evgeniy Stepanov5522a702013-09-24 11:20:27 +0000763
Evgeniy Stepanov4e120572015-02-06 21:47:39 +0000764 if (MS.TrackOrigins && !SI.isAtomic())
Evgeniy Stepanovd85ddee2014-12-05 14:34:03 +0000765 storeOrigin(IRB, Addr, Shadow, getOrigin(Val), SI.getAlignment(),
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000766 InstrumentWithCalls);
Evgeniy Stepanov4f220d92012-12-06 11:41:03 +0000767 }
768 }
769
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000770 void materializeOneCheck(Instruction *OrigIns, Value *Shadow, Value *Origin,
771 bool AsCall) {
772 IRBuilder<> IRB(OrigIns);
773 DEBUG(dbgs() << " SHAD0 : " << *Shadow << "\n");
774 Value *ConvertedShadow = convertToShadowTyNoVec(Shadow, IRB);
775 DEBUG(dbgs() << " SHAD1 : " << *ConvertedShadow << "\n");
Evgeniy Stepanovc5b974e2015-01-20 15:21:35 +0000776
777 Constant *ConstantShadow = dyn_cast_or_null<Constant>(ConvertedShadow);
778 if (ConstantShadow) {
779 if (ClCheckConstantShadow && !ConstantShadow->isZeroValue()) {
780 if (MS.TrackOrigins) {
781 IRB.CreateStore(Origin ? (Value *)Origin : (Value *)IRB.getInt32(0),
782 MS.OriginTLS);
783 }
David Blaikieff6409d2015-05-18 22:13:54 +0000784 IRB.CreateCall(MS.WarningFn, {});
785 IRB.CreateCall(MS.EmptyAsm, {});
Evgeniy Stepanovc5b974e2015-01-20 15:21:35 +0000786 // FIXME: Insert UnreachableInst if !ClKeepGoing?
787 // This may invalidate some of the following checks and needs to be done
788 // at the very end.
789 }
790 return;
791 }
792
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000793 const DataLayout &DL = OrigIns->getModule()->getDataLayout();
794
795 unsigned TypeSizeInBits = DL.getTypeSizeInBits(ConvertedShadow->getType());
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000796 unsigned SizeIndex = TypeSizeToSizeIndex(TypeSizeInBits);
797 if (AsCall && SizeIndex < kNumberOfAccessSizes) {
798 Value *Fn = MS.MaybeWarningFn[SizeIndex];
799 Value *ConvertedShadow2 =
800 IRB.CreateZExt(ConvertedShadow, IRB.getIntNTy(8 * (1 << SizeIndex)));
David Blaikieff6409d2015-05-18 22:13:54 +0000801 IRB.CreateCall(Fn, {ConvertedShadow2, MS.TrackOrigins && Origin
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000802 ? Origin
David Blaikieff6409d2015-05-18 22:13:54 +0000803 : (Value *)IRB.getInt32(0)});
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000804 } else {
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000805 Value *Cmp = IRB.CreateICmpNE(ConvertedShadow,
806 getCleanShadow(ConvertedShadow), "_mscmp");
Evgeniy Stepanova9164e92013-12-19 13:29:56 +0000807 Instruction *CheckTerm = SplitBlockAndInsertIfThen(
808 Cmp, OrigIns,
809 /* Unreachable */ !ClKeepGoing, MS.ColdCallWeights);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000810
811 IRB.SetInsertPoint(CheckTerm);
Evgeniy Stepanovabeae5c2012-12-19 13:55:51 +0000812 if (MS.TrackOrigins) {
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000813 IRB.CreateStore(Origin ? (Value *)Origin : (Value *)IRB.getInt32(0),
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000814 MS.OriginTLS);
815 }
David Blaikieff6409d2015-05-18 22:13:54 +0000816 IRB.CreateCall(MS.WarningFn, {});
817 IRB.CreateCall(MS.EmptyAsm, {});
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000818 DEBUG(dbgs() << " CHECK: " << *Cmp << "\n");
819 }
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000820 }
821
822 void materializeChecks(bool InstrumentWithCalls) {
Alexey Samsonova02e6642014-05-29 18:40:48 +0000823 for (const auto &ShadowData : InstrumentationList) {
824 Instruction *OrigIns = ShadowData.OrigIns;
825 Value *Shadow = ShadowData.Shadow;
826 Value *Origin = ShadowData.Origin;
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000827 materializeOneCheck(OrigIns, Shadow, Origin, InstrumentWithCalls);
828 }
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000829 DEBUG(dbgs() << "DONE:\n" << F);
830 }
831
832 /// \brief Add MemorySanitizer instrumentation to a function.
833 bool runOnFunction() {
Evgeniy Stepanov94b257d2012-12-05 13:14:33 +0000834 MS.initializeCallbacks(*F.getParent());
Evgeniy Stepanov4fbc0d082012-12-21 11:18:49 +0000835
836 // In the presence of unreachable blocks, we may see Phi nodes with
837 // incoming nodes from such blocks. Since InstVisitor skips unreachable
838 // blocks, such nodes will not have any shadow value associated with them.
839 // It's easier to remove unreachable blocks than deal with missing shadow.
840 removeUnreachableBlocks(F);
841
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000842 // Iterate all BBs in depth-first order and create shadow instructions
843 // for all instructions (where applicable).
844 // For PHI nodes we create dummy shadow PHIs which will be finalized later.
David Blaikieceec2bd2014-04-11 01:50:01 +0000845 for (BasicBlock *BB : depth_first(&F.getEntryBlock()))
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000846 visit(*BB);
David Blaikieceec2bd2014-04-11 01:50:01 +0000847
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000848
849 // Finalize PHI nodes.
Alexey Samsonova02e6642014-05-29 18:40:48 +0000850 for (PHINode *PN : ShadowPHINodes) {
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000851 PHINode *PNS = cast<PHINode>(getShadow(PN));
Craig Topperf40110f2014-04-25 05:29:35 +0000852 PHINode *PNO = MS.TrackOrigins ? cast<PHINode>(getOrigin(PN)) : nullptr;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000853 size_t NumValues = PN->getNumIncomingValues();
854 for (size_t v = 0; v < NumValues; v++) {
855 PNS->addIncoming(getShadow(PN, v), PN->getIncomingBlock(v));
Evgeniy Stepanov174242c2014-07-03 11:56:30 +0000856 if (PNO) PNO->addIncoming(getOrigin(PN, v), PN->getIncomingBlock(v));
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000857 }
858 }
859
860 VAHelper->finalizeInstrumentation();
861
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000862 bool InstrumentWithCalls = ClInstrumentationWithCallThreshold >= 0 &&
863 InstrumentationList.size() + StoreList.size() >
864 (unsigned)ClInstrumentationWithCallThreshold;
865
Evgeniy Stepanov4f220d92012-12-06 11:41:03 +0000866 // Delayed instrumentation of StoreInst.
Evgeniy Stepanov47ac9ba2012-12-06 11:58:59 +0000867 // This may add new checks to be inserted later.
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000868 materializeStores(InstrumentWithCalls);
Evgeniy Stepanov4f220d92012-12-06 11:41:03 +0000869
870 // Insert shadow value checks.
Evgeniy Stepanov65120ec2014-04-18 12:17:20 +0000871 materializeChecks(InstrumentWithCalls);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000872
873 return true;
874 }
875
876 /// \brief Compute the shadow type that corresponds to a given Value.
877 Type *getShadowTy(Value *V) {
878 return getShadowTy(V->getType());
879 }
880
881 /// \brief Compute the shadow type that corresponds to a given Type.
882 Type *getShadowTy(Type *OrigTy) {
883 if (!OrigTy->isSized()) {
Craig Topperf40110f2014-04-25 05:29:35 +0000884 return nullptr;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000885 }
886 // For integer type, shadow is the same as the original type.
887 // This may return weird-sized types like i1.
888 if (IntegerType *IT = dyn_cast<IntegerType>(OrigTy))
889 return IT;
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000890 const DataLayout &DL = F.getParent()->getDataLayout();
Evgeniy Stepanovf19c0862012-12-25 16:04:38 +0000891 if (VectorType *VT = dyn_cast<VectorType>(OrigTy)) {
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000892 uint32_t EltSize = DL.getTypeSizeInBits(VT->getElementType());
Evgeniy Stepanovf19c0862012-12-25 16:04:38 +0000893 return VectorType::get(IntegerType::get(*MS.C, EltSize),
894 VT->getNumElements());
895 }
Evgeniy Stepanov5997feb2014-07-31 11:02:27 +0000896 if (ArrayType *AT = dyn_cast<ArrayType>(OrigTy)) {
897 return ArrayType::get(getShadowTy(AT->getElementType()),
898 AT->getNumElements());
899 }
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000900 if (StructType *ST = dyn_cast<StructType>(OrigTy)) {
901 SmallVector<Type*, 4> Elements;
902 for (unsigned i = 0, n = ST->getNumElements(); i < n; i++)
903 Elements.push_back(getShadowTy(ST->getElementType(i)));
904 StructType *Res = StructType::get(*MS.C, Elements, ST->isPacked());
905 DEBUG(dbgs() << "getShadowTy: " << *ST << " ===> " << *Res << "\n");
906 return Res;
907 }
Mehdi Aminia28d91d2015-03-10 02:37:25 +0000908 uint32_t TypeSize = DL.getTypeSizeInBits(OrigTy);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000909 return IntegerType::get(*MS.C, TypeSize);
910 }
911
912 /// \brief Flatten a vector type.
913 Type *getShadowTyNoVec(Type *ty) {
914 if (VectorType *vt = dyn_cast<VectorType>(ty))
915 return IntegerType::get(*MS.C, vt->getBitWidth());
916 return ty;
917 }
918
919 /// \brief Convert a shadow value to it's flattened variant.
920 Value *convertToShadowTyNoVec(Value *V, IRBuilder<> &IRB) {
921 Type *Ty = V->getType();
922 Type *NoVecTy = getShadowTyNoVec(Ty);
923 if (Ty == NoVecTy) return V;
924 return IRB.CreateBitCast(V, NoVecTy);
925 }
926
Viktor Kutuzovb4ffb5d2014-12-18 12:12:59 +0000927 /// \brief Compute the integer shadow offset that corresponds to a given
928 /// application address.
929 ///
930 /// Offset = (Addr & ~AndMask) ^ XorMask
931 Value *getShadowPtrOffset(Value *Addr, IRBuilder<> &IRB) {
Evgeniy Stepanovd12212b2015-10-08 21:35:26 +0000932 Value *OffsetLong = IRB.CreatePointerCast(Addr, MS.IntptrTy);
933
Viktor Kutuzovb4ffb5d2014-12-18 12:12:59 +0000934 uint64_t AndMask = MS.MapParams->AndMask;
Evgeniy Stepanovd12212b2015-10-08 21:35:26 +0000935 if (AndMask)
936 OffsetLong =
937 IRB.CreateAnd(OffsetLong, ConstantInt::get(MS.IntptrTy, ~AndMask));
Viktor Kutuzovb4ffb5d2014-12-18 12:12:59 +0000938
939 uint64_t XorMask = MS.MapParams->XorMask;
Evgeniy Stepanovd12212b2015-10-08 21:35:26 +0000940 if (XorMask)
941 OffsetLong =
942 IRB.CreateXor(OffsetLong, ConstantInt::get(MS.IntptrTy, XorMask));
Viktor Kutuzovb4ffb5d2014-12-18 12:12:59 +0000943 return OffsetLong;
944 }
945
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000946 /// \brief Compute the shadow address that corresponds to a given application
947 /// address.
948 ///
Viktor Kutuzovb4ffb5d2014-12-18 12:12:59 +0000949 /// Shadow = ShadowBase + Offset
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000950 Value *getShadowPtr(Value *Addr, Type *ShadowTy,
951 IRBuilder<> &IRB) {
Viktor Kutuzovb4ffb5d2014-12-18 12:12:59 +0000952 Value *ShadowLong = getShadowPtrOffset(Addr, IRB);
953 uint64_t ShadowBase = MS.MapParams->ShadowBase;
954 if (ShadowBase != 0)
955 ShadowLong =
956 IRB.CreateAdd(ShadowLong,
957 ConstantInt::get(MS.IntptrTy, ShadowBase));
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000958 return IRB.CreateIntToPtr(ShadowLong, PointerType::get(ShadowTy, 0));
959 }
960
961 /// \brief Compute the origin address that corresponds to a given application
962 /// address.
963 ///
Viktor Kutuzovb4ffb5d2014-12-18 12:12:59 +0000964 /// OriginAddr = (OriginBase + Offset) & ~3ULL
Evgeniy Stepanovd85ddee2014-12-05 14:34:03 +0000965 Value *getOriginPtr(Value *Addr, IRBuilder<> &IRB, unsigned Alignment) {
Viktor Kutuzovb4ffb5d2014-12-18 12:12:59 +0000966 Value *OriginLong = getShadowPtrOffset(Addr, IRB);
967 uint64_t OriginBase = MS.MapParams->OriginBase;
968 if (OriginBase != 0)
969 OriginLong =
970 IRB.CreateAdd(OriginLong,
971 ConstantInt::get(MS.IntptrTy, OriginBase));
Evgeniy Stepanovd85ddee2014-12-05 14:34:03 +0000972 if (Alignment < kMinOriginAlignment) {
973 uint64_t Mask = kMinOriginAlignment - 1;
Viktor Kutuzovb4ffb5d2014-12-18 12:12:59 +0000974 OriginLong = IRB.CreateAnd(OriginLong,
975 ConstantInt::get(MS.IntptrTy, ~Mask));
Evgeniy Stepanovd85ddee2014-12-05 14:34:03 +0000976 }
Viktor Kutuzovb4ffb5d2014-12-18 12:12:59 +0000977 return IRB.CreateIntToPtr(OriginLong,
978 PointerType::get(IRB.getInt32Ty(), 0));
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000979 }
980
981 /// \brief Compute the shadow address for a given function argument.
982 ///
983 /// Shadow = ParamTLS+ArgOffset.
984 Value *getShadowPtrForArgument(Value *A, IRBuilder<> &IRB,
985 int ArgOffset) {
986 Value *Base = IRB.CreatePointerCast(MS.ParamTLS, MS.IntptrTy);
987 Base = IRB.CreateAdd(Base, ConstantInt::get(MS.IntptrTy, ArgOffset));
988 return IRB.CreateIntToPtr(Base, PointerType::get(getShadowTy(A), 0),
989 "_msarg");
990 }
991
992 /// \brief Compute the origin address for a given function argument.
993 Value *getOriginPtrForArgument(Value *A, IRBuilder<> &IRB,
994 int ArgOffset) {
Craig Topperf40110f2014-04-25 05:29:35 +0000995 if (!MS.TrackOrigins) return nullptr;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +0000996 Value *Base = IRB.CreatePointerCast(MS.ParamOriginTLS, MS.IntptrTy);
997 Base = IRB.CreateAdd(Base, ConstantInt::get(MS.IntptrTy, ArgOffset));
998 return IRB.CreateIntToPtr(Base, PointerType::get(MS.OriginTy, 0),
999 "_msarg_o");
1000 }
1001
1002 /// \brief Compute the shadow address for a retval.
1003 Value *getShadowPtrForRetval(Value *A, IRBuilder<> &IRB) {
1004 Value *Base = IRB.CreatePointerCast(MS.RetvalTLS, MS.IntptrTy);
1005 return IRB.CreateIntToPtr(Base, PointerType::get(getShadowTy(A), 0),
1006 "_msret");
1007 }
1008
1009 /// \brief Compute the origin address for a retval.
1010 Value *getOriginPtrForRetval(IRBuilder<> &IRB) {
1011 // We keep a single origin for the entire retval. Might be too optimistic.
1012 return MS.RetvalOriginTLS;
1013 }
1014
1015 /// \brief Set SV to be the shadow value for V.
1016 void setShadow(Value *V, Value *SV) {
1017 assert(!ShadowMap.count(V) && "Values may only have one shadow");
Evgeniy Stepanov174242c2014-07-03 11:56:30 +00001018 ShadowMap[V] = PropagateShadow ? SV : getCleanShadow(V);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001019 }
1020
1021 /// \brief Set Origin to be the origin value for V.
1022 void setOrigin(Value *V, Value *Origin) {
Evgeniy Stepanovabeae5c2012-12-19 13:55:51 +00001023 if (!MS.TrackOrigins) return;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001024 assert(!OriginMap.count(V) && "Values may only have one origin");
1025 DEBUG(dbgs() << "ORIGIN: " << *V << " ==> " << *Origin << "\n");
1026 OriginMap[V] = Origin;
1027 }
1028
1029 /// \brief Create a clean shadow value for a given value.
1030 ///
1031 /// Clean shadow (all zeroes) means all bits of the value are defined
1032 /// (initialized).
Evgeniy Stepanova9a962c2013-03-21 09:38:26 +00001033 Constant *getCleanShadow(Value *V) {
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001034 Type *ShadowTy = getShadowTy(V);
1035 if (!ShadowTy)
Craig Topperf40110f2014-04-25 05:29:35 +00001036 return nullptr;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001037 return Constant::getNullValue(ShadowTy);
1038 }
1039
1040 /// \brief Create a dirty shadow of a given shadow type.
1041 Constant *getPoisonedShadow(Type *ShadowTy) {
1042 assert(ShadowTy);
1043 if (isa<IntegerType>(ShadowTy) || isa<VectorType>(ShadowTy))
1044 return Constant::getAllOnesValue(ShadowTy);
Evgeniy Stepanov5997feb2014-07-31 11:02:27 +00001045 if (ArrayType *AT = dyn_cast<ArrayType>(ShadowTy)) {
1046 SmallVector<Constant *, 4> Vals(AT->getNumElements(),
1047 getPoisonedShadow(AT->getElementType()));
1048 return ConstantArray::get(AT, Vals);
1049 }
1050 if (StructType *ST = dyn_cast<StructType>(ShadowTy)) {
1051 SmallVector<Constant *, 4> Vals;
1052 for (unsigned i = 0, n = ST->getNumElements(); i < n; i++)
1053 Vals.push_back(getPoisonedShadow(ST->getElementType(i)));
1054 return ConstantStruct::get(ST, Vals);
1055 }
1056 llvm_unreachable("Unexpected shadow type");
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001057 }
1058
Evgeniy Stepanova9a962c2013-03-21 09:38:26 +00001059 /// \brief Create a dirty shadow for a given value.
1060 Constant *getPoisonedShadow(Value *V) {
1061 Type *ShadowTy = getShadowTy(V);
1062 if (!ShadowTy)
Craig Topperf40110f2014-04-25 05:29:35 +00001063 return nullptr;
Evgeniy Stepanova9a962c2013-03-21 09:38:26 +00001064 return getPoisonedShadow(ShadowTy);
1065 }
1066
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001067 /// \brief Create a clean (zero) origin.
1068 Value *getCleanOrigin() {
1069 return Constant::getNullValue(MS.OriginTy);
1070 }
1071
1072 /// \brief Get the shadow value for a given Value.
1073 ///
1074 /// This function either returns the value set earlier with setShadow,
1075 /// or extracts if from ParamTLS (for function arguments).
1076 Value *getShadow(Value *V) {
Evgeniy Stepanov174242c2014-07-03 11:56:30 +00001077 if (!PropagateShadow) return getCleanShadow(V);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001078 if (Instruction *I = dyn_cast<Instruction>(V)) {
1079 // For instructions the shadow is already stored in the map.
1080 Value *Shadow = ShadowMap[V];
1081 if (!Shadow) {
1082 DEBUG(dbgs() << "No shadow: " << *V << "\n" << *(I->getParent()));
Matt Beaumont-Gayc76536f2012-11-29 18:15:49 +00001083 (void)I;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001084 assert(Shadow && "No shadow for a value");
1085 }
1086 return Shadow;
1087 }
1088 if (UndefValue *U = dyn_cast<UndefValue>(V)) {
Evgeniy Stepanovdc6d7eb2013-07-03 14:39:14 +00001089 Value *AllOnes = PoisonUndef ? getPoisonedShadow(V) : getCleanShadow(V);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001090 DEBUG(dbgs() << "Undef: " << *U << " ==> " << *AllOnes << "\n");
Matt Beaumont-Gayc76536f2012-11-29 18:15:49 +00001091 (void)U;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001092 return AllOnes;
1093 }
1094 if (Argument *A = dyn_cast<Argument>(V)) {
1095 // For arguments we compute the shadow on demand and store it in the map.
1096 Value **ShadowPtr = &ShadowMap[V];
1097 if (*ShadowPtr)
1098 return *ShadowPtr;
1099 Function *F = A->getParent();
1100 IRBuilder<> EntryIRB(F->getEntryBlock().getFirstNonPHI());
1101 unsigned ArgOffset = 0;
Mehdi Aminia28d91d2015-03-10 02:37:25 +00001102 const DataLayout &DL = F->getParent()->getDataLayout();
Alexey Samsonova02e6642014-05-29 18:40:48 +00001103 for (auto &FArg : F->args()) {
1104 if (!FArg.getType()->isSized()) {
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001105 DEBUG(dbgs() << "Arg is not sized\n");
1106 continue;
1107 }
Mehdi Aminia28d91d2015-03-10 02:37:25 +00001108 unsigned Size =
1109 FArg.hasByValAttr()
1110 ? DL.getTypeAllocSize(FArg.getType()->getPointerElementType())
1111 : DL.getTypeAllocSize(FArg.getType());
Alexey Samsonova02e6642014-05-29 18:40:48 +00001112 if (A == &FArg) {
Evgeniy Stepanov35eb2652014-10-22 00:12:40 +00001113 bool Overflow = ArgOffset + Size > kParamTLSSize;
Alexey Samsonova02e6642014-05-29 18:40:48 +00001114 Value *Base = getShadowPtrForArgument(&FArg, EntryIRB, ArgOffset);
1115 if (FArg.hasByValAttr()) {
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001116 // ByVal pointer itself has clean shadow. We copy the actual
1117 // argument shadow to the underlying memory.
Evgeniy Stepanovfca01232013-05-28 13:07:43 +00001118 // Figure out maximal valid memcpy alignment.
Alexey Samsonova02e6642014-05-29 18:40:48 +00001119 unsigned ArgAlign = FArg.getParamAlignment();
Evgeniy Stepanovfca01232013-05-28 13:07:43 +00001120 if (ArgAlign == 0) {
1121 Type *EltType = A->getType()->getPointerElementType();
Mehdi Aminia28d91d2015-03-10 02:37:25 +00001122 ArgAlign = DL.getABITypeAlignment(EltType);
Evgeniy Stepanovfca01232013-05-28 13:07:43 +00001123 }
Evgeniy Stepanov35eb2652014-10-22 00:12:40 +00001124 if (Overflow) {
1125 // ParamTLS overflow.
1126 EntryIRB.CreateMemSet(
1127 getShadowPtr(V, EntryIRB.getInt8Ty(), EntryIRB),
1128 Constant::getNullValue(EntryIRB.getInt8Ty()), Size, ArgAlign);
1129 } else {
1130 unsigned CopyAlign = std::min(ArgAlign, kShadowTLSAlignment);
1131 Value *Cpy = EntryIRB.CreateMemCpy(
1132 getShadowPtr(V, EntryIRB.getInt8Ty(), EntryIRB), Base, Size,
Pete Cooper67cf9a72015-11-19 05:56:52 +00001133 CopyAlign);
Evgeniy Stepanov35eb2652014-10-22 00:12:40 +00001134 DEBUG(dbgs() << " ByValCpy: " << *Cpy << "\n");
1135 (void)Cpy;
1136 }
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001137 *ShadowPtr = getCleanShadow(V);
1138 } else {
Evgeniy Stepanov35eb2652014-10-22 00:12:40 +00001139 if (Overflow) {
1140 // ParamTLS overflow.
1141 *ShadowPtr = getCleanShadow(V);
1142 } else {
1143 *ShadowPtr =
1144 EntryIRB.CreateAlignedLoad(Base, kShadowTLSAlignment);
1145 }
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001146 }
Alexey Samsonova02e6642014-05-29 18:40:48 +00001147 DEBUG(dbgs() << " ARG: " << FArg << " ==> " <<
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001148 **ShadowPtr << "\n");
Evgeniy Stepanov35eb2652014-10-22 00:12:40 +00001149 if (MS.TrackOrigins && !Overflow) {
Alexey Samsonova02e6642014-05-29 18:40:48 +00001150 Value *OriginPtr =
1151 getOriginPtrForArgument(&FArg, EntryIRB, ArgOffset);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001152 setOrigin(A, EntryIRB.CreateLoad(OriginPtr));
Evgeniy Stepanov2e5a1f12014-12-03 14:15:53 +00001153 } else {
1154 setOrigin(A, getCleanOrigin());
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001155 }
1156 }
Rui Ueyamada00f2f2016-01-14 21:06:47 +00001157 ArgOffset += alignTo(Size, kShadowTLSAlignment);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001158 }
1159 assert(*ShadowPtr && "Could not find shadow for an argument");
1160 return *ShadowPtr;
1161 }
1162 // For everything else the shadow is zero.
1163 return getCleanShadow(V);
1164 }
1165
1166 /// \brief Get the shadow for i-th argument of the instruction I.
1167 Value *getShadow(Instruction *I, int i) {
1168 return getShadow(I->getOperand(i));
1169 }
1170
1171 /// \brief Get the origin for a value.
1172 Value *getOrigin(Value *V) {
Craig Topperf40110f2014-04-25 05:29:35 +00001173 if (!MS.TrackOrigins) return nullptr;
Evgeniy Stepanov2e5a1f12014-12-03 14:15:53 +00001174 if (!PropagateShadow) return getCleanOrigin();
1175 if (isa<Constant>(V)) return getCleanOrigin();
1176 assert((isa<Instruction>(V) || isa<Argument>(V)) &&
1177 "Unexpected value type in getOrigin()");
1178 Value *Origin = OriginMap[V];
1179 assert(Origin && "Missing origin");
1180 return Origin;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001181 }
1182
1183 /// \brief Get the origin for i-th argument of the instruction I.
1184 Value *getOrigin(Instruction *I, int i) {
1185 return getOrigin(I->getOperand(i));
1186 }
1187
1188 /// \brief Remember the place where a shadow check should be inserted.
1189 ///
1190 /// This location will be later instrumented with a check that will print a
Evgeniy Stepanovbe83d8f2013-10-14 15:16:25 +00001191 /// UMR warning in runtime if the shadow value is not 0.
1192 void insertShadowCheck(Value *Shadow, Value *Origin, Instruction *OrigIns) {
1193 assert(Shadow);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001194 if (!InsertChecks) return;
Matt Beaumont-Gayc76536f2012-11-29 18:15:49 +00001195#ifndef NDEBUG
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001196 Type *ShadowTy = Shadow->getType();
1197 assert((isa<IntegerType>(ShadowTy) || isa<VectorType>(ShadowTy)) &&
1198 "Can only insert checks for integer and vector shadow types");
Matt Beaumont-Gayc76536f2012-11-29 18:15:49 +00001199#endif
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001200 InstrumentationList.push_back(
Evgeniy Stepanovbe83d8f2013-10-14 15:16:25 +00001201 ShadowOriginAndInsertPoint(Shadow, Origin, OrigIns));
1202 }
1203
1204 /// \brief Remember the place where a shadow check should be inserted.
1205 ///
1206 /// This location will be later instrumented with a check that will print a
1207 /// UMR warning in runtime if the value is not fully defined.
1208 void insertShadowCheck(Value *Val, Instruction *OrigIns) {
1209 assert(Val);
Evgeniy Stepanovd337a592014-10-24 23:34:15 +00001210 Value *Shadow, *Origin;
1211 if (ClCheckConstantShadow) {
1212 Shadow = getShadow(Val);
1213 if (!Shadow) return;
1214 Origin = getOrigin(Val);
1215 } else {
1216 Shadow = dyn_cast_or_null<Instruction>(getShadow(Val));
1217 if (!Shadow) return;
1218 Origin = dyn_cast_or_null<Instruction>(getOrigin(Val));
1219 }
Evgeniy Stepanovbe83d8f2013-10-14 15:16:25 +00001220 insertShadowCheck(Shadow, Origin, OrigIns);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001221 }
1222
Evgeniy Stepanov5522a702013-09-24 11:20:27 +00001223 AtomicOrdering addReleaseOrdering(AtomicOrdering a) {
1224 switch (a) {
JF Bastien800f87a2016-04-06 21:19:33 +00001225 case AtomicOrdering::NotAtomic:
1226 return AtomicOrdering::NotAtomic;
1227 case AtomicOrdering::Unordered:
1228 case AtomicOrdering::Monotonic:
1229 case AtomicOrdering::Release:
1230 return AtomicOrdering::Release;
1231 case AtomicOrdering::Acquire:
1232 case AtomicOrdering::AcquireRelease:
1233 return AtomicOrdering::AcquireRelease;
1234 case AtomicOrdering::SequentiallyConsistent:
1235 return AtomicOrdering::SequentiallyConsistent;
Evgeniy Stepanov5522a702013-09-24 11:20:27 +00001236 }
Evgeniy Stepanov32be0342013-09-25 08:56:00 +00001237 llvm_unreachable("Unknown ordering");
Evgeniy Stepanov5522a702013-09-24 11:20:27 +00001238 }
1239
1240 AtomicOrdering addAcquireOrdering(AtomicOrdering a) {
1241 switch (a) {
JF Bastien800f87a2016-04-06 21:19:33 +00001242 case AtomicOrdering::NotAtomic:
1243 return AtomicOrdering::NotAtomic;
1244 case AtomicOrdering::Unordered:
1245 case AtomicOrdering::Monotonic:
1246 case AtomicOrdering::Acquire:
1247 return AtomicOrdering::Acquire;
1248 case AtomicOrdering::Release:
1249 case AtomicOrdering::AcquireRelease:
1250 return AtomicOrdering::AcquireRelease;
1251 case AtomicOrdering::SequentiallyConsistent:
1252 return AtomicOrdering::SequentiallyConsistent;
Evgeniy Stepanov5522a702013-09-24 11:20:27 +00001253 }
Evgeniy Stepanov32be0342013-09-25 08:56:00 +00001254 llvm_unreachable("Unknown ordering");
Evgeniy Stepanov5522a702013-09-24 11:20:27 +00001255 }
1256
Evgeniy Stepanov9b72e992012-12-14 13:48:31 +00001257 // ------------------- Visitors.
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001258
1259 /// \brief Instrument LoadInst
1260 ///
1261 /// Loads the corresponding shadow and (optionally) origin.
1262 /// Optionally, checks that the load address is fully defined.
1263 void visitLoadInst(LoadInst &I) {
Matt Beaumont-Gayc76536f2012-11-29 18:15:49 +00001264 assert(I.getType()->isSized() && "Load type must have size");
Evgeniy Stepanov5522a702013-09-24 11:20:27 +00001265 IRBuilder<> IRB(I.getNextNode());
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001266 Type *ShadowTy = getShadowTy(&I);
1267 Value *Addr = I.getPointerOperand();
Kostya Serebryany543f3db2014-12-03 23:28:26 +00001268 if (PropagateShadow && !I.getMetadata("nosanitize")) {
Evgeniy Stepanov00062b42013-02-28 11:25:14 +00001269 Value *ShadowPtr = getShadowPtr(Addr, ShadowTy, IRB);
1270 setShadow(&I,
1271 IRB.CreateAlignedLoad(ShadowPtr, I.getAlignment(), "_msld"));
1272 } else {
1273 setShadow(&I, getCleanShadow(&I));
1274 }
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001275
1276 if (ClCheckAccessAddress)
Evgeniy Stepanovbe83d8f2013-10-14 15:16:25 +00001277 insertShadowCheck(I.getPointerOperand(), &I);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001278
Evgeniy Stepanov5522a702013-09-24 11:20:27 +00001279 if (I.isAtomic())
1280 I.setOrdering(addAcquireOrdering(I.getOrdering()));
1281
Evgeniy Stepanov5eb5bf82012-12-26 11:55:09 +00001282 if (MS.TrackOrigins) {
Evgeniy Stepanov174242c2014-07-03 11:56:30 +00001283 if (PropagateShadow) {
Evgeniy Stepanovd85ddee2014-12-05 14:34:03 +00001284 unsigned Alignment = I.getAlignment();
1285 unsigned OriginAlignment = std::max(kMinOriginAlignment, Alignment);
1286 setOrigin(&I, IRB.CreateAlignedLoad(getOriginPtr(Addr, IRB, Alignment),
1287 OriginAlignment));
Evgeniy Stepanov00062b42013-02-28 11:25:14 +00001288 } else {
1289 setOrigin(&I, getCleanOrigin());
1290 }
Evgeniy Stepanov5eb5bf82012-12-26 11:55:09 +00001291 }
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001292 }
1293
1294 /// \brief Instrument StoreInst
1295 ///
1296 /// Stores the corresponding shadow and (optionally) origin.
1297 /// Optionally, checks that the store address is fully defined.
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001298 void visitStoreInst(StoreInst &I) {
Evgeniy Stepanov4f220d92012-12-06 11:41:03 +00001299 StoreList.push_back(&I);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001300 }
1301
Evgeniy Stepanov5522a702013-09-24 11:20:27 +00001302 void handleCASOrRMW(Instruction &I) {
1303 assert(isa<AtomicRMWInst>(I) || isa<AtomicCmpXchgInst>(I));
1304
1305 IRBuilder<> IRB(&I);
1306 Value *Addr = I.getOperand(0);
1307 Value *ShadowPtr = getShadowPtr(Addr, I.getType(), IRB);
1308
1309 if (ClCheckAccessAddress)
Evgeniy Stepanovbe83d8f2013-10-14 15:16:25 +00001310 insertShadowCheck(Addr, &I);
Evgeniy Stepanov5522a702013-09-24 11:20:27 +00001311
1312 // Only test the conditional argument of cmpxchg instruction.
1313 // The other argument can potentially be uninitialized, but we can not
1314 // detect this situation reliably without possible false positives.
1315 if (isa<AtomicCmpXchgInst>(I))
Evgeniy Stepanovbe83d8f2013-10-14 15:16:25 +00001316 insertShadowCheck(I.getOperand(1), &I);
Evgeniy Stepanov5522a702013-09-24 11:20:27 +00001317
1318 IRB.CreateStore(getCleanShadow(&I), ShadowPtr);
1319
1320 setShadow(&I, getCleanShadow(&I));
Evgeniy Stepanov2e5a1f12014-12-03 14:15:53 +00001321 setOrigin(&I, getCleanOrigin());
Evgeniy Stepanov5522a702013-09-24 11:20:27 +00001322 }
1323
1324 void visitAtomicRMWInst(AtomicRMWInst &I) {
1325 handleCASOrRMW(I);
1326 I.setOrdering(addReleaseOrdering(I.getOrdering()));
1327 }
1328
1329 void visitAtomicCmpXchgInst(AtomicCmpXchgInst &I) {
1330 handleCASOrRMW(I);
Tim Northovere94a5182014-03-11 10:48:52 +00001331 I.setSuccessOrdering(addReleaseOrdering(I.getSuccessOrdering()));
Evgeniy Stepanov5522a702013-09-24 11:20:27 +00001332 }
1333
Evgeniy Stepanov30484fc2012-11-29 15:22:06 +00001334 // Vector manipulation.
1335 void visitExtractElementInst(ExtractElementInst &I) {
Evgeniy Stepanovbe83d8f2013-10-14 15:16:25 +00001336 insertShadowCheck(I.getOperand(1), &I);
Evgeniy Stepanov30484fc2012-11-29 15:22:06 +00001337 IRBuilder<> IRB(&I);
1338 setShadow(&I, IRB.CreateExtractElement(getShadow(&I, 0), I.getOperand(1),
1339 "_msprop"));
1340 setOrigin(&I, getOrigin(&I, 0));
1341 }
1342
1343 void visitInsertElementInst(InsertElementInst &I) {
Evgeniy Stepanovbe83d8f2013-10-14 15:16:25 +00001344 insertShadowCheck(I.getOperand(2), &I);
Evgeniy Stepanov30484fc2012-11-29 15:22:06 +00001345 IRBuilder<> IRB(&I);
1346 setShadow(&I, IRB.CreateInsertElement(getShadow(&I, 0), getShadow(&I, 1),
1347 I.getOperand(2), "_msprop"));
1348 setOriginForNaryOp(I);
1349 }
1350
1351 void visitShuffleVectorInst(ShuffleVectorInst &I) {
Evgeniy Stepanovbe83d8f2013-10-14 15:16:25 +00001352 insertShadowCheck(I.getOperand(2), &I);
Evgeniy Stepanov30484fc2012-11-29 15:22:06 +00001353 IRBuilder<> IRB(&I);
1354 setShadow(&I, IRB.CreateShuffleVector(getShadow(&I, 0), getShadow(&I, 1),
1355 I.getOperand(2), "_msprop"));
1356 setOriginForNaryOp(I);
1357 }
1358
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001359 // Casts.
1360 void visitSExtInst(SExtInst &I) {
1361 IRBuilder<> IRB(&I);
1362 setShadow(&I, IRB.CreateSExt(getShadow(&I, 0), I.getType(), "_msprop"));
1363 setOrigin(&I, getOrigin(&I, 0));
1364 }
1365
1366 void visitZExtInst(ZExtInst &I) {
1367 IRBuilder<> IRB(&I);
1368 setShadow(&I, IRB.CreateZExt(getShadow(&I, 0), I.getType(), "_msprop"));
1369 setOrigin(&I, getOrigin(&I, 0));
1370 }
1371
1372 void visitTruncInst(TruncInst &I) {
1373 IRBuilder<> IRB(&I);
1374 setShadow(&I, IRB.CreateTrunc(getShadow(&I, 0), I.getType(), "_msprop"));
1375 setOrigin(&I, getOrigin(&I, 0));
1376 }
1377
1378 void visitBitCastInst(BitCastInst &I) {
Evgeniy Stepanov24ac55d2015-08-14 22:03:50 +00001379 // Special case: if this is the bitcast (there is exactly 1 allowed) between
1380 // a musttail call and a ret, don't instrument. New instructions are not
1381 // allowed after a musttail call.
1382 if (auto *CI = dyn_cast<CallInst>(I.getOperand(0)))
1383 if (CI->isMustTailCall())
1384 return;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001385 IRBuilder<> IRB(&I);
1386 setShadow(&I, IRB.CreateBitCast(getShadow(&I, 0), getShadowTy(&I)));
1387 setOrigin(&I, getOrigin(&I, 0));
1388 }
1389
1390 void visitPtrToIntInst(PtrToIntInst &I) {
1391 IRBuilder<> IRB(&I);
1392 setShadow(&I, IRB.CreateIntCast(getShadow(&I, 0), getShadowTy(&I), false,
1393 "_msprop_ptrtoint"));
1394 setOrigin(&I, getOrigin(&I, 0));
1395 }
1396
1397 void visitIntToPtrInst(IntToPtrInst &I) {
1398 IRBuilder<> IRB(&I);
1399 setShadow(&I, IRB.CreateIntCast(getShadow(&I, 0), getShadowTy(&I), false,
1400 "_msprop_inttoptr"));
1401 setOrigin(&I, getOrigin(&I, 0));
1402 }
1403
1404 void visitFPToSIInst(CastInst& I) { handleShadowOr(I); }
1405 void visitFPToUIInst(CastInst& I) { handleShadowOr(I); }
1406 void visitSIToFPInst(CastInst& I) { handleShadowOr(I); }
1407 void visitUIToFPInst(CastInst& I) { handleShadowOr(I); }
1408 void visitFPExtInst(CastInst& I) { handleShadowOr(I); }
1409 void visitFPTruncInst(CastInst& I) { handleShadowOr(I); }
1410
1411 /// \brief Propagate shadow for bitwise AND.
1412 ///
1413 /// This code is exact, i.e. if, for example, a bit in the left argument
1414 /// is defined and 0, then neither the value not definedness of the
1415 /// corresponding bit in B don't affect the resulting shadow.
1416 void visitAnd(BinaryOperator &I) {
1417 IRBuilder<> IRB(&I);
1418 // "And" of 0 and a poisoned value results in unpoisoned value.
1419 // 1&1 => 1; 0&1 => 0; p&1 => p;
1420 // 1&0 => 0; 0&0 => 0; p&0 => 0;
1421 // 1&p => p; 0&p => 0; p&p => p;
1422 // S = (S1 & S2) | (V1 & S2) | (S1 & V2)
1423 Value *S1 = getShadow(&I, 0);
1424 Value *S2 = getShadow(&I, 1);
1425 Value *V1 = I.getOperand(0);
1426 Value *V2 = I.getOperand(1);
1427 if (V1->getType() != S1->getType()) {
1428 V1 = IRB.CreateIntCast(V1, S1->getType(), false);
1429 V2 = IRB.CreateIntCast(V2, S2->getType(), false);
1430 }
1431 Value *S1S2 = IRB.CreateAnd(S1, S2);
1432 Value *V1S2 = IRB.CreateAnd(V1, S2);
1433 Value *S1V2 = IRB.CreateAnd(S1, V2);
1434 setShadow(&I, IRB.CreateOr(S1S2, IRB.CreateOr(V1S2, S1V2)));
1435 setOriginForNaryOp(I);
1436 }
1437
1438 void visitOr(BinaryOperator &I) {
1439 IRBuilder<> IRB(&I);
1440 // "Or" of 1 and a poisoned value results in unpoisoned value.
1441 // 1|1 => 1; 0|1 => 1; p|1 => 1;
1442 // 1|0 => 1; 0|0 => 0; p|0 => p;
1443 // 1|p => 1; 0|p => p; p|p => p;
1444 // S = (S1 & S2) | (~V1 & S2) | (S1 & ~V2)
1445 Value *S1 = getShadow(&I, 0);
1446 Value *S2 = getShadow(&I, 1);
1447 Value *V1 = IRB.CreateNot(I.getOperand(0));
1448 Value *V2 = IRB.CreateNot(I.getOperand(1));
1449 if (V1->getType() != S1->getType()) {
1450 V1 = IRB.CreateIntCast(V1, S1->getType(), false);
1451 V2 = IRB.CreateIntCast(V2, S2->getType(), false);
1452 }
1453 Value *S1S2 = IRB.CreateAnd(S1, S2);
1454 Value *V1S2 = IRB.CreateAnd(V1, S2);
1455 Value *S1V2 = IRB.CreateAnd(S1, V2);
1456 setShadow(&I, IRB.CreateOr(S1S2, IRB.CreateOr(V1S2, S1V2)));
1457 setOriginForNaryOp(I);
1458 }
1459
Evgeniy Stepanovf18e3af2012-12-14 12:54:18 +00001460 /// \brief Default propagation of shadow and/or origin.
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001461 ///
Evgeniy Stepanovf18e3af2012-12-14 12:54:18 +00001462 /// This class implements the general case of shadow propagation, used in all
1463 /// cases where we don't know and/or don't care about what the operation
1464 /// actually does. It converts all input shadow values to a common type
1465 /// (extending or truncating as necessary), and bitwise OR's them.
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001466 ///
1467 /// This is much cheaper than inserting checks (i.e. requiring inputs to be
1468 /// fully initialized), and less prone to false positives.
Evgeniy Stepanovf18e3af2012-12-14 12:54:18 +00001469 ///
1470 /// This class also implements the general case of origin propagation. For a
1471 /// Nary operation, result origin is set to the origin of an argument that is
1472 /// not entirely initialized. If there is more than one such arguments, the
1473 /// rightmost of them is picked. It does not matter which one is picked if all
1474 /// arguments are initialized.
1475 template <bool CombineShadow>
1476 class Combiner {
1477 Value *Shadow;
1478 Value *Origin;
1479 IRBuilder<> &IRB;
1480 MemorySanitizerVisitor *MSV;
Evgeniy Stepanov9b72e992012-12-14 13:48:31 +00001481
Evgeniy Stepanovf18e3af2012-12-14 12:54:18 +00001482 public:
1483 Combiner(MemorySanitizerVisitor *MSV, IRBuilder<> &IRB) :
Craig Topperf40110f2014-04-25 05:29:35 +00001484 Shadow(nullptr), Origin(nullptr), IRB(IRB), MSV(MSV) {}
Evgeniy Stepanovf18e3af2012-12-14 12:54:18 +00001485
1486 /// \brief Add a pair of shadow and origin values to the mix.
1487 Combiner &Add(Value *OpShadow, Value *OpOrigin) {
1488 if (CombineShadow) {
1489 assert(OpShadow);
1490 if (!Shadow)
1491 Shadow = OpShadow;
1492 else {
1493 OpShadow = MSV->CreateShadowCast(IRB, OpShadow, Shadow->getType());
1494 Shadow = IRB.CreateOr(Shadow, OpShadow, "_msprop");
1495 }
1496 }
1497
Evgeniy Stepanovabeae5c2012-12-19 13:55:51 +00001498 if (MSV->MS.TrackOrigins) {
Evgeniy Stepanovf18e3af2012-12-14 12:54:18 +00001499 assert(OpOrigin);
1500 if (!Origin) {
1501 Origin = OpOrigin;
1502 } else {
Evgeniy Stepanov70d1b0a2014-06-09 14:29:34 +00001503 Constant *ConstOrigin = dyn_cast<Constant>(OpOrigin);
1504 // No point in adding something that might result in 0 origin value.
1505 if (!ConstOrigin || !ConstOrigin->isNullValue()) {
1506 Value *FlatShadow = MSV->convertToShadowTyNoVec(OpShadow, IRB);
1507 Value *Cond =
1508 IRB.CreateICmpNE(FlatShadow, MSV->getCleanShadow(FlatShadow));
1509 Origin = IRB.CreateSelect(Cond, OpOrigin, Origin);
1510 }
Evgeniy Stepanovf18e3af2012-12-14 12:54:18 +00001511 }
1512 }
1513 return *this;
1514 }
1515
1516 /// \brief Add an application value to the mix.
1517 Combiner &Add(Value *V) {
1518 Value *OpShadow = MSV->getShadow(V);
Craig Topperf40110f2014-04-25 05:29:35 +00001519 Value *OpOrigin = MSV->MS.TrackOrigins ? MSV->getOrigin(V) : nullptr;
Evgeniy Stepanovf18e3af2012-12-14 12:54:18 +00001520 return Add(OpShadow, OpOrigin);
1521 }
1522
1523 /// \brief Set the current combined values as the given instruction's shadow
1524 /// and origin.
1525 void Done(Instruction *I) {
1526 if (CombineShadow) {
1527 assert(Shadow);
1528 Shadow = MSV->CreateShadowCast(IRB, Shadow, MSV->getShadowTy(I));
1529 MSV->setShadow(I, Shadow);
1530 }
Evgeniy Stepanovabeae5c2012-12-19 13:55:51 +00001531 if (MSV->MS.TrackOrigins) {
Evgeniy Stepanovf18e3af2012-12-14 12:54:18 +00001532 assert(Origin);
1533 MSV->setOrigin(I, Origin);
1534 }
1535 }
1536 };
1537
1538 typedef Combiner<true> ShadowAndOriginCombiner;
1539 typedef Combiner<false> OriginCombiner;
1540
1541 /// \brief Propagate origin for arbitrary operation.
1542 void setOriginForNaryOp(Instruction &I) {
Evgeniy Stepanovabeae5c2012-12-19 13:55:51 +00001543 if (!MS.TrackOrigins) return;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001544 IRBuilder<> IRB(&I);
Evgeniy Stepanovf18e3af2012-12-14 12:54:18 +00001545 OriginCombiner OC(this, IRB);
1546 for (Instruction::op_iterator OI = I.op_begin(); OI != I.op_end(); ++OI)
1547 OC.Add(OI->get());
1548 OC.Done(&I);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001549 }
1550
Evgeniy Stepanovf18e3af2012-12-14 12:54:18 +00001551 size_t VectorOrPrimitiveTypeSizeInBits(Type *Ty) {
Evgeniy Stepanovf19c0862012-12-25 16:04:38 +00001552 assert(!(Ty->isVectorTy() && Ty->getScalarType()->isPointerTy()) &&
1553 "Vector of pointers is not a valid shadow type");
Evgeniy Stepanovf18e3af2012-12-14 12:54:18 +00001554 return Ty->isVectorTy() ?
1555 Ty->getVectorNumElements() * Ty->getScalarSizeInBits() :
1556 Ty->getPrimitiveSizeInBits();
1557 }
1558
1559 /// \brief Cast between two shadow types, extending or truncating as
1560 /// necessary.
Evgeniy Stepanov21a9c932013-10-17 10:53:50 +00001561 Value *CreateShadowCast(IRBuilder<> &IRB, Value *V, Type *dstTy,
1562 bool Signed = false) {
Evgeniy Stepanovf18e3af2012-12-14 12:54:18 +00001563 Type *srcTy = V->getType();
1564 if (dstTy->isIntegerTy() && srcTy->isIntegerTy())
Evgeniy Stepanov21a9c932013-10-17 10:53:50 +00001565 return IRB.CreateIntCast(V, dstTy, Signed);
Evgeniy Stepanovf18e3af2012-12-14 12:54:18 +00001566 if (dstTy->isVectorTy() && srcTy->isVectorTy() &&
1567 dstTy->getVectorNumElements() == srcTy->getVectorNumElements())
Evgeniy Stepanov21a9c932013-10-17 10:53:50 +00001568 return IRB.CreateIntCast(V, dstTy, Signed);
Evgeniy Stepanovf18e3af2012-12-14 12:54:18 +00001569 size_t srcSizeInBits = VectorOrPrimitiveTypeSizeInBits(srcTy);
1570 size_t dstSizeInBits = VectorOrPrimitiveTypeSizeInBits(dstTy);
1571 Value *V1 = IRB.CreateBitCast(V, Type::getIntNTy(*MS.C, srcSizeInBits));
1572 Value *V2 =
Evgeniy Stepanov21a9c932013-10-17 10:53:50 +00001573 IRB.CreateIntCast(V1, Type::getIntNTy(*MS.C, dstSizeInBits), Signed);
Evgeniy Stepanovf18e3af2012-12-14 12:54:18 +00001574 return IRB.CreateBitCast(V2, dstTy);
1575 // TODO: handle struct types.
1576 }
1577
Evgeniy Stepanovfc742ac2014-03-25 13:08:34 +00001578 /// \brief Cast an application value to the type of its own shadow.
1579 Value *CreateAppToShadowCast(IRBuilder<> &IRB, Value *V) {
1580 Type *ShadowTy = getShadowTy(V);
1581 if (V->getType() == ShadowTy)
1582 return V;
1583 if (V->getType()->isPtrOrPtrVectorTy())
1584 return IRB.CreatePtrToInt(V, ShadowTy);
1585 else
1586 return IRB.CreateBitCast(V, ShadowTy);
1587 }
1588
Evgeniy Stepanovf18e3af2012-12-14 12:54:18 +00001589 /// \brief Propagate shadow for arbitrary operation.
1590 void handleShadowOr(Instruction &I) {
1591 IRBuilder<> IRB(&I);
1592 ShadowAndOriginCombiner SC(this, IRB);
1593 for (Instruction::op_iterator OI = I.op_begin(); OI != I.op_end(); ++OI)
1594 SC.Add(OI->get());
1595 SC.Done(&I);
1596 }
1597
Evgeniy Stepanovdf187fe2014-06-17 09:23:12 +00001598 // \brief Handle multiplication by constant.
1599 //
1600 // Handle a special case of multiplication by constant that may have one or
1601 // more zeros in the lower bits. This makes corresponding number of lower bits
1602 // of the result zero as well. We model it by shifting the other operand
1603 // shadow left by the required number of bits. Effectively, we transform
1604 // (X * (A * 2**B)) to ((X << B) * A) and instrument (X << B) as (Sx << B).
1605 // We use multiplication by 2**N instead of shift to cover the case of
1606 // multiplication by 0, which may occur in some elements of a vector operand.
1607 void handleMulByConstant(BinaryOperator &I, Constant *ConstArg,
1608 Value *OtherArg) {
1609 Constant *ShadowMul;
1610 Type *Ty = ConstArg->getType();
1611 if (Ty->isVectorTy()) {
1612 unsigned NumElements = Ty->getVectorNumElements();
1613 Type *EltTy = Ty->getSequentialElementType();
1614 SmallVector<Constant *, 16> Elements;
1615 for (unsigned Idx = 0; Idx < NumElements; ++Idx) {
Evgeniy Stepanovebd3f442015-10-14 00:21:13 +00001616 if (ConstantInt *Elt =
1617 dyn_cast<ConstantInt>(ConstArg->getAggregateElement(Idx))) {
1618 APInt V = Elt->getValue();
1619 APInt V2 = APInt(V.getBitWidth(), 1) << V.countTrailingZeros();
1620 Elements.push_back(ConstantInt::get(EltTy, V2));
1621 } else {
1622 Elements.push_back(ConstantInt::get(EltTy, 1));
1623 }
Evgeniy Stepanovdf187fe2014-06-17 09:23:12 +00001624 }
1625 ShadowMul = ConstantVector::get(Elements);
1626 } else {
Evgeniy Stepanovebd3f442015-10-14 00:21:13 +00001627 if (ConstantInt *Elt = dyn_cast<ConstantInt>(ConstArg)) {
1628 APInt V = Elt->getValue();
1629 APInt V2 = APInt(V.getBitWidth(), 1) << V.countTrailingZeros();
1630 ShadowMul = ConstantInt::get(Ty, V2);
1631 } else {
1632 ShadowMul = ConstantInt::get(Ty, 1);
1633 }
Evgeniy Stepanovdf187fe2014-06-17 09:23:12 +00001634 }
1635
1636 IRBuilder<> IRB(&I);
1637 setShadow(&I,
1638 IRB.CreateMul(getShadow(OtherArg), ShadowMul, "msprop_mul_cst"));
1639 setOrigin(&I, getOrigin(OtherArg));
1640 }
1641
1642 void visitMul(BinaryOperator &I) {
1643 Constant *constOp0 = dyn_cast<Constant>(I.getOperand(0));
1644 Constant *constOp1 = dyn_cast<Constant>(I.getOperand(1));
1645 if (constOp0 && !constOp1)
1646 handleMulByConstant(I, constOp0, I.getOperand(1));
1647 else if (constOp1 && !constOp0)
1648 handleMulByConstant(I, constOp1, I.getOperand(0));
1649 else
1650 handleShadowOr(I);
1651 }
1652
Evgeniy Stepanovf18e3af2012-12-14 12:54:18 +00001653 void visitFAdd(BinaryOperator &I) { handleShadowOr(I); }
1654 void visitFSub(BinaryOperator &I) { handleShadowOr(I); }
1655 void visitFMul(BinaryOperator &I) { handleShadowOr(I); }
1656 void visitAdd(BinaryOperator &I) { handleShadowOr(I); }
1657 void visitSub(BinaryOperator &I) { handleShadowOr(I); }
1658 void visitXor(BinaryOperator &I) { handleShadowOr(I); }
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001659
1660 void handleDiv(Instruction &I) {
1661 IRBuilder<> IRB(&I);
1662 // Strict on the second argument.
Evgeniy Stepanovbe83d8f2013-10-14 15:16:25 +00001663 insertShadowCheck(I.getOperand(1), &I);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001664 setShadow(&I, getShadow(&I, 0));
1665 setOrigin(&I, getOrigin(&I, 0));
1666 }
1667
1668 void visitUDiv(BinaryOperator &I) { handleDiv(I); }
1669 void visitSDiv(BinaryOperator &I) { handleDiv(I); }
1670 void visitFDiv(BinaryOperator &I) { handleDiv(I); }
1671 void visitURem(BinaryOperator &I) { handleDiv(I); }
1672 void visitSRem(BinaryOperator &I) { handleDiv(I); }
1673 void visitFRem(BinaryOperator &I) { handleDiv(I); }
1674
1675 /// \brief Instrument == and != comparisons.
1676 ///
1677 /// Sometimes the comparison result is known even if some of the bits of the
1678 /// arguments are not.
1679 void handleEqualityComparison(ICmpInst &I) {
1680 IRBuilder<> IRB(&I);
1681 Value *A = I.getOperand(0);
1682 Value *B = I.getOperand(1);
1683 Value *Sa = getShadow(A);
1684 Value *Sb = getShadow(B);
Evgeniy Stepanovd14e47b2013-01-15 16:44:52 +00001685
1686 // Get rid of pointers and vectors of pointers.
1687 // For ints (and vectors of ints), types of A and Sa match,
1688 // and this is a no-op.
1689 A = IRB.CreatePointerCast(A, Sa->getType());
1690 B = IRB.CreatePointerCast(B, Sb->getType());
1691
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001692 // A == B <==> (C = A^B) == 0
1693 // A != B <==> (C = A^B) != 0
1694 // Sc = Sa | Sb
1695 Value *C = IRB.CreateXor(A, B);
1696 Value *Sc = IRB.CreateOr(Sa, Sb);
1697 // Now dealing with i = (C == 0) comparison (or C != 0, does not matter now)
1698 // Result is defined if one of the following is true
1699 // * there is a defined 1 bit in C
1700 // * C is fully defined
1701 // Si = !(C & ~Sc) && Sc
1702 Value *Zero = Constant::getNullValue(Sc->getType());
1703 Value *MinusOne = Constant::getAllOnesValue(Sc->getType());
1704 Value *Si =
1705 IRB.CreateAnd(IRB.CreateICmpNE(Sc, Zero),
1706 IRB.CreateICmpEQ(
1707 IRB.CreateAnd(IRB.CreateXor(Sc, MinusOne), C), Zero));
1708 Si->setName("_msprop_icmp");
1709 setShadow(&I, Si);
1710 setOriginForNaryOp(I);
1711 }
1712
Evgeniy Stepanovfac84032013-01-25 15:31:10 +00001713 /// \brief Build the lowest possible value of V, taking into account V's
1714 /// uninitialized bits.
1715 Value *getLowestPossibleValue(IRBuilder<> &IRB, Value *A, Value *Sa,
1716 bool isSigned) {
1717 if (isSigned) {
1718 // Split shadow into sign bit and other bits.
1719 Value *SaOtherBits = IRB.CreateLShr(IRB.CreateShl(Sa, 1), 1);
1720 Value *SaSignBit = IRB.CreateXor(Sa, SaOtherBits);
1721 // Maximise the undefined shadow bit, minimize other undefined bits.
1722 return
1723 IRB.CreateOr(IRB.CreateAnd(A, IRB.CreateNot(SaOtherBits)), SaSignBit);
1724 } else {
1725 // Minimize undefined bits.
1726 return IRB.CreateAnd(A, IRB.CreateNot(Sa));
1727 }
1728 }
1729
1730 /// \brief Build the highest possible value of V, taking into account V's
1731 /// uninitialized bits.
1732 Value *getHighestPossibleValue(IRBuilder<> &IRB, Value *A, Value *Sa,
1733 bool isSigned) {
1734 if (isSigned) {
1735 // Split shadow into sign bit and other bits.
1736 Value *SaOtherBits = IRB.CreateLShr(IRB.CreateShl(Sa, 1), 1);
1737 Value *SaSignBit = IRB.CreateXor(Sa, SaOtherBits);
1738 // Minimise the undefined shadow bit, maximise other undefined bits.
1739 return
1740 IRB.CreateOr(IRB.CreateAnd(A, IRB.CreateNot(SaSignBit)), SaOtherBits);
1741 } else {
1742 // Maximize undefined bits.
1743 return IRB.CreateOr(A, Sa);
1744 }
1745 }
1746
1747 /// \brief Instrument relational comparisons.
1748 ///
1749 /// This function does exact shadow propagation for all relational
1750 /// comparisons of integers, pointers and vectors of those.
1751 /// FIXME: output seems suboptimal when one of the operands is a constant
1752 void handleRelationalComparisonExact(ICmpInst &I) {
1753 IRBuilder<> IRB(&I);
1754 Value *A = I.getOperand(0);
1755 Value *B = I.getOperand(1);
1756 Value *Sa = getShadow(A);
1757 Value *Sb = getShadow(B);
1758
1759 // Get rid of pointers and vectors of pointers.
1760 // For ints (and vectors of ints), types of A and Sa match,
1761 // and this is a no-op.
1762 A = IRB.CreatePointerCast(A, Sa->getType());
1763 B = IRB.CreatePointerCast(B, Sb->getType());
1764
Evgeniy Stepanov2cb0fa12013-01-25 15:35:29 +00001765 // Let [a0, a1] be the interval of possible values of A, taking into account
1766 // its undefined bits. Let [b0, b1] be the interval of possible values of B.
1767 // Then (A cmp B) is defined iff (a0 cmp b1) == (a1 cmp b0).
Evgeniy Stepanovfac84032013-01-25 15:31:10 +00001768 bool IsSigned = I.isSigned();
1769 Value *S1 = IRB.CreateICmp(I.getPredicate(),
1770 getLowestPossibleValue(IRB, A, Sa, IsSigned),
1771 getHighestPossibleValue(IRB, B, Sb, IsSigned));
1772 Value *S2 = IRB.CreateICmp(I.getPredicate(),
1773 getHighestPossibleValue(IRB, A, Sa, IsSigned),
1774 getLowestPossibleValue(IRB, B, Sb, IsSigned));
1775 Value *Si = IRB.CreateXor(S1, S2);
1776 setShadow(&I, Si);
1777 setOriginForNaryOp(I);
1778 }
1779
Evgeniy Stepanov857d9d22012-11-29 14:25:47 +00001780 /// \brief Instrument signed relational comparisons.
1781 ///
Evgeniy Stepanovd04d07e2015-08-25 22:19:11 +00001782 /// Handle sign bit tests: x<0, x>=0, x<=-1, x>-1 by propagating the highest
1783 /// bit of the shadow. Everything else is delegated to handleShadowOr().
Evgeniy Stepanov857d9d22012-11-29 14:25:47 +00001784 void handleSignedRelationalComparison(ICmpInst &I) {
Evgeniy Stepanovd04d07e2015-08-25 22:19:11 +00001785 Constant *constOp;
1786 Value *op = nullptr;
1787 CmpInst::Predicate pre;
1788 if ((constOp = dyn_cast<Constant>(I.getOperand(1)))) {
Evgeniy Stepanov857d9d22012-11-29 14:25:47 +00001789 op = I.getOperand(0);
Evgeniy Stepanovd04d07e2015-08-25 22:19:11 +00001790 pre = I.getPredicate();
1791 } else if ((constOp = dyn_cast<Constant>(I.getOperand(0)))) {
1792 op = I.getOperand(1);
1793 pre = I.getSwappedPredicate();
1794 } else {
1795 handleShadowOr(I);
1796 return;
Evgeniy Stepanov857d9d22012-11-29 14:25:47 +00001797 }
Evgeniy Stepanovd04d07e2015-08-25 22:19:11 +00001798
1799 if ((constOp->isNullValue() &&
1800 (pre == CmpInst::ICMP_SLT || pre == CmpInst::ICMP_SGE)) ||
1801 (constOp->isAllOnesValue() &&
1802 (pre == CmpInst::ICMP_SGT || pre == CmpInst::ICMP_SLE))) {
Evgeniy Stepanov857d9d22012-11-29 14:25:47 +00001803 IRBuilder<> IRB(&I);
Evgeniy Stepanovd04d07e2015-08-25 22:19:11 +00001804 Value *Shadow = IRB.CreateICmpSLT(getShadow(op), getCleanShadow(op),
1805 "_msprop_icmp_s");
Evgeniy Stepanov857d9d22012-11-29 14:25:47 +00001806 setShadow(&I, Shadow);
1807 setOrigin(&I, getOrigin(op));
1808 } else {
1809 handleShadowOr(I);
1810 }
1811 }
1812
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001813 void visitICmpInst(ICmpInst &I) {
Evgeniy Stepanov6f85ef32013-01-28 11:42:28 +00001814 if (!ClHandleICmp) {
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001815 handleShadowOr(I);
Evgeniy Stepanov6f85ef32013-01-28 11:42:28 +00001816 return;
1817 }
1818 if (I.isEquality()) {
1819 handleEqualityComparison(I);
1820 return;
1821 }
1822
1823 assert(I.isRelational());
1824 if (ClHandleICmpExact) {
1825 handleRelationalComparisonExact(I);
1826 return;
1827 }
1828 if (I.isSigned()) {
1829 handleSignedRelationalComparison(I);
1830 return;
1831 }
1832
1833 assert(I.isUnsigned());
1834 if ((isa<Constant>(I.getOperand(0)) || isa<Constant>(I.getOperand(1)))) {
1835 handleRelationalComparisonExact(I);
1836 return;
1837 }
1838
1839 handleShadowOr(I);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001840 }
1841
1842 void visitFCmpInst(FCmpInst &I) {
1843 handleShadowOr(I);
1844 }
1845
1846 void handleShift(BinaryOperator &I) {
1847 IRBuilder<> IRB(&I);
1848 // If any of the S2 bits are poisoned, the whole thing is poisoned.
1849 // Otherwise perform the same shift on S1.
1850 Value *S1 = getShadow(&I, 0);
1851 Value *S2 = getShadow(&I, 1);
1852 Value *S2Conv = IRB.CreateSExt(IRB.CreateICmpNE(S2, getCleanShadow(S2)),
1853 S2->getType());
1854 Value *V2 = I.getOperand(1);
1855 Value *Shift = IRB.CreateBinOp(I.getOpcode(), S1, V2);
1856 setShadow(&I, IRB.CreateOr(Shift, S2Conv));
1857 setOriginForNaryOp(I);
1858 }
1859
1860 void visitShl(BinaryOperator &I) { handleShift(I); }
1861 void visitAShr(BinaryOperator &I) { handleShift(I); }
1862 void visitLShr(BinaryOperator &I) { handleShift(I); }
1863
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001864 /// \brief Instrument llvm.memmove
1865 ///
1866 /// At this point we don't know if llvm.memmove will be inlined or not.
1867 /// If we don't instrument it and it gets inlined,
1868 /// our interceptor will not kick in and we will lose the memmove.
1869 /// If we instrument the call here, but it does not get inlined,
1870 /// we will memove the shadow twice: which is bad in case
1871 /// of overlapping regions. So, we simply lower the intrinsic to a call.
1872 ///
Evgeniy Stepanov62b5db92012-11-29 12:49:04 +00001873 /// Similar situation exists for memcpy and memset.
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001874 void visitMemMoveInst(MemMoveInst &I) {
1875 IRBuilder<> IRB(&I);
David Blaikieff6409d2015-05-18 22:13:54 +00001876 IRB.CreateCall(
1877 MS.MemmoveFn,
1878 {IRB.CreatePointerCast(I.getArgOperand(0), IRB.getInt8PtrTy()),
1879 IRB.CreatePointerCast(I.getArgOperand(1), IRB.getInt8PtrTy()),
1880 IRB.CreateIntCast(I.getArgOperand(2), MS.IntptrTy, false)});
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001881 I.eraseFromParent();
1882 }
1883
Evgeniy Stepanov62b5db92012-11-29 12:49:04 +00001884 // Similar to memmove: avoid copying shadow twice.
1885 // This is somewhat unfortunate as it may slowdown small constant memcpys.
1886 // FIXME: consider doing manual inline for small constant sizes and proper
1887 // alignment.
1888 void visitMemCpyInst(MemCpyInst &I) {
1889 IRBuilder<> IRB(&I);
David Blaikieff6409d2015-05-18 22:13:54 +00001890 IRB.CreateCall(
1891 MS.MemcpyFn,
1892 {IRB.CreatePointerCast(I.getArgOperand(0), IRB.getInt8PtrTy()),
1893 IRB.CreatePointerCast(I.getArgOperand(1), IRB.getInt8PtrTy()),
1894 IRB.CreateIntCast(I.getArgOperand(2), MS.IntptrTy, false)});
Evgeniy Stepanov62b5db92012-11-29 12:49:04 +00001895 I.eraseFromParent();
1896 }
1897
1898 // Same as memcpy.
1899 void visitMemSetInst(MemSetInst &I) {
1900 IRBuilder<> IRB(&I);
David Blaikieff6409d2015-05-18 22:13:54 +00001901 IRB.CreateCall(
1902 MS.MemsetFn,
1903 {IRB.CreatePointerCast(I.getArgOperand(0), IRB.getInt8PtrTy()),
1904 IRB.CreateIntCast(I.getArgOperand(1), IRB.getInt32Ty(), false),
1905 IRB.CreateIntCast(I.getArgOperand(2), MS.IntptrTy, false)});
Evgeniy Stepanov62b5db92012-11-29 12:49:04 +00001906 I.eraseFromParent();
1907 }
1908
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00001909 void visitVAStartInst(VAStartInst &I) {
1910 VAHelper->visitVAStartInst(I);
1911 }
1912
1913 void visitVACopyInst(VACopyInst &I) {
1914 VAHelper->visitVACopyInst(I);
1915 }
1916
Evgeniy Stepanovd7571cd2012-12-19 11:22:04 +00001917 /// \brief Handle vector store-like intrinsics.
1918 ///
1919 /// Instrument intrinsics that look like a simple SIMD store: writes memory,
1920 /// has 1 pointer argument and 1 vector argument, returns void.
1921 bool handleVectorStoreIntrinsic(IntrinsicInst &I) {
1922 IRBuilder<> IRB(&I);
1923 Value* Addr = I.getArgOperand(0);
1924 Value *Shadow = getShadow(&I, 1);
1925 Value *ShadowPtr = getShadowPtr(Addr, Shadow->getType(), IRB);
1926
1927 // We don't know the pointer alignment (could be unaligned SSE store!).
1928 // Have to assume to worst case.
1929 IRB.CreateAlignedStore(Shadow, ShadowPtr, 1);
1930
1931 if (ClCheckAccessAddress)
Evgeniy Stepanovbe83d8f2013-10-14 15:16:25 +00001932 insertShadowCheck(Addr, &I);
Evgeniy Stepanovd7571cd2012-12-19 11:22:04 +00001933
1934 // FIXME: use ClStoreCleanOrigin
1935 // FIXME: factor out common code from materializeStores
Evgeniy Stepanovabeae5c2012-12-19 13:55:51 +00001936 if (MS.TrackOrigins)
Evgeniy Stepanovd85ddee2014-12-05 14:34:03 +00001937 IRB.CreateStore(getOrigin(&I, 1), getOriginPtr(Addr, IRB, 1));
Evgeniy Stepanovd7571cd2012-12-19 11:22:04 +00001938 return true;
1939 }
1940
1941 /// \brief Handle vector load-like intrinsics.
1942 ///
1943 /// Instrument intrinsics that look like a simple SIMD load: reads memory,
1944 /// has 1 pointer argument, returns a vector.
1945 bool handleVectorLoadIntrinsic(IntrinsicInst &I) {
1946 IRBuilder<> IRB(&I);
1947 Value *Addr = I.getArgOperand(0);
1948
1949 Type *ShadowTy = getShadowTy(&I);
Evgeniy Stepanov174242c2014-07-03 11:56:30 +00001950 if (PropagateShadow) {
Evgeniy Stepanov00062b42013-02-28 11:25:14 +00001951 Value *ShadowPtr = getShadowPtr(Addr, ShadowTy, IRB);
1952 // We don't know the pointer alignment (could be unaligned SSE load!).
1953 // Have to assume to worst case.
1954 setShadow(&I, IRB.CreateAlignedLoad(ShadowPtr, 1, "_msld"));
1955 } else {
1956 setShadow(&I, getCleanShadow(&I));
1957 }
1958
Evgeniy Stepanovd7571cd2012-12-19 11:22:04 +00001959 if (ClCheckAccessAddress)
Evgeniy Stepanovbe83d8f2013-10-14 15:16:25 +00001960 insertShadowCheck(Addr, &I);
Evgeniy Stepanovd7571cd2012-12-19 11:22:04 +00001961
Evgeniy Stepanov00062b42013-02-28 11:25:14 +00001962 if (MS.TrackOrigins) {
Evgeniy Stepanov174242c2014-07-03 11:56:30 +00001963 if (PropagateShadow)
Evgeniy Stepanovd85ddee2014-12-05 14:34:03 +00001964 setOrigin(&I, IRB.CreateLoad(getOriginPtr(Addr, IRB, 1)));
Evgeniy Stepanov00062b42013-02-28 11:25:14 +00001965 else
1966 setOrigin(&I, getCleanOrigin());
1967 }
Evgeniy Stepanovd7571cd2012-12-19 11:22:04 +00001968 return true;
1969 }
1970
1971 /// \brief Handle (SIMD arithmetic)-like intrinsics.
1972 ///
1973 /// Instrument intrinsics with any number of arguments of the same type,
1974 /// equal to the return type. The type should be simple (no aggregates or
1975 /// pointers; vectors are fine).
1976 /// Caller guarantees that this intrinsic does not access memory.
1977 bool maybeHandleSimpleNomemIntrinsic(IntrinsicInst &I) {
1978 Type *RetTy = I.getType();
1979 if (!(RetTy->isIntOrIntVectorTy() ||
1980 RetTy->isFPOrFPVectorTy() ||
1981 RetTy->isX86_MMXTy()))
1982 return false;
1983
1984 unsigned NumArgOperands = I.getNumArgOperands();
1985
1986 for (unsigned i = 0; i < NumArgOperands; ++i) {
1987 Type *Ty = I.getArgOperand(i)->getType();
1988 if (Ty != RetTy)
1989 return false;
1990 }
1991
1992 IRBuilder<> IRB(&I);
1993 ShadowAndOriginCombiner SC(this, IRB);
1994 for (unsigned i = 0; i < NumArgOperands; ++i)
1995 SC.Add(I.getArgOperand(i));
1996 SC.Done(&I);
1997
1998 return true;
1999 }
2000
2001 /// \brief Heuristically instrument unknown intrinsics.
2002 ///
2003 /// The main purpose of this code is to do something reasonable with all
2004 /// random intrinsics we might encounter, most importantly - SIMD intrinsics.
2005 /// We recognize several classes of intrinsics by their argument types and
2006 /// ModRefBehaviour and apply special intrumentation when we are reasonably
2007 /// sure that we know what the intrinsic does.
2008 ///
2009 /// We special-case intrinsics where this approach fails. See llvm.bswap
2010 /// handling as an example of that.
2011 bool handleUnknownIntrinsic(IntrinsicInst &I) {
2012 unsigned NumArgOperands = I.getNumArgOperands();
2013 if (NumArgOperands == 0)
2014 return false;
2015
Evgeniy Stepanovd7571cd2012-12-19 11:22:04 +00002016 if (NumArgOperands == 2 &&
2017 I.getArgOperand(0)->getType()->isPointerTy() &&
2018 I.getArgOperand(1)->getType()->isVectorTy() &&
2019 I.getType()->isVoidTy() &&
Igor Laevsky68688df2015-10-20 21:33:30 +00002020 !I.onlyReadsMemory()) {
Evgeniy Stepanovd7571cd2012-12-19 11:22:04 +00002021 // This looks like a vector store.
2022 return handleVectorStoreIntrinsic(I);
2023 }
2024
2025 if (NumArgOperands == 1 &&
2026 I.getArgOperand(0)->getType()->isPointerTy() &&
2027 I.getType()->isVectorTy() &&
Igor Laevsky68688df2015-10-20 21:33:30 +00002028 I.onlyReadsMemory()) {
Evgeniy Stepanovd7571cd2012-12-19 11:22:04 +00002029 // This looks like a vector load.
2030 return handleVectorLoadIntrinsic(I);
2031 }
2032
Igor Laevsky68688df2015-10-20 21:33:30 +00002033 if (I.doesNotAccessMemory())
Evgeniy Stepanovd7571cd2012-12-19 11:22:04 +00002034 if (maybeHandleSimpleNomemIntrinsic(I))
2035 return true;
2036
2037 // FIXME: detect and handle SSE maskstore/maskload
2038 return false;
2039 }
2040
Evgeniy Stepanov8b51bab2012-12-05 14:39:55 +00002041 void handleBswap(IntrinsicInst &I) {
2042 IRBuilder<> IRB(&I);
2043 Value *Op = I.getArgOperand(0);
2044 Type *OpType = Op->getType();
2045 Function *BswapFunc = Intrinsic::getDeclaration(
Craig Toppere1d12942014-08-27 05:25:25 +00002046 F.getParent(), Intrinsic::bswap, makeArrayRef(&OpType, 1));
Evgeniy Stepanov8b51bab2012-12-05 14:39:55 +00002047 setShadow(&I, IRB.CreateCall(BswapFunc, getShadow(Op)));
2048 setOrigin(&I, getOrigin(Op));
2049 }
2050
Evgeniy Stepanovbe83d8f2013-10-14 15:16:25 +00002051 // \brief Instrument vector convert instrinsic.
2052 //
2053 // This function instruments intrinsics like cvtsi2ss:
2054 // %Out = int_xxx_cvtyyy(%ConvertOp)
2055 // or
2056 // %Out = int_xxx_cvtyyy(%CopyOp, %ConvertOp)
2057 // Intrinsic converts \p NumUsedElements elements of \p ConvertOp to the same
2058 // number \p Out elements, and (if has 2 arguments) copies the rest of the
2059 // elements from \p CopyOp.
2060 // In most cases conversion involves floating-point value which may trigger a
2061 // hardware exception when not fully initialized. For this reason we require
2062 // \p ConvertOp[0:NumUsedElements] to be fully initialized and trap otherwise.
2063 // We copy the shadow of \p CopyOp[NumUsedElements:] to \p
2064 // Out[NumUsedElements:]. This means that intrinsics without \p CopyOp always
2065 // return a fully initialized value.
2066 void handleVectorConvertIntrinsic(IntrinsicInst &I, int NumUsedElements) {
2067 IRBuilder<> IRB(&I);
2068 Value *CopyOp, *ConvertOp;
2069
2070 switch (I.getNumArgOperands()) {
Igor Bregerdfcc3d32015-06-17 07:23:57 +00002071 case 3:
2072 assert(isa<ConstantInt>(I.getArgOperand(2)) && "Invalid rounding mode");
Evgeniy Stepanovbe83d8f2013-10-14 15:16:25 +00002073 case 2:
2074 CopyOp = I.getArgOperand(0);
2075 ConvertOp = I.getArgOperand(1);
2076 break;
2077 case 1:
2078 ConvertOp = I.getArgOperand(0);
Craig Topperf40110f2014-04-25 05:29:35 +00002079 CopyOp = nullptr;
Evgeniy Stepanovbe83d8f2013-10-14 15:16:25 +00002080 break;
2081 default:
2082 llvm_unreachable("Cvt intrinsic with unsupported number of arguments.");
2083 }
2084
2085 // The first *NumUsedElements* elements of ConvertOp are converted to the
2086 // same number of output elements. The rest of the output is copied from
2087 // CopyOp, or (if not available) filled with zeroes.
2088 // Combine shadow for elements of ConvertOp that are used in this operation,
2089 // and insert a check.
2090 // FIXME: consider propagating shadow of ConvertOp, at least in the case of
2091 // int->any conversion.
2092 Value *ConvertShadow = getShadow(ConvertOp);
Craig Topperf40110f2014-04-25 05:29:35 +00002093 Value *AggShadow = nullptr;
Evgeniy Stepanovbe83d8f2013-10-14 15:16:25 +00002094 if (ConvertOp->getType()->isVectorTy()) {
2095 AggShadow = IRB.CreateExtractElement(
2096 ConvertShadow, ConstantInt::get(IRB.getInt32Ty(), 0));
2097 for (int i = 1; i < NumUsedElements; ++i) {
2098 Value *MoreShadow = IRB.CreateExtractElement(
2099 ConvertShadow, ConstantInt::get(IRB.getInt32Ty(), i));
2100 AggShadow = IRB.CreateOr(AggShadow, MoreShadow);
2101 }
2102 } else {
2103 AggShadow = ConvertShadow;
2104 }
2105 assert(AggShadow->getType()->isIntegerTy());
2106 insertShadowCheck(AggShadow, getOrigin(ConvertOp), &I);
2107
2108 // Build result shadow by zero-filling parts of CopyOp shadow that come from
2109 // ConvertOp.
2110 if (CopyOp) {
2111 assert(CopyOp->getType() == I.getType());
2112 assert(CopyOp->getType()->isVectorTy());
2113 Value *ResultShadow = getShadow(CopyOp);
2114 Type *EltTy = ResultShadow->getType()->getVectorElementType();
2115 for (int i = 0; i < NumUsedElements; ++i) {
2116 ResultShadow = IRB.CreateInsertElement(
2117 ResultShadow, ConstantInt::getNullValue(EltTy),
2118 ConstantInt::get(IRB.getInt32Ty(), i));
2119 }
2120 setShadow(&I, ResultShadow);
2121 setOrigin(&I, getOrigin(CopyOp));
2122 } else {
2123 setShadow(&I, getCleanShadow(&I));
Evgeniy Stepanov2e5a1f12014-12-03 14:15:53 +00002124 setOrigin(&I, getCleanOrigin());
Evgeniy Stepanovbe83d8f2013-10-14 15:16:25 +00002125 }
2126 }
2127
Evgeniy Stepanov77be5322014-03-03 13:47:42 +00002128 // Given a scalar or vector, extract lower 64 bits (or less), and return all
2129 // zeroes if it is zero, and all ones otherwise.
2130 Value *Lower64ShadowExtend(IRBuilder<> &IRB, Value *S, Type *T) {
2131 if (S->getType()->isVectorTy())
2132 S = CreateShadowCast(IRB, S, IRB.getInt64Ty(), /* Signed */ true);
2133 assert(S->getType()->getPrimitiveSizeInBits() <= 64);
2134 Value *S2 = IRB.CreateICmpNE(S, getCleanShadow(S));
2135 return CreateShadowCast(IRB, S2, T, /* Signed */ true);
2136 }
2137
Evgeniy Stepanov35f3e5e2016-04-29 01:19:52 +00002138 // Given a vector, extract its first element, and return all
2139 // zeroes if it is zero, and all ones otherwise.
2140 Value *LowerElementShadowExtend(IRBuilder<> &IRB, Value *S, Type *T) {
Ivan Krasin8dafa2d2016-04-29 02:09:57 +00002141 Value *S1 = IRB.CreateExtractElement(S, (uint64_t)0);
Evgeniy Stepanov35f3e5e2016-04-29 01:19:52 +00002142 Value *S2 = IRB.CreateICmpNE(S1, getCleanShadow(S1));
2143 return CreateShadowCast(IRB, S2, T, /* Signed */ true);
2144 }
2145
Evgeniy Stepanov77be5322014-03-03 13:47:42 +00002146 Value *VariableShadowExtend(IRBuilder<> &IRB, Value *S) {
2147 Type *T = S->getType();
2148 assert(T->isVectorTy());
2149 Value *S2 = IRB.CreateICmpNE(S, getCleanShadow(S));
2150 return IRB.CreateSExt(S2, T);
2151 }
2152
2153 // \brief Instrument vector shift instrinsic.
2154 //
2155 // This function instruments intrinsics like int_x86_avx2_psll_w.
2156 // Intrinsic shifts %In by %ShiftSize bits.
2157 // %ShiftSize may be a vector. In that case the lower 64 bits determine shift
2158 // size, and the rest is ignored. Behavior is defined even if shift size is
2159 // greater than register (or field) width.
2160 void handleVectorShiftIntrinsic(IntrinsicInst &I, bool Variable) {
2161 assert(I.getNumArgOperands() == 2);
2162 IRBuilder<> IRB(&I);
2163 // If any of the S2 bits are poisoned, the whole thing is poisoned.
2164 // Otherwise perform the same shift on S1.
2165 Value *S1 = getShadow(&I, 0);
2166 Value *S2 = getShadow(&I, 1);
2167 Value *S2Conv = Variable ? VariableShadowExtend(IRB, S2)
2168 : Lower64ShadowExtend(IRB, S2, getShadowTy(&I));
2169 Value *V1 = I.getOperand(0);
2170 Value *V2 = I.getOperand(1);
David Blaikieff6409d2015-05-18 22:13:54 +00002171 Value *Shift = IRB.CreateCall(I.getCalledValue(),
2172 {IRB.CreateBitCast(S1, V1->getType()), V2});
Evgeniy Stepanov77be5322014-03-03 13:47:42 +00002173 Shift = IRB.CreateBitCast(Shift, getShadowTy(&I));
2174 setShadow(&I, IRB.CreateOr(Shift, S2Conv));
2175 setOriginForNaryOp(I);
2176 }
2177
Evgeniy Stepanovf7c29a92014-06-09 08:40:16 +00002178 // \brief Get an X86_MMX-sized vector type.
2179 Type *getMMXVectorTy(unsigned EltSizeInBits) {
2180 const unsigned X86_MMXSizeInBits = 64;
2181 return VectorType::get(IntegerType::get(*MS.C, EltSizeInBits),
2182 X86_MMXSizeInBits / EltSizeInBits);
2183 }
2184
2185 // \brief Returns a signed counterpart for an (un)signed-saturate-and-pack
2186 // intrinsic.
2187 Intrinsic::ID getSignedPackIntrinsic(Intrinsic::ID id) {
2188 switch (id) {
2189 case llvm::Intrinsic::x86_sse2_packsswb_128:
2190 case llvm::Intrinsic::x86_sse2_packuswb_128:
2191 return llvm::Intrinsic::x86_sse2_packsswb_128;
2192
2193 case llvm::Intrinsic::x86_sse2_packssdw_128:
2194 case llvm::Intrinsic::x86_sse41_packusdw:
2195 return llvm::Intrinsic::x86_sse2_packssdw_128;
2196
2197 case llvm::Intrinsic::x86_avx2_packsswb:
2198 case llvm::Intrinsic::x86_avx2_packuswb:
2199 return llvm::Intrinsic::x86_avx2_packsswb;
2200
2201 case llvm::Intrinsic::x86_avx2_packssdw:
2202 case llvm::Intrinsic::x86_avx2_packusdw:
2203 return llvm::Intrinsic::x86_avx2_packssdw;
2204
2205 case llvm::Intrinsic::x86_mmx_packsswb:
2206 case llvm::Intrinsic::x86_mmx_packuswb:
2207 return llvm::Intrinsic::x86_mmx_packsswb;
2208
2209 case llvm::Intrinsic::x86_mmx_packssdw:
2210 return llvm::Intrinsic::x86_mmx_packssdw;
2211 default:
2212 llvm_unreachable("unexpected intrinsic id");
2213 }
2214 }
2215
Evgeniy Stepanov5d972932014-06-17 11:26:00 +00002216 // \brief Instrument vector pack instrinsic.
Evgeniy Stepanovd425a2b2014-06-02 12:31:44 +00002217 //
2218 // This function instruments intrinsics like x86_mmx_packsswb, that
Evgeniy Stepanov5d972932014-06-17 11:26:00 +00002219 // packs elements of 2 input vectors into half as many bits with saturation.
Evgeniy Stepanovf7c29a92014-06-09 08:40:16 +00002220 // Shadow is propagated with the signed variant of the same intrinsic applied
2221 // to sext(Sa != zeroinitializer), sext(Sb != zeroinitializer).
2222 // EltSizeInBits is used only for x86mmx arguments.
2223 void handleVectorPackIntrinsic(IntrinsicInst &I, unsigned EltSizeInBits = 0) {
Evgeniy Stepanovd425a2b2014-06-02 12:31:44 +00002224 assert(I.getNumArgOperands() == 2);
Evgeniy Stepanovf7c29a92014-06-09 08:40:16 +00002225 bool isX86_MMX = I.getOperand(0)->getType()->isX86_MMXTy();
Evgeniy Stepanovd425a2b2014-06-02 12:31:44 +00002226 IRBuilder<> IRB(&I);
2227 Value *S1 = getShadow(&I, 0);
2228 Value *S2 = getShadow(&I, 1);
Evgeniy Stepanovf7c29a92014-06-09 08:40:16 +00002229 assert(isX86_MMX || S1->getType()->isVectorTy());
2230
2231 // SExt and ICmpNE below must apply to individual elements of input vectors.
2232 // In case of x86mmx arguments, cast them to appropriate vector types and
2233 // back.
2234 Type *T = isX86_MMX ? getMMXVectorTy(EltSizeInBits) : S1->getType();
2235 if (isX86_MMX) {
2236 S1 = IRB.CreateBitCast(S1, T);
2237 S2 = IRB.CreateBitCast(S2, T);
2238 }
Evgeniy Stepanovd425a2b2014-06-02 12:31:44 +00002239 Value *S1_ext = IRB.CreateSExt(
2240 IRB.CreateICmpNE(S1, llvm::Constant::getNullValue(T)), T);
2241 Value *S2_ext = IRB.CreateSExt(
2242 IRB.CreateICmpNE(S2, llvm::Constant::getNullValue(T)), T);
Evgeniy Stepanovf7c29a92014-06-09 08:40:16 +00002243 if (isX86_MMX) {
2244 Type *X86_MMXTy = Type::getX86_MMXTy(*MS.C);
2245 S1_ext = IRB.CreateBitCast(S1_ext, X86_MMXTy);
2246 S2_ext = IRB.CreateBitCast(S2_ext, X86_MMXTy);
2247 }
2248
2249 Function *ShadowFn = Intrinsic::getDeclaration(
2250 F.getParent(), getSignedPackIntrinsic(I.getIntrinsicID()));
2251
David Blaikieff6409d2015-05-18 22:13:54 +00002252 Value *S =
2253 IRB.CreateCall(ShadowFn, {S1_ext, S2_ext}, "_msprop_vector_pack");
Evgeniy Stepanovf7c29a92014-06-09 08:40:16 +00002254 if (isX86_MMX) S = IRB.CreateBitCast(S, getShadowTy(&I));
Evgeniy Stepanovd425a2b2014-06-02 12:31:44 +00002255 setShadow(&I, S);
2256 setOriginForNaryOp(I);
2257 }
2258
Evgeniy Stepanov4ea16472014-06-18 12:02:29 +00002259 // \brief Instrument sum-of-absolute-differencies intrinsic.
2260 void handleVectorSadIntrinsic(IntrinsicInst &I) {
2261 const unsigned SignificantBitsPerResultElement = 16;
2262 bool isX86_MMX = I.getOperand(0)->getType()->isX86_MMXTy();
2263 Type *ResTy = isX86_MMX ? IntegerType::get(*MS.C, 64) : I.getType();
2264 unsigned ZeroBitsPerResultElement =
2265 ResTy->getScalarSizeInBits() - SignificantBitsPerResultElement;
2266
2267 IRBuilder<> IRB(&I);
2268 Value *S = IRB.CreateOr(getShadow(&I, 0), getShadow(&I, 1));
2269 S = IRB.CreateBitCast(S, ResTy);
2270 S = IRB.CreateSExt(IRB.CreateICmpNE(S, Constant::getNullValue(ResTy)),
2271 ResTy);
2272 S = IRB.CreateLShr(S, ZeroBitsPerResultElement);
2273 S = IRB.CreateBitCast(S, getShadowTy(&I));
2274 setShadow(&I, S);
2275 setOriginForNaryOp(I);
2276 }
2277
2278 // \brief Instrument multiply-add intrinsic.
2279 void handleVectorPmaddIntrinsic(IntrinsicInst &I,
2280 unsigned EltSizeInBits = 0) {
2281 bool isX86_MMX = I.getOperand(0)->getType()->isX86_MMXTy();
2282 Type *ResTy = isX86_MMX ? getMMXVectorTy(EltSizeInBits * 2) : I.getType();
2283 IRBuilder<> IRB(&I);
2284 Value *S = IRB.CreateOr(getShadow(&I, 0), getShadow(&I, 1));
2285 S = IRB.CreateBitCast(S, ResTy);
2286 S = IRB.CreateSExt(IRB.CreateICmpNE(S, Constant::getNullValue(ResTy)),
2287 ResTy);
2288 S = IRB.CreateBitCast(S, getShadowTy(&I));
2289 setShadow(&I, S);
2290 setOriginForNaryOp(I);
2291 }
2292
Evgeniy Stepanov35f3e5e2016-04-29 01:19:52 +00002293 // \brief Instrument compare-packed intrinsic.
2294 // Basically, an or followed by sext(icmp ne 0) to end up with all-zeros or
2295 // all-ones shadow.
2296 void handleVectorComparePackedIntrinsic(IntrinsicInst &I) {
2297 IRBuilder<> IRB(&I);
2298 Type *ResTy = getShadowTy(&I);
2299 Value *S0 = IRB.CreateOr(getShadow(&I, 0), getShadow(&I, 1));
2300 Value *S = IRB.CreateSExt(
2301 IRB.CreateICmpNE(S0, Constant::getNullValue(ResTy)), ResTy);
2302 setShadow(&I, S);
2303 setOriginForNaryOp(I);
2304 }
2305
2306 // \brief Instrument compare-scalar intrinsic.
2307 // This handles both cmp* intrinsics which return the result in the first
2308 // element of a vector, and comi* which return the result as i32.
2309 void handleVectorCompareScalarIntrinsic(IntrinsicInst &I) {
2310 IRBuilder<> IRB(&I);
2311 Value *S0 = IRB.CreateOr(getShadow(&I, 0), getShadow(&I, 1));
2312 Value *S = LowerElementShadowExtend(IRB, S0, getShadowTy(&I));
2313 setShadow(&I, S);
2314 setOriginForNaryOp(I);
2315 }
2316
Evgeniy Stepanov8b51bab2012-12-05 14:39:55 +00002317 void visitIntrinsicInst(IntrinsicInst &I) {
2318 switch (I.getIntrinsicID()) {
2319 case llvm::Intrinsic::bswap:
Evgeniy Stepanov9b72e992012-12-14 13:48:31 +00002320 handleBswap(I);
2321 break;
Asaf Badouhad5c3fc2016-02-07 14:59:13 +00002322 case llvm::Intrinsic::x86_avx512_vcvtsd2usi64:
2323 case llvm::Intrinsic::x86_avx512_vcvtsd2usi32:
2324 case llvm::Intrinsic::x86_avx512_vcvtss2usi64:
2325 case llvm::Intrinsic::x86_avx512_vcvtss2usi32:
Evgeniy Stepanovbe83d8f2013-10-14 15:16:25 +00002326 case llvm::Intrinsic::x86_avx512_cvttss2usi64:
2327 case llvm::Intrinsic::x86_avx512_cvttss2usi:
2328 case llvm::Intrinsic::x86_avx512_cvttsd2usi64:
2329 case llvm::Intrinsic::x86_avx512_cvttsd2usi:
2330 case llvm::Intrinsic::x86_avx512_cvtusi2sd:
2331 case llvm::Intrinsic::x86_avx512_cvtusi2ss:
2332 case llvm::Intrinsic::x86_avx512_cvtusi642sd:
2333 case llvm::Intrinsic::x86_avx512_cvtusi642ss:
2334 case llvm::Intrinsic::x86_sse2_cvtsd2si64:
2335 case llvm::Intrinsic::x86_sse2_cvtsd2si:
2336 case llvm::Intrinsic::x86_sse2_cvtsd2ss:
2337 case llvm::Intrinsic::x86_sse2_cvtsi2sd:
2338 case llvm::Intrinsic::x86_sse2_cvtsi642sd:
2339 case llvm::Intrinsic::x86_sse2_cvtss2sd:
2340 case llvm::Intrinsic::x86_sse2_cvttsd2si64:
2341 case llvm::Intrinsic::x86_sse2_cvttsd2si:
2342 case llvm::Intrinsic::x86_sse_cvtsi2ss:
2343 case llvm::Intrinsic::x86_sse_cvtsi642ss:
2344 case llvm::Intrinsic::x86_sse_cvtss2si64:
2345 case llvm::Intrinsic::x86_sse_cvtss2si:
2346 case llvm::Intrinsic::x86_sse_cvttss2si64:
2347 case llvm::Intrinsic::x86_sse_cvttss2si:
2348 handleVectorConvertIntrinsic(I, 1);
2349 break;
2350 case llvm::Intrinsic::x86_sse2_cvtdq2pd:
2351 case llvm::Intrinsic::x86_sse2_cvtps2pd:
2352 case llvm::Intrinsic::x86_sse_cvtps2pi:
2353 case llvm::Intrinsic::x86_sse_cvttps2pi:
2354 handleVectorConvertIntrinsic(I, 2);
2355 break;
Evgeniy Stepanov77be5322014-03-03 13:47:42 +00002356 case llvm::Intrinsic::x86_avx2_psll_w:
2357 case llvm::Intrinsic::x86_avx2_psll_d:
2358 case llvm::Intrinsic::x86_avx2_psll_q:
2359 case llvm::Intrinsic::x86_avx2_pslli_w:
2360 case llvm::Intrinsic::x86_avx2_pslli_d:
2361 case llvm::Intrinsic::x86_avx2_pslli_q:
Evgeniy Stepanov77be5322014-03-03 13:47:42 +00002362 case llvm::Intrinsic::x86_avx2_psrl_w:
2363 case llvm::Intrinsic::x86_avx2_psrl_d:
2364 case llvm::Intrinsic::x86_avx2_psrl_q:
2365 case llvm::Intrinsic::x86_avx2_psra_w:
2366 case llvm::Intrinsic::x86_avx2_psra_d:
2367 case llvm::Intrinsic::x86_avx2_psrli_w:
2368 case llvm::Intrinsic::x86_avx2_psrli_d:
2369 case llvm::Intrinsic::x86_avx2_psrli_q:
2370 case llvm::Intrinsic::x86_avx2_psrai_w:
2371 case llvm::Intrinsic::x86_avx2_psrai_d:
Evgeniy Stepanov77be5322014-03-03 13:47:42 +00002372 case llvm::Intrinsic::x86_sse2_psll_w:
2373 case llvm::Intrinsic::x86_sse2_psll_d:
2374 case llvm::Intrinsic::x86_sse2_psll_q:
2375 case llvm::Intrinsic::x86_sse2_pslli_w:
2376 case llvm::Intrinsic::x86_sse2_pslli_d:
2377 case llvm::Intrinsic::x86_sse2_pslli_q:
Evgeniy Stepanov77be5322014-03-03 13:47:42 +00002378 case llvm::Intrinsic::x86_sse2_psrl_w:
2379 case llvm::Intrinsic::x86_sse2_psrl_d:
2380 case llvm::Intrinsic::x86_sse2_psrl_q:
2381 case llvm::Intrinsic::x86_sse2_psra_w:
2382 case llvm::Intrinsic::x86_sse2_psra_d:
2383 case llvm::Intrinsic::x86_sse2_psrli_w:
2384 case llvm::Intrinsic::x86_sse2_psrli_d:
2385 case llvm::Intrinsic::x86_sse2_psrli_q:
2386 case llvm::Intrinsic::x86_sse2_psrai_w:
2387 case llvm::Intrinsic::x86_sse2_psrai_d:
Evgeniy Stepanov77be5322014-03-03 13:47:42 +00002388 case llvm::Intrinsic::x86_mmx_psll_w:
2389 case llvm::Intrinsic::x86_mmx_psll_d:
2390 case llvm::Intrinsic::x86_mmx_psll_q:
2391 case llvm::Intrinsic::x86_mmx_pslli_w:
2392 case llvm::Intrinsic::x86_mmx_pslli_d:
2393 case llvm::Intrinsic::x86_mmx_pslli_q:
2394 case llvm::Intrinsic::x86_mmx_psrl_w:
2395 case llvm::Intrinsic::x86_mmx_psrl_d:
2396 case llvm::Intrinsic::x86_mmx_psrl_q:
2397 case llvm::Intrinsic::x86_mmx_psra_w:
2398 case llvm::Intrinsic::x86_mmx_psra_d:
2399 case llvm::Intrinsic::x86_mmx_psrli_w:
2400 case llvm::Intrinsic::x86_mmx_psrli_d:
2401 case llvm::Intrinsic::x86_mmx_psrli_q:
2402 case llvm::Intrinsic::x86_mmx_psrai_w:
2403 case llvm::Intrinsic::x86_mmx_psrai_d:
2404 handleVectorShiftIntrinsic(I, /* Variable */ false);
2405 break;
2406 case llvm::Intrinsic::x86_avx2_psllv_d:
2407 case llvm::Intrinsic::x86_avx2_psllv_d_256:
2408 case llvm::Intrinsic::x86_avx2_psllv_q:
2409 case llvm::Intrinsic::x86_avx2_psllv_q_256:
2410 case llvm::Intrinsic::x86_avx2_psrlv_d:
2411 case llvm::Intrinsic::x86_avx2_psrlv_d_256:
2412 case llvm::Intrinsic::x86_avx2_psrlv_q:
2413 case llvm::Intrinsic::x86_avx2_psrlv_q_256:
2414 case llvm::Intrinsic::x86_avx2_psrav_d:
2415 case llvm::Intrinsic::x86_avx2_psrav_d_256:
2416 handleVectorShiftIntrinsic(I, /* Variable */ true);
2417 break;
2418
Evgeniy Stepanovd425a2b2014-06-02 12:31:44 +00002419 case llvm::Intrinsic::x86_sse2_packsswb_128:
2420 case llvm::Intrinsic::x86_sse2_packssdw_128:
2421 case llvm::Intrinsic::x86_sse2_packuswb_128:
2422 case llvm::Intrinsic::x86_sse41_packusdw:
2423 case llvm::Intrinsic::x86_avx2_packsswb:
2424 case llvm::Intrinsic::x86_avx2_packssdw:
2425 case llvm::Intrinsic::x86_avx2_packuswb:
2426 case llvm::Intrinsic::x86_avx2_packusdw:
Evgeniy Stepanovd425a2b2014-06-02 12:31:44 +00002427 handleVectorPackIntrinsic(I);
2428 break;
2429
Evgeniy Stepanovf7c29a92014-06-09 08:40:16 +00002430 case llvm::Intrinsic::x86_mmx_packsswb:
2431 case llvm::Intrinsic::x86_mmx_packuswb:
2432 handleVectorPackIntrinsic(I, 16);
2433 break;
2434
2435 case llvm::Intrinsic::x86_mmx_packssdw:
2436 handleVectorPackIntrinsic(I, 32);
2437 break;
2438
Evgeniy Stepanov4ea16472014-06-18 12:02:29 +00002439 case llvm::Intrinsic::x86_mmx_psad_bw:
2440 case llvm::Intrinsic::x86_sse2_psad_bw:
2441 case llvm::Intrinsic::x86_avx2_psad_bw:
2442 handleVectorSadIntrinsic(I);
2443 break;
2444
2445 case llvm::Intrinsic::x86_sse2_pmadd_wd:
2446 case llvm::Intrinsic::x86_avx2_pmadd_wd:
2447 case llvm::Intrinsic::x86_ssse3_pmadd_ub_sw_128:
2448 case llvm::Intrinsic::x86_avx2_pmadd_ub_sw:
2449 handleVectorPmaddIntrinsic(I);
2450 break;
2451
2452 case llvm::Intrinsic::x86_ssse3_pmadd_ub_sw:
2453 handleVectorPmaddIntrinsic(I, 8);
2454 break;
2455
2456 case llvm::Intrinsic::x86_mmx_pmadd_wd:
2457 handleVectorPmaddIntrinsic(I, 16);
2458 break;
2459
Evgeniy Stepanov35f3e5e2016-04-29 01:19:52 +00002460 case llvm::Intrinsic::x86_sse_cmp_ss:
2461 case llvm::Intrinsic::x86_sse2_cmp_sd:
2462 case llvm::Intrinsic::x86_sse_comieq_ss:
2463 case llvm::Intrinsic::x86_sse_comilt_ss:
2464 case llvm::Intrinsic::x86_sse_comile_ss:
2465 case llvm::Intrinsic::x86_sse_comigt_ss:
2466 case llvm::Intrinsic::x86_sse_comige_ss:
2467 case llvm::Intrinsic::x86_sse_comineq_ss:
2468 case llvm::Intrinsic::x86_sse_ucomieq_ss:
2469 case llvm::Intrinsic::x86_sse_ucomilt_ss:
2470 case llvm::Intrinsic::x86_sse_ucomile_ss:
2471 case llvm::Intrinsic::x86_sse_ucomigt_ss:
2472 case llvm::Intrinsic::x86_sse_ucomige_ss:
2473 case llvm::Intrinsic::x86_sse_ucomineq_ss:
2474 case llvm::Intrinsic::x86_sse2_comieq_sd:
2475 case llvm::Intrinsic::x86_sse2_comilt_sd:
2476 case llvm::Intrinsic::x86_sse2_comile_sd:
2477 case llvm::Intrinsic::x86_sse2_comigt_sd:
2478 case llvm::Intrinsic::x86_sse2_comige_sd:
2479 case llvm::Intrinsic::x86_sse2_comineq_sd:
2480 case llvm::Intrinsic::x86_sse2_ucomieq_sd:
2481 case llvm::Intrinsic::x86_sse2_ucomilt_sd:
2482 case llvm::Intrinsic::x86_sse2_ucomile_sd:
2483 case llvm::Intrinsic::x86_sse2_ucomigt_sd:
2484 case llvm::Intrinsic::x86_sse2_ucomige_sd:
2485 case llvm::Intrinsic::x86_sse2_ucomineq_sd:
2486 handleVectorCompareScalarIntrinsic(I);
2487 break;
2488
2489 case llvm::Intrinsic::x86_sse_cmp_ps:
2490 case llvm::Intrinsic::x86_sse2_cmp_pd:
2491 // FIXME: For x86_avx_cmp_pd_256 and x86_avx_cmp_ps_256 this function
2492 // generates reasonably looking IR that fails in the backend with "Do not
2493 // know how to split the result of this operator!".
2494 handleVectorComparePackedIntrinsic(I);
2495 break;
2496
Evgeniy Stepanov8b51bab2012-12-05 14:39:55 +00002497 default:
Evgeniy Stepanovd7571cd2012-12-19 11:22:04 +00002498 if (!handleUnknownIntrinsic(I))
2499 visitInstruction(I);
Evgeniy Stepanov88b8dce2012-12-17 16:30:05 +00002500 break;
Evgeniy Stepanov8b51bab2012-12-05 14:39:55 +00002501 }
2502 }
2503
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002504 void visitCallSite(CallSite CS) {
2505 Instruction &I = *CS.getInstruction();
2506 assert((CS.isCall() || CS.isInvoke()) && "Unknown type of CallSite");
2507 if (CS.isCall()) {
Evgeniy Stepanov7ad7e832012-11-29 14:32:03 +00002508 CallInst *Call = cast<CallInst>(&I);
2509
2510 // For inline asm, do the usual thing: check argument shadow and mark all
2511 // outputs as clean. Note that any side effects of the inline asm that are
2512 // not immediately visible in its constraints are not handled.
2513 if (Call->isInlineAsm()) {
2514 visitInstruction(I);
2515 return;
2516 }
2517
Evgeniy Stepanov8b51bab2012-12-05 14:39:55 +00002518 assert(!isa<IntrinsicInst>(&I) && "intrinsics are handled elsewhere");
Evgeniy Stepanov383b61e2012-12-07 09:08:32 +00002519
2520 // We are going to insert code that relies on the fact that the callee
2521 // will become a non-readonly function after it is instrumented by us. To
2522 // prevent this code from being optimized out, mark that function
2523 // non-readonly in advance.
2524 if (Function *Func = Call->getCalledFunction()) {
2525 // Clear out readonly/readnone attributes.
2526 AttrBuilder B;
Bill Wendling3d7b0b82012-12-19 07:18:57 +00002527 B.addAttribute(Attribute::ReadOnly)
2528 .addAttribute(Attribute::ReadNone);
Bill Wendling430fa9b2013-01-23 00:45:55 +00002529 Func->removeAttributes(AttributeSet::FunctionIndex,
2530 AttributeSet::get(Func->getContext(),
2531 AttributeSet::FunctionIndex,
2532 B));
Evgeniy Stepanov383b61e2012-12-07 09:08:32 +00002533 }
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002534 }
2535 IRBuilder<> IRB(&I);
Evgeniy Stepanov37b86452013-09-19 15:22:35 +00002536
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002537 unsigned ArgOffset = 0;
2538 DEBUG(dbgs() << " CallSite: " << I << "\n");
2539 for (CallSite::arg_iterator ArgIt = CS.arg_begin(), End = CS.arg_end();
2540 ArgIt != End; ++ArgIt) {
2541 Value *A = *ArgIt;
2542 unsigned i = ArgIt - CS.arg_begin();
2543 if (!A->getType()->isSized()) {
2544 DEBUG(dbgs() << "Arg " << i << " is not sized: " << I << "\n");
2545 continue;
2546 }
2547 unsigned Size = 0;
Craig Topperf40110f2014-04-25 05:29:35 +00002548 Value *Store = nullptr;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002549 // Compute the Shadow for arg even if it is ByVal, because
2550 // in that case getShadow() will copy the actual arg shadow to
2551 // __msan_param_tls.
2552 Value *ArgShadow = getShadow(A);
2553 Value *ArgShadowBase = getShadowPtrForArgument(A, IRB, ArgOffset);
2554 DEBUG(dbgs() << " Arg#" << i << ": " << *A <<
2555 " Shadow: " << *ArgShadow << "\n");
Evgeniy Stepanovc8227aa2014-07-17 09:10:37 +00002556 bool ArgIsInitialized = false;
Mehdi Aminia28d91d2015-03-10 02:37:25 +00002557 const DataLayout &DL = F.getParent()->getDataLayout();
Bill Wendling3d7b0b82012-12-19 07:18:57 +00002558 if (CS.paramHasAttr(i + 1, Attribute::ByVal)) {
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002559 assert(A->getType()->isPointerTy() &&
2560 "ByVal argument is not a pointer!");
Mehdi Aminia28d91d2015-03-10 02:37:25 +00002561 Size = DL.getTypeAllocSize(A->getType()->getPointerElementType());
Evgeniy Stepanov35eb2652014-10-22 00:12:40 +00002562 if (ArgOffset + Size > kParamTLSSize) break;
Evgeniy Stepanove08633e2014-10-17 23:29:44 +00002563 unsigned ParamAlignment = CS.getParamAlignment(i + 1);
2564 unsigned Alignment = std::min(ParamAlignment, kShadowTLSAlignment);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002565 Store = IRB.CreateMemCpy(ArgShadowBase,
2566 getShadowPtr(A, Type::getInt8Ty(*MS.C), IRB),
Pete Cooper67cf9a72015-11-19 05:56:52 +00002567 Size, Alignment);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002568 } else {
Mehdi Aminia28d91d2015-03-10 02:37:25 +00002569 Size = DL.getTypeAllocSize(A->getType());
Evgeniy Stepanov35eb2652014-10-22 00:12:40 +00002570 if (ArgOffset + Size > kParamTLSSize) break;
Evgeniy Stepanovd2bd3192012-12-11 12:34:09 +00002571 Store = IRB.CreateAlignedStore(ArgShadow, ArgShadowBase,
2572 kShadowTLSAlignment);
Evgeniy Stepanovc8227aa2014-07-17 09:10:37 +00002573 Constant *Cst = dyn_cast<Constant>(ArgShadow);
2574 if (Cst && Cst->isNullValue()) ArgIsInitialized = true;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002575 }
Evgeniy Stepanovc8227aa2014-07-17 09:10:37 +00002576 if (MS.TrackOrigins && !ArgIsInitialized)
Evgeniy Stepanov49175b22012-12-14 13:43:11 +00002577 IRB.CreateStore(getOrigin(A),
2578 getOriginPtrForArgument(A, IRB, ArgOffset));
Edwin Vane82f80d42013-01-29 17:42:24 +00002579 (void)Store;
Craig Toppere73658d2014-04-28 04:05:08 +00002580 assert(Size != 0 && Store != nullptr);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002581 DEBUG(dbgs() << " Param:" << *Store << "\n");
Rui Ueyamada00f2f2016-01-14 21:06:47 +00002582 ArgOffset += alignTo(Size, 8);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002583 }
2584 DEBUG(dbgs() << " done with call args\n");
2585
2586 FunctionType *FT =
Evgeniy Stepanov37b86452013-09-19 15:22:35 +00002587 cast<FunctionType>(CS.getCalledValue()->getType()->getContainedType(0));
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002588 if (FT->isVarArg()) {
2589 VAHelper->visitCallSite(CS, IRB);
2590 }
2591
2592 // Now, get the shadow for the RetVal.
2593 if (!I.getType()->isSized()) return;
Evgeniy Stepanov24ac55d2015-08-14 22:03:50 +00002594 // Don't emit the epilogue for musttail call returns.
2595 if (CS.isCall() && cast<CallInst>(&I)->isMustTailCall()) return;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002596 IRBuilder<> IRBBefore(&I);
Alp Tokercb402912014-01-24 17:20:08 +00002597 // Until we have full dynamic coverage, make sure the retval shadow is 0.
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002598 Value *Base = getShadowPtrForRetval(&I, IRBBefore);
Evgeniy Stepanovd2bd3192012-12-11 12:34:09 +00002599 IRBBefore.CreateAlignedStore(getCleanShadow(&I), Base, kShadowTLSAlignment);
Duncan P. N. Exon Smithe82c2862015-10-13 17:39:10 +00002600 BasicBlock::iterator NextInsn;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002601 if (CS.isCall()) {
Duncan P. N. Exon Smithe82c2862015-10-13 17:39:10 +00002602 NextInsn = ++I.getIterator();
2603 assert(NextInsn != I.getParent()->end());
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002604 } else {
2605 BasicBlock *NormalDest = cast<InvokeInst>(&I)->getNormalDest();
2606 if (!NormalDest->getSinglePredecessor()) {
2607 // FIXME: this case is tricky, so we are just conservative here.
2608 // Perhaps we need to split the edge between this BB and NormalDest,
2609 // but a naive attempt to use SplitEdge leads to a crash.
2610 setShadow(&I, getCleanShadow(&I));
2611 setOrigin(&I, getCleanOrigin());
2612 return;
2613 }
2614 NextInsn = NormalDest->getFirstInsertionPt();
Duncan P. N. Exon Smithe82c2862015-10-13 17:39:10 +00002615 assert(NextInsn != NormalDest->end() &&
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002616 "Could not find insertion point for retval shadow load");
2617 }
Duncan P. N. Exon Smithe82c2862015-10-13 17:39:10 +00002618 IRBuilder<> IRBAfter(&*NextInsn);
Evgeniy Stepanovd2bd3192012-12-11 12:34:09 +00002619 Value *RetvalShadow =
2620 IRBAfter.CreateAlignedLoad(getShadowPtrForRetval(&I, IRBAfter),
2621 kShadowTLSAlignment, "_msret");
2622 setShadow(&I, RetvalShadow);
Evgeniy Stepanovabeae5c2012-12-19 13:55:51 +00002623 if (MS.TrackOrigins)
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002624 setOrigin(&I, IRBAfter.CreateLoad(getOriginPtrForRetval(IRBAfter)));
2625 }
2626
Evgeniy Stepanov24ac55d2015-08-14 22:03:50 +00002627 bool isAMustTailRetVal(Value *RetVal) {
2628 if (auto *I = dyn_cast<BitCastInst>(RetVal)) {
2629 RetVal = I->getOperand(0);
2630 }
2631 if (auto *I = dyn_cast<CallInst>(RetVal)) {
2632 return I->isMustTailCall();
2633 }
2634 return false;
2635 }
2636
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002637 void visitReturnInst(ReturnInst &I) {
2638 IRBuilder<> IRB(&I);
Evgeniy Stepanov604293f2013-09-16 13:24:32 +00002639 Value *RetVal = I.getReturnValue();
2640 if (!RetVal) return;
Evgeniy Stepanov24ac55d2015-08-14 22:03:50 +00002641 // Don't emit the epilogue for musttail call returns.
2642 if (isAMustTailRetVal(RetVal)) return;
Evgeniy Stepanov604293f2013-09-16 13:24:32 +00002643 Value *ShadowPtr = getShadowPtrForRetval(RetVal, IRB);
2644 if (CheckReturnValue) {
Evgeniy Stepanovbe83d8f2013-10-14 15:16:25 +00002645 insertShadowCheck(RetVal, &I);
Evgeniy Stepanov604293f2013-09-16 13:24:32 +00002646 Value *Shadow = getCleanShadow(RetVal);
Evgeniy Stepanovd2bd3192012-12-11 12:34:09 +00002647 IRB.CreateAlignedStore(Shadow, ShadowPtr, kShadowTLSAlignment);
Evgeniy Stepanov604293f2013-09-16 13:24:32 +00002648 } else {
2649 Value *Shadow = getShadow(RetVal);
2650 IRB.CreateAlignedStore(Shadow, ShadowPtr, kShadowTLSAlignment);
2651 // FIXME: make it conditional if ClStoreCleanOrigin==0
Evgeniy Stepanovabeae5c2012-12-19 13:55:51 +00002652 if (MS.TrackOrigins)
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002653 IRB.CreateStore(getOrigin(RetVal), getOriginPtrForRetval(IRB));
2654 }
2655 }
2656
2657 void visitPHINode(PHINode &I) {
2658 IRBuilder<> IRB(&I);
Evgeniy Stepanovd948a5f2014-07-07 13:28:31 +00002659 if (!PropagateShadow) {
2660 setShadow(&I, getCleanShadow(&I));
Evgeniy Stepanov2e5a1f12014-12-03 14:15:53 +00002661 setOrigin(&I, getCleanOrigin());
Evgeniy Stepanovd948a5f2014-07-07 13:28:31 +00002662 return;
2663 }
2664
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002665 ShadowPHINodes.push_back(&I);
2666 setShadow(&I, IRB.CreatePHI(getShadowTy(&I), I.getNumIncomingValues(),
2667 "_msphi_s"));
Evgeniy Stepanovabeae5c2012-12-19 13:55:51 +00002668 if (MS.TrackOrigins)
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002669 setOrigin(&I, IRB.CreatePHI(MS.OriginTy, I.getNumIncomingValues(),
2670 "_msphi_o"));
2671 }
2672
2673 void visitAllocaInst(AllocaInst &I) {
2674 setShadow(&I, getCleanShadow(&I));
Evgeniy Stepanov2e5a1f12014-12-03 14:15:53 +00002675 setOrigin(&I, getCleanOrigin());
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002676 IRBuilder<> IRB(I.getNextNode());
Mehdi Aminia28d91d2015-03-10 02:37:25 +00002677 const DataLayout &DL = F.getParent()->getDataLayout();
2678 uint64_t Size = DL.getTypeAllocSize(I.getAllocatedType());
Evgeniy Stepanovdc6d7eb2013-07-03 14:39:14 +00002679 if (PoisonStack && ClPoisonStackWithCall) {
David Blaikieff6409d2015-05-18 22:13:54 +00002680 IRB.CreateCall(MS.MsanPoisonStackFn,
2681 {IRB.CreatePointerCast(&I, IRB.getInt8PtrTy()),
2682 ConstantInt::get(MS.IntptrTy, Size)});
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002683 } else {
2684 Value *ShadowBase = getShadowPtr(&I, Type::getInt8PtrTy(*MS.C), IRB);
Evgeniy Stepanovdc6d7eb2013-07-03 14:39:14 +00002685 Value *PoisonValue = IRB.getInt8(PoisonStack ? ClPoisonStackPattern : 0);
2686 IRB.CreateMemSet(ShadowBase, PoisonValue, Size, I.getAlignment());
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002687 }
2688
Evgeniy Stepanovdc6d7eb2013-07-03 14:39:14 +00002689 if (PoisonStack && MS.TrackOrigins) {
Alp Tokere69170a2014-06-26 22:52:05 +00002690 SmallString<2048> StackDescriptionStorage;
2691 raw_svector_ostream StackDescription(StackDescriptionStorage);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002692 // We create a string with a description of the stack allocation and
2693 // pass it into __msan_set_alloca_origin.
2694 // It will be printed by the run-time if stack-originated UMR is found.
2695 // The first 4 bytes of the string are set to '----' and will be replaced
2696 // by __msan_va_arg_overflow_size_tls at the first call.
2697 StackDescription << "----" << I.getName() << "@" << F.getName();
2698 Value *Descr =
2699 createPrivateNonConstGlobalForString(*F.getParent(),
2700 StackDescription.str());
Evgeniy Stepanov0435ecd2013-09-13 12:54:49 +00002701
David Blaikieff6409d2015-05-18 22:13:54 +00002702 IRB.CreateCall(MS.MsanSetAllocaOrigin4Fn,
2703 {IRB.CreatePointerCast(&I, IRB.getInt8PtrTy()),
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002704 ConstantInt::get(MS.IntptrTy, Size),
Evgeniy Stepanov0435ecd2013-09-13 12:54:49 +00002705 IRB.CreatePointerCast(Descr, IRB.getInt8PtrTy()),
David Blaikieff6409d2015-05-18 22:13:54 +00002706 IRB.CreatePointerCast(&F, MS.IntptrTy)});
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002707 }
2708 }
2709
2710 void visitSelectInst(SelectInst& I) {
2711 IRBuilder<> IRB(&I);
Evgeniy Stepanov566f5912013-09-03 10:04:11 +00002712 // a = select b, c, d
Evgeniy Stepanovfc742ac2014-03-25 13:08:34 +00002713 Value *B = I.getCondition();
2714 Value *C = I.getTrueValue();
2715 Value *D = I.getFalseValue();
2716 Value *Sb = getShadow(B);
2717 Value *Sc = getShadow(C);
2718 Value *Sd = getShadow(D);
2719
2720 // Result shadow if condition shadow is 0.
2721 Value *Sa0 = IRB.CreateSelect(B, Sc, Sd);
2722 Value *Sa1;
Evgeniy Stepanove95d37c2013-09-03 13:05:29 +00002723 if (I.getType()->isAggregateType()) {
2724 // To avoid "sign extending" i1 to an arbitrary aggregate type, we just do
2725 // an extra "select". This results in much more compact IR.
2726 // Sa = select Sb, poisoned, (select b, Sc, Sd)
Evgeniy Stepanovfc742ac2014-03-25 13:08:34 +00002727 Sa1 = getPoisonedShadow(getShadowTy(I.getType()));
Evgeniy Stepanove95d37c2013-09-03 13:05:29 +00002728 } else {
Evgeniy Stepanovfc742ac2014-03-25 13:08:34 +00002729 // Sa = select Sb, [ (c^d) | Sc | Sd ], [ b ? Sc : Sd ]
2730 // If Sb (condition is poisoned), look for bits in c and d that are equal
2731 // and both unpoisoned.
2732 // If !Sb (condition is unpoisoned), simply pick one of Sc and Sd.
2733
2734 // Cast arguments to shadow-compatible type.
2735 C = CreateAppToShadowCast(IRB, C);
2736 D = CreateAppToShadowCast(IRB, D);
2737
2738 // Result shadow if condition shadow is 1.
2739 Sa1 = IRB.CreateOr(IRB.CreateXor(C, D), IRB.CreateOr(Sc, Sd));
Evgeniy Stepanove95d37c2013-09-03 13:05:29 +00002740 }
Evgeniy Stepanovfc742ac2014-03-25 13:08:34 +00002741 Value *Sa = IRB.CreateSelect(Sb, Sa1, Sa0, "_msprop_select");
2742 setShadow(&I, Sa);
Evgeniy Stepanovec837122012-12-25 14:56:21 +00002743 if (MS.TrackOrigins) {
2744 // Origins are always i32, so any vector conditions must be flattened.
2745 // FIXME: consider tracking vector origins for app vectors?
Evgeniy Stepanovfc742ac2014-03-25 13:08:34 +00002746 if (B->getType()->isVectorTy()) {
2747 Type *FlatTy = getShadowTyNoVec(B->getType());
2748 B = IRB.CreateICmpNE(IRB.CreateBitCast(B, FlatTy),
Evgeniy Stepanovcb5bdff2013-11-21 12:00:24 +00002749 ConstantInt::getNullValue(FlatTy));
Evgeniy Stepanovfc742ac2014-03-25 13:08:34 +00002750 Sb = IRB.CreateICmpNE(IRB.CreateBitCast(Sb, FlatTy),
Evgeniy Stepanovcb5bdff2013-11-21 12:00:24 +00002751 ConstantInt::getNullValue(FlatTy));
Evgeniy Stepanovec837122012-12-25 14:56:21 +00002752 }
Evgeniy Stepanovcb5bdff2013-11-21 12:00:24 +00002753 // a = select b, c, d
2754 // Oa = Sb ? Ob : (b ? Oc : Od)
Evgeniy Stepanova0b68992014-11-28 11:17:58 +00002755 setOrigin(
2756 &I, IRB.CreateSelect(Sb, getOrigin(I.getCondition()),
2757 IRB.CreateSelect(B, getOrigin(I.getTrueValue()),
2758 getOrigin(I.getFalseValue()))));
Evgeniy Stepanovec837122012-12-25 14:56:21 +00002759 }
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002760 }
2761
2762 void visitLandingPadInst(LandingPadInst &I) {
2763 // Do nothing.
2764 // See http://code.google.com/p/memory-sanitizer/issues/detail?id=1
2765 setShadow(&I, getCleanShadow(&I));
2766 setOrigin(&I, getCleanOrigin());
2767 }
2768
David Majnemer8a1c45d2015-12-12 05:38:55 +00002769 void visitCatchSwitchInst(CatchSwitchInst &I) {
Joseph Tremoulet8220bcc2015-08-23 00:26:33 +00002770 setShadow(&I, getCleanShadow(&I));
2771 setOrigin(&I, getCleanOrigin());
David Majnemer654e1302015-07-31 17:58:14 +00002772 }
2773
David Majnemer8a1c45d2015-12-12 05:38:55 +00002774 void visitFuncletPadInst(FuncletPadInst &I) {
Joseph Tremoulet8220bcc2015-08-23 00:26:33 +00002775 setShadow(&I, getCleanShadow(&I));
2776 setOrigin(&I, getCleanOrigin());
David Majnemer654e1302015-07-31 17:58:14 +00002777 }
2778
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002779 void visitGetElementPtrInst(GetElementPtrInst &I) {
2780 handleShadowOr(I);
2781 }
2782
2783 void visitExtractValueInst(ExtractValueInst &I) {
2784 IRBuilder<> IRB(&I);
2785 Value *Agg = I.getAggregateOperand();
2786 DEBUG(dbgs() << "ExtractValue: " << I << "\n");
2787 Value *AggShadow = getShadow(Agg);
2788 DEBUG(dbgs() << " AggShadow: " << *AggShadow << "\n");
2789 Value *ResShadow = IRB.CreateExtractValue(AggShadow, I.getIndices());
2790 DEBUG(dbgs() << " ResShadow: " << *ResShadow << "\n");
2791 setShadow(&I, ResShadow);
Evgeniy Stepanov560e08932013-11-11 13:37:10 +00002792 setOriginForNaryOp(I);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002793 }
2794
2795 void visitInsertValueInst(InsertValueInst &I) {
2796 IRBuilder<> IRB(&I);
2797 DEBUG(dbgs() << "InsertValue: " << I << "\n");
2798 Value *AggShadow = getShadow(I.getAggregateOperand());
2799 Value *InsShadow = getShadow(I.getInsertedValueOperand());
2800 DEBUG(dbgs() << " AggShadow: " << *AggShadow << "\n");
2801 DEBUG(dbgs() << " InsShadow: " << *InsShadow << "\n");
2802 Value *Res = IRB.CreateInsertValue(AggShadow, InsShadow, I.getIndices());
2803 DEBUG(dbgs() << " Res: " << *Res << "\n");
2804 setShadow(&I, Res);
Evgeniy Stepanov560e08932013-11-11 13:37:10 +00002805 setOriginForNaryOp(I);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002806 }
2807
2808 void dumpInst(Instruction &I) {
2809 if (CallInst *CI = dyn_cast<CallInst>(&I)) {
2810 errs() << "ZZZ call " << CI->getCalledFunction()->getName() << "\n";
2811 } else {
2812 errs() << "ZZZ " << I.getOpcodeName() << "\n";
2813 }
2814 errs() << "QQQ " << I << "\n";
2815 }
2816
2817 void visitResumeInst(ResumeInst &I) {
2818 DEBUG(dbgs() << "Resume: " << I << "\n");
2819 // Nothing to do here.
2820 }
2821
David Majnemer654e1302015-07-31 17:58:14 +00002822 void visitCleanupReturnInst(CleanupReturnInst &CRI) {
2823 DEBUG(dbgs() << "CleanupReturn: " << CRI << "\n");
2824 // Nothing to do here.
2825 }
2826
2827 void visitCatchReturnInst(CatchReturnInst &CRI) {
2828 DEBUG(dbgs() << "CatchReturn: " << CRI << "\n");
2829 // Nothing to do here.
2830 }
2831
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002832 void visitInstruction(Instruction &I) {
2833 // Everything else: stop propagating and check for poisoned shadow.
2834 if (ClDumpStrictInstructions)
2835 dumpInst(I);
2836 DEBUG(dbgs() << "DEFAULT: " << I << "\n");
2837 for (size_t i = 0, n = I.getNumOperands(); i < n; i++)
Evgeniy Stepanovbe83d8f2013-10-14 15:16:25 +00002838 insertShadowCheck(I.getOperand(i), &I);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002839 setShadow(&I, getCleanShadow(&I));
2840 setOrigin(&I, getCleanOrigin());
2841 }
2842};
2843
2844/// \brief AMD64-specific implementation of VarArgHelper.
2845struct VarArgAMD64Helper : public VarArgHelper {
2846 // An unfortunate workaround for asymmetric lowering of va_arg stuff.
2847 // See a comment in visitCallSite for more details.
Evgeniy Stepanov9b72e992012-12-14 13:48:31 +00002848 static const unsigned AMD64GpEndOffset = 48; // AMD64 ABI Draft 0.99.6 p3.5.7
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002849 static const unsigned AMD64FpEndOffset = 176;
2850
2851 Function &F;
2852 MemorySanitizer &MS;
2853 MemorySanitizerVisitor &MSV;
2854 Value *VAArgTLSCopy;
2855 Value *VAArgOverflowSize;
2856
2857 SmallVector<CallInst*, 16> VAStartInstrumentationList;
2858
2859 VarArgAMD64Helper(Function &F, MemorySanitizer &MS,
2860 MemorySanitizerVisitor &MSV)
Craig Topperf40110f2014-04-25 05:29:35 +00002861 : F(F), MS(MS), MSV(MSV), VAArgTLSCopy(nullptr),
2862 VAArgOverflowSize(nullptr) {}
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002863
2864 enum ArgKind { AK_GeneralPurpose, AK_FloatingPoint, AK_Memory };
2865
2866 ArgKind classifyArgument(Value* arg) {
2867 // A very rough approximation of X86_64 argument classification rules.
2868 Type *T = arg->getType();
2869 if (T->isFPOrFPVectorTy() || T->isX86_MMXTy())
2870 return AK_FloatingPoint;
2871 if (T->isIntegerTy() && T->getPrimitiveSizeInBits() <= 64)
2872 return AK_GeneralPurpose;
2873 if (T->isPointerTy())
2874 return AK_GeneralPurpose;
2875 return AK_Memory;
2876 }
2877
2878 // For VarArg functions, store the argument shadow in an ABI-specific format
2879 // that corresponds to va_list layout.
2880 // We do this because Clang lowers va_arg in the frontend, and this pass
2881 // only sees the low level code that deals with va_list internals.
2882 // A much easier alternative (provided that Clang emits va_arg instructions)
2883 // would have been to associate each live instance of va_list with a copy of
2884 // MSanParamTLS, and extract shadow on va_arg() call in the argument list
2885 // order.
Craig Topper3e4c6972014-03-05 09:10:37 +00002886 void visitCallSite(CallSite &CS, IRBuilder<> &IRB) override {
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002887 unsigned GpOffset = 0;
2888 unsigned FpOffset = AMD64GpEndOffset;
2889 unsigned OverflowOffset = AMD64FpEndOffset;
Mehdi Aminia28d91d2015-03-10 02:37:25 +00002890 const DataLayout &DL = F.getParent()->getDataLayout();
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002891 for (CallSite::arg_iterator ArgIt = CS.arg_begin(), End = CS.arg_end();
2892 ArgIt != End; ++ArgIt) {
2893 Value *A = *ArgIt;
Evgeniy Stepanov7ab838e2014-03-13 13:17:11 +00002894 unsigned ArgNo = CS.getArgumentNo(ArgIt);
Marcin Koscielnickib088ad12016-05-06 19:36:56 +00002895 bool IsFixed = ArgNo < CS.getFunctionType()->getNumParams();
Evgeniy Stepanov7ab838e2014-03-13 13:17:11 +00002896 bool IsByVal = CS.paramHasAttr(ArgNo + 1, Attribute::ByVal);
2897 if (IsByVal) {
2898 // ByVal arguments always go to the overflow area.
Marcin Koscielnickib088ad12016-05-06 19:36:56 +00002899 // Fixed arguments passed through the overflow area will be stepped
2900 // over by va_start, so don't count them towards the offset.
2901 if (IsFixed)
2902 continue;
Evgeniy Stepanov7ab838e2014-03-13 13:17:11 +00002903 assert(A->getType()->isPointerTy());
2904 Type *RealTy = A->getType()->getPointerElementType();
Mehdi Aminia28d91d2015-03-10 02:37:25 +00002905 uint64_t ArgSize = DL.getTypeAllocSize(RealTy);
Evgeniy Stepanov7ab838e2014-03-13 13:17:11 +00002906 Value *Base = getShadowPtrForVAArgument(RealTy, IRB, OverflowOffset);
Rui Ueyamada00f2f2016-01-14 21:06:47 +00002907 OverflowOffset += alignTo(ArgSize, 8);
Evgeniy Stepanov7ab838e2014-03-13 13:17:11 +00002908 IRB.CreateMemCpy(Base, MSV.getShadowPtr(A, IRB.getInt8Ty(), IRB),
Pete Cooper67cf9a72015-11-19 05:56:52 +00002909 ArgSize, kShadowTLSAlignment);
Evgeniy Stepanov7ab838e2014-03-13 13:17:11 +00002910 } else {
2911 ArgKind AK = classifyArgument(A);
2912 if (AK == AK_GeneralPurpose && GpOffset >= AMD64GpEndOffset)
2913 AK = AK_Memory;
2914 if (AK == AK_FloatingPoint && FpOffset >= AMD64FpEndOffset)
2915 AK = AK_Memory;
2916 Value *Base;
2917 switch (AK) {
2918 case AK_GeneralPurpose:
2919 Base = getShadowPtrForVAArgument(A->getType(), IRB, GpOffset);
2920 GpOffset += 8;
2921 break;
2922 case AK_FloatingPoint:
2923 Base = getShadowPtrForVAArgument(A->getType(), IRB, FpOffset);
2924 FpOffset += 16;
2925 break;
2926 case AK_Memory:
Marcin Koscielnickib088ad12016-05-06 19:36:56 +00002927 if (IsFixed)
2928 continue;
Mehdi Aminia28d91d2015-03-10 02:37:25 +00002929 uint64_t ArgSize = DL.getTypeAllocSize(A->getType());
Evgeniy Stepanov7ab838e2014-03-13 13:17:11 +00002930 Base = getShadowPtrForVAArgument(A->getType(), IRB, OverflowOffset);
Rui Ueyamada00f2f2016-01-14 21:06:47 +00002931 OverflowOffset += alignTo(ArgSize, 8);
Evgeniy Stepanov7ab838e2014-03-13 13:17:11 +00002932 }
Marcin Koscielnickib088ad12016-05-06 19:36:56 +00002933 // Take fixed arguments into account for GpOffset and FpOffset,
2934 // but don't actually store shadows for them.
2935 if (IsFixed)
2936 continue;
Evgeniy Stepanov7ab838e2014-03-13 13:17:11 +00002937 IRB.CreateAlignedStore(MSV.getShadow(A), Base, kShadowTLSAlignment);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002938 }
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002939 }
2940 Constant *OverflowSize =
2941 ConstantInt::get(IRB.getInt64Ty(), OverflowOffset - AMD64FpEndOffset);
2942 IRB.CreateStore(OverflowSize, MS.VAArgOverflowSizeTLS);
2943 }
2944
2945 /// \brief Compute the shadow address for a given va_arg.
Evgeniy Stepanov7ab838e2014-03-13 13:17:11 +00002946 Value *getShadowPtrForVAArgument(Type *Ty, IRBuilder<> &IRB,
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002947 int ArgOffset) {
2948 Value *Base = IRB.CreatePointerCast(MS.VAArgTLS, MS.IntptrTy);
2949 Base = IRB.CreateAdd(Base, ConstantInt::get(MS.IntptrTy, ArgOffset));
Evgeniy Stepanov7ab838e2014-03-13 13:17:11 +00002950 return IRB.CreateIntToPtr(Base, PointerType::get(MSV.getShadowTy(Ty), 0),
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002951 "_msarg");
2952 }
2953
Craig Topper3e4c6972014-03-05 09:10:37 +00002954 void visitVAStartInst(VAStartInst &I) override {
Charles Davis11952592015-08-25 23:27:41 +00002955 if (F.getCallingConv() == CallingConv::X86_64_Win64)
2956 return;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002957 IRBuilder<> IRB(&I);
2958 VAStartInstrumentationList.push_back(&I);
2959 Value *VAListTag = I.getArgOperand(0);
2960 Value *ShadowPtr = MSV.getShadowPtr(VAListTag, IRB.getInt8Ty(), IRB);
2961
2962 // Unpoison the whole __va_list_tag.
2963 // FIXME: magic ABI constants.
2964 IRB.CreateMemSet(ShadowPtr, Constant::getNullValue(IRB.getInt8Ty()),
Peter Collingbournef7d65c42013-01-10 22:36:33 +00002965 /* size */24, /* alignment */8, false);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002966 }
2967
Craig Topper3e4c6972014-03-05 09:10:37 +00002968 void visitVACopyInst(VACopyInst &I) override {
Charles Davis11952592015-08-25 23:27:41 +00002969 if (F.getCallingConv() == CallingConv::X86_64_Win64)
2970 return;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002971 IRBuilder<> IRB(&I);
2972 Value *VAListTag = I.getArgOperand(0);
2973 Value *ShadowPtr = MSV.getShadowPtr(VAListTag, IRB.getInt8Ty(), IRB);
2974
2975 // Unpoison the whole __va_list_tag.
2976 // FIXME: magic ABI constants.
2977 IRB.CreateMemSet(ShadowPtr, Constant::getNullValue(IRB.getInt8Ty()),
Peter Collingbournef7d65c42013-01-10 22:36:33 +00002978 /* size */24, /* alignment */8, false);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002979 }
2980
Craig Topper3e4c6972014-03-05 09:10:37 +00002981 void finalizeInstrumentation() override {
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002982 assert(!VAArgOverflowSize && !VAArgTLSCopy &&
2983 "finalizeInstrumentation called twice");
2984 if (!VAStartInstrumentationList.empty()) {
2985 // If there is a va_start in this function, make a backup copy of
2986 // va_arg_tls somewhere in the function entry block.
2987 IRBuilder<> IRB(F.getEntryBlock().getFirstNonPHI());
2988 VAArgOverflowSize = IRB.CreateLoad(MS.VAArgOverflowSizeTLS);
2989 Value *CopySize =
2990 IRB.CreateAdd(ConstantInt::get(MS.IntptrTy, AMD64FpEndOffset),
2991 VAArgOverflowSize);
2992 VAArgTLSCopy = IRB.CreateAlloca(Type::getInt8Ty(*MS.C), CopySize);
Pete Cooper67cf9a72015-11-19 05:56:52 +00002993 IRB.CreateMemCpy(VAArgTLSCopy, MS.VAArgTLS, CopySize, 8);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00002994 }
2995
2996 // Instrument va_start.
2997 // Copy va_list shadow from the backup copy of the TLS contents.
2998 for (size_t i = 0, n = VAStartInstrumentationList.size(); i < n; i++) {
2999 CallInst *OrigInst = VAStartInstrumentationList[i];
3000 IRBuilder<> IRB(OrigInst->getNextNode());
3001 Value *VAListTag = OrigInst->getArgOperand(0);
3002
3003 Value *RegSaveAreaPtrPtr =
3004 IRB.CreateIntToPtr(
3005 IRB.CreateAdd(IRB.CreatePtrToInt(VAListTag, MS.IntptrTy),
3006 ConstantInt::get(MS.IntptrTy, 16)),
3007 Type::getInt64PtrTy(*MS.C));
3008 Value *RegSaveAreaPtr = IRB.CreateLoad(RegSaveAreaPtrPtr);
3009 Value *RegSaveAreaShadowPtr =
3010 MSV.getShadowPtr(RegSaveAreaPtr, IRB.getInt8Ty(), IRB);
3011 IRB.CreateMemCpy(RegSaveAreaShadowPtr, VAArgTLSCopy,
Pete Cooper67cf9a72015-11-19 05:56:52 +00003012 AMD64FpEndOffset, 16);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00003013
3014 Value *OverflowArgAreaPtrPtr =
3015 IRB.CreateIntToPtr(
3016 IRB.CreateAdd(IRB.CreatePtrToInt(VAListTag, MS.IntptrTy),
3017 ConstantInt::get(MS.IntptrTy, 8)),
3018 Type::getInt64PtrTy(*MS.C));
3019 Value *OverflowArgAreaPtr = IRB.CreateLoad(OverflowArgAreaPtrPtr);
3020 Value *OverflowArgAreaShadowPtr =
3021 MSV.getShadowPtr(OverflowArgAreaPtr, IRB.getInt8Ty(), IRB);
David Blaikie95d3e532015-04-03 23:03:54 +00003022 Value *SrcPtr = IRB.CreateConstGEP1_32(IRB.getInt8Ty(), VAArgTLSCopy,
3023 AMD64FpEndOffset);
Pete Cooper67cf9a72015-11-19 05:56:52 +00003024 IRB.CreateMemCpy(OverflowArgAreaShadowPtr, SrcPtr, VAArgOverflowSize, 16);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00003025 }
3026 }
3027};
3028
Mohit K. Bhakkad518946e2015-02-18 11:41:24 +00003029/// \brief MIPS64-specific implementation of VarArgHelper.
3030struct VarArgMIPS64Helper : public VarArgHelper {
3031 Function &F;
3032 MemorySanitizer &MS;
3033 MemorySanitizerVisitor &MSV;
3034 Value *VAArgTLSCopy;
3035 Value *VAArgSize;
3036
3037 SmallVector<CallInst*, 16> VAStartInstrumentationList;
3038
3039 VarArgMIPS64Helper(Function &F, MemorySanitizer &MS,
3040 MemorySanitizerVisitor &MSV)
3041 : F(F), MS(MS), MSV(MSV), VAArgTLSCopy(nullptr),
3042 VAArgSize(nullptr) {}
3043
3044 void visitCallSite(CallSite &CS, IRBuilder<> &IRB) override {
3045 unsigned VAArgOffset = 0;
Mehdi Aminia28d91d2015-03-10 02:37:25 +00003046 const DataLayout &DL = F.getParent()->getDataLayout();
Marcin Koscielnicki60061c22016-05-05 20:13:17 +00003047 for (CallSite::arg_iterator ArgIt = CS.arg_begin() +
3048 CS.getFunctionType()->getNumParams(), End = CS.arg_end();
Mohit K. Bhakkad518946e2015-02-18 11:41:24 +00003049 ArgIt != End; ++ArgIt) {
Marcin Koscielnickief2e7b42016-04-19 23:46:59 +00003050 llvm::Triple TargetTriple(F.getParent()->getTargetTriple());
Mohit K. Bhakkad518946e2015-02-18 11:41:24 +00003051 Value *A = *ArgIt;
3052 Value *Base;
Mehdi Aminia28d91d2015-03-10 02:37:25 +00003053 uint64_t ArgSize = DL.getTypeAllocSize(A->getType());
Marcin Koscielnickief2e7b42016-04-19 23:46:59 +00003054 if (TargetTriple.getArch() == llvm::Triple::mips64) {
3055 // Adjusting the shadow for argument with size < 8 to match the placement
3056 // of bits in big endian system
3057 if (ArgSize < 8)
3058 VAArgOffset += (8 - ArgSize);
3059 }
Mohit K. Bhakkad518946e2015-02-18 11:41:24 +00003060 Base = getShadowPtrForVAArgument(A->getType(), IRB, VAArgOffset);
3061 VAArgOffset += ArgSize;
Rui Ueyamada00f2f2016-01-14 21:06:47 +00003062 VAArgOffset = alignTo(VAArgOffset, 8);
Mohit K. Bhakkad518946e2015-02-18 11:41:24 +00003063 IRB.CreateAlignedStore(MSV.getShadow(A), Base, kShadowTLSAlignment);
3064 }
3065
3066 Constant *TotalVAArgSize = ConstantInt::get(IRB.getInt64Ty(), VAArgOffset);
3067 // Here using VAArgOverflowSizeTLS as VAArgSizeTLS to avoid creation of
3068 // a new class member i.e. it is the total size of all VarArgs.
3069 IRB.CreateStore(TotalVAArgSize, MS.VAArgOverflowSizeTLS);
3070 }
3071
3072 /// \brief Compute the shadow address for a given va_arg.
3073 Value *getShadowPtrForVAArgument(Type *Ty, IRBuilder<> &IRB,
3074 int ArgOffset) {
3075 Value *Base = IRB.CreatePointerCast(MS.VAArgTLS, MS.IntptrTy);
3076 Base = IRB.CreateAdd(Base, ConstantInt::get(MS.IntptrTy, ArgOffset));
3077 return IRB.CreateIntToPtr(Base, PointerType::get(MSV.getShadowTy(Ty), 0),
3078 "_msarg");
3079 }
3080
3081 void visitVAStartInst(VAStartInst &I) override {
3082 IRBuilder<> IRB(&I);
3083 VAStartInstrumentationList.push_back(&I);
3084 Value *VAListTag = I.getArgOperand(0);
3085 Value *ShadowPtr = MSV.getShadowPtr(VAListTag, IRB.getInt8Ty(), IRB);
3086 IRB.CreateMemSet(ShadowPtr, Constant::getNullValue(IRB.getInt8Ty()),
3087 /* size */8, /* alignment */8, false);
3088 }
3089
3090 void visitVACopyInst(VACopyInst &I) override {
3091 IRBuilder<> IRB(&I);
3092 Value *VAListTag = I.getArgOperand(0);
3093 Value *ShadowPtr = MSV.getShadowPtr(VAListTag, IRB.getInt8Ty(), IRB);
3094 // Unpoison the whole __va_list_tag.
3095 // FIXME: magic ABI constants.
3096 IRB.CreateMemSet(ShadowPtr, Constant::getNullValue(IRB.getInt8Ty()),
3097 /* size */8, /* alignment */8, false);
3098 }
3099
3100 void finalizeInstrumentation() override {
3101 assert(!VAArgSize && !VAArgTLSCopy &&
3102 "finalizeInstrumentation called twice");
3103 IRBuilder<> IRB(F.getEntryBlock().getFirstNonPHI());
3104 VAArgSize = IRB.CreateLoad(MS.VAArgOverflowSizeTLS);
3105 Value *CopySize = IRB.CreateAdd(ConstantInt::get(MS.IntptrTy, 0),
3106 VAArgSize);
3107
3108 if (!VAStartInstrumentationList.empty()) {
3109 // If there is a va_start in this function, make a backup copy of
3110 // va_arg_tls somewhere in the function entry block.
3111 VAArgTLSCopy = IRB.CreateAlloca(Type::getInt8Ty(*MS.C), CopySize);
Pete Cooper67cf9a72015-11-19 05:56:52 +00003112 IRB.CreateMemCpy(VAArgTLSCopy, MS.VAArgTLS, CopySize, 8);
Mohit K. Bhakkad518946e2015-02-18 11:41:24 +00003113 }
3114
3115 // Instrument va_start.
3116 // Copy va_list shadow from the backup copy of the TLS contents.
3117 for (size_t i = 0, n = VAStartInstrumentationList.size(); i < n; i++) {
3118 CallInst *OrigInst = VAStartInstrumentationList[i];
3119 IRBuilder<> IRB(OrigInst->getNextNode());
3120 Value *VAListTag = OrigInst->getArgOperand(0);
3121 Value *RegSaveAreaPtrPtr =
3122 IRB.CreateIntToPtr(IRB.CreatePtrToInt(VAListTag, MS.IntptrTy),
3123 Type::getInt64PtrTy(*MS.C));
3124 Value *RegSaveAreaPtr = IRB.CreateLoad(RegSaveAreaPtrPtr);
3125 Value *RegSaveAreaShadowPtr =
3126 MSV.getShadowPtr(RegSaveAreaPtr, IRB.getInt8Ty(), IRB);
Pete Cooper67cf9a72015-11-19 05:56:52 +00003127 IRB.CreateMemCpy(RegSaveAreaShadowPtr, VAArgTLSCopy, CopySize, 8);
Mohit K. Bhakkad518946e2015-02-18 11:41:24 +00003128 }
3129 }
3130};
3131
Adhemerval Zanellad2b10c52015-12-14 14:14:15 +00003132
3133/// \brief AArch64-specific implementation of VarArgHelper.
3134struct VarArgAArch64Helper : public VarArgHelper {
Marcin Koscielnicki60b3cbe2016-05-09 20:57:36 +00003135 static const unsigned kAArch64GrArgSize = 64;
Adhemerval Zanellad2b10c52015-12-14 14:14:15 +00003136 static const unsigned kAArch64VrArgSize = 128;
3137
3138 static const unsigned AArch64GrBegOffset = 0;
3139 static const unsigned AArch64GrEndOffset = kAArch64GrArgSize;
3140 // Make VR space aligned to 16 bytes.
Marcin Koscielnicki60b3cbe2016-05-09 20:57:36 +00003141 static const unsigned AArch64VrBegOffset = AArch64GrEndOffset;
Adhemerval Zanellad2b10c52015-12-14 14:14:15 +00003142 static const unsigned AArch64VrEndOffset = AArch64VrBegOffset
3143 + kAArch64VrArgSize;
3144 static const unsigned AArch64VAEndOffset = AArch64VrEndOffset;
3145
3146 Function &F;
3147 MemorySanitizer &MS;
3148 MemorySanitizerVisitor &MSV;
3149 Value *VAArgTLSCopy;
3150 Value *VAArgOverflowSize;
3151
3152 SmallVector<CallInst*, 16> VAStartInstrumentationList;
3153
3154 VarArgAArch64Helper(Function &F, MemorySanitizer &MS,
3155 MemorySanitizerVisitor &MSV)
3156 : F(F), MS(MS), MSV(MSV), VAArgTLSCopy(nullptr),
3157 VAArgOverflowSize(nullptr) {}
3158
3159 enum ArgKind { AK_GeneralPurpose, AK_FloatingPoint, AK_Memory };
3160
3161 ArgKind classifyArgument(Value* arg) {
3162 Type *T = arg->getType();
3163 if (T->isFPOrFPVectorTy())
3164 return AK_FloatingPoint;
3165 if ((T->isIntegerTy() && T->getPrimitiveSizeInBits() <= 64)
3166 || (T->isPointerTy()))
3167 return AK_GeneralPurpose;
3168 return AK_Memory;
3169 }
3170
3171 // The instrumentation stores the argument shadow in a non ABI-specific
3172 // format because it does not know which argument is named (since Clang,
3173 // like x86_64 case, lowers the va_args in the frontend and this pass only
3174 // sees the low level code that deals with va_list internals).
3175 // The first seven GR registers are saved in the first 56 bytes of the
3176 // va_arg tls arra, followers by the first 8 FP/SIMD registers, and then
3177 // the remaining arguments.
3178 // Using constant offset within the va_arg TLS array allows fast copy
3179 // in the finalize instrumentation.
3180 void visitCallSite(CallSite &CS, IRBuilder<> &IRB) override {
3181 unsigned GrOffset = AArch64GrBegOffset;
3182 unsigned VrOffset = AArch64VrBegOffset;
3183 unsigned OverflowOffset = AArch64VAEndOffset;
3184
3185 const DataLayout &DL = F.getParent()->getDataLayout();
Marcin Koscielnicki60b3cbe2016-05-09 20:57:36 +00003186 for (CallSite::arg_iterator ArgIt = CS.arg_begin(), End = CS.arg_end();
Adhemerval Zanellad2b10c52015-12-14 14:14:15 +00003187 ArgIt != End; ++ArgIt) {
3188 Value *A = *ArgIt;
Marcin Koscielnicki60b3cbe2016-05-09 20:57:36 +00003189 unsigned ArgNo = CS.getArgumentNo(ArgIt);
3190 bool IsFixed = ArgNo < CS.getFunctionType()->getNumParams();
Adhemerval Zanellad2b10c52015-12-14 14:14:15 +00003191 ArgKind AK = classifyArgument(A);
3192 if (AK == AK_GeneralPurpose && GrOffset >= AArch64GrEndOffset)
3193 AK = AK_Memory;
3194 if (AK == AK_FloatingPoint && VrOffset >= AArch64VrEndOffset)
3195 AK = AK_Memory;
3196 Value *Base;
3197 switch (AK) {
3198 case AK_GeneralPurpose:
3199 Base = getShadowPtrForVAArgument(A->getType(), IRB, GrOffset);
3200 GrOffset += 8;
3201 break;
3202 case AK_FloatingPoint:
3203 Base = getShadowPtrForVAArgument(A->getType(), IRB, VrOffset);
3204 VrOffset += 16;
3205 break;
3206 case AK_Memory:
Marcin Koscielnicki60b3cbe2016-05-09 20:57:36 +00003207 // Don't count fixed arguments in the overflow area - va_start will
3208 // skip right over them.
3209 if (IsFixed)
3210 continue;
Adhemerval Zanellad2b10c52015-12-14 14:14:15 +00003211 uint64_t ArgSize = DL.getTypeAllocSize(A->getType());
3212 Base = getShadowPtrForVAArgument(A->getType(), IRB, OverflowOffset);
Rui Ueyamada00f2f2016-01-14 21:06:47 +00003213 OverflowOffset += alignTo(ArgSize, 8);
Adhemerval Zanellad2b10c52015-12-14 14:14:15 +00003214 break;
3215 }
Marcin Koscielnicki60b3cbe2016-05-09 20:57:36 +00003216 // Count Gp/Vr fixed arguments to their respective offsets, but don't
3217 // bother to actually store a shadow.
3218 if (IsFixed)
3219 continue;
Adhemerval Zanellad2b10c52015-12-14 14:14:15 +00003220 IRB.CreateAlignedStore(MSV.getShadow(A), Base, kShadowTLSAlignment);
3221 }
3222 Constant *OverflowSize =
3223 ConstantInt::get(IRB.getInt64Ty(), OverflowOffset - AArch64VAEndOffset);
3224 IRB.CreateStore(OverflowSize, MS.VAArgOverflowSizeTLS);
3225 }
3226
3227 /// Compute the shadow address for a given va_arg.
3228 Value *getShadowPtrForVAArgument(Type *Ty, IRBuilder<> &IRB,
3229 int ArgOffset) {
3230 Value *Base = IRB.CreatePointerCast(MS.VAArgTLS, MS.IntptrTy);
3231 Base = IRB.CreateAdd(Base, ConstantInt::get(MS.IntptrTy, ArgOffset));
3232 return IRB.CreateIntToPtr(Base, PointerType::get(MSV.getShadowTy(Ty), 0),
3233 "_msarg");
3234 }
3235
3236 void visitVAStartInst(VAStartInst &I) override {
3237 IRBuilder<> IRB(&I);
3238 VAStartInstrumentationList.push_back(&I);
3239 Value *VAListTag = I.getArgOperand(0);
3240 Value *ShadowPtr = MSV.getShadowPtr(VAListTag, IRB.getInt8Ty(), IRB);
3241 // Unpoison the whole __va_list_tag.
3242 // FIXME: magic ABI constants (size of va_list).
3243 IRB.CreateMemSet(ShadowPtr, Constant::getNullValue(IRB.getInt8Ty()),
3244 /* size */32, /* alignment */8, false);
3245 }
3246
3247 void visitVACopyInst(VACopyInst &I) override {
3248 IRBuilder<> IRB(&I);
3249 Value *VAListTag = I.getArgOperand(0);
3250 Value *ShadowPtr = MSV.getShadowPtr(VAListTag, IRB.getInt8Ty(), IRB);
3251 // Unpoison the whole __va_list_tag.
3252 // FIXME: magic ABI constants (size of va_list).
3253 IRB.CreateMemSet(ShadowPtr, Constant::getNullValue(IRB.getInt8Ty()),
3254 /* size */32, /* alignment */8, false);
3255 }
3256
3257 // Retrieve a va_list field of 'void*' size.
3258 Value* getVAField64(IRBuilder<> &IRB, Value *VAListTag, int offset) {
3259 Value *SaveAreaPtrPtr =
3260 IRB.CreateIntToPtr(
3261 IRB.CreateAdd(IRB.CreatePtrToInt(VAListTag, MS.IntptrTy),
3262 ConstantInt::get(MS.IntptrTy, offset)),
3263 Type::getInt64PtrTy(*MS.C));
3264 return IRB.CreateLoad(SaveAreaPtrPtr);
3265 }
3266
3267 // Retrieve a va_list field of 'int' size.
3268 Value* getVAField32(IRBuilder<> &IRB, Value *VAListTag, int offset) {
3269 Value *SaveAreaPtr =
3270 IRB.CreateIntToPtr(
3271 IRB.CreateAdd(IRB.CreatePtrToInt(VAListTag, MS.IntptrTy),
3272 ConstantInt::get(MS.IntptrTy, offset)),
3273 Type::getInt32PtrTy(*MS.C));
3274 Value *SaveArea32 = IRB.CreateLoad(SaveAreaPtr);
3275 return IRB.CreateSExt(SaveArea32, MS.IntptrTy);
3276 }
3277
3278 void finalizeInstrumentation() override {
3279 assert(!VAArgOverflowSize && !VAArgTLSCopy &&
3280 "finalizeInstrumentation called twice");
3281 if (!VAStartInstrumentationList.empty()) {
3282 // If there is a va_start in this function, make a backup copy of
3283 // va_arg_tls somewhere in the function entry block.
3284 IRBuilder<> IRB(F.getEntryBlock().getFirstNonPHI());
3285 VAArgOverflowSize = IRB.CreateLoad(MS.VAArgOverflowSizeTLS);
3286 Value *CopySize =
3287 IRB.CreateAdd(ConstantInt::get(MS.IntptrTy, AArch64VAEndOffset),
3288 VAArgOverflowSize);
3289 VAArgTLSCopy = IRB.CreateAlloca(Type::getInt8Ty(*MS.C), CopySize);
3290 IRB.CreateMemCpy(VAArgTLSCopy, MS.VAArgTLS, CopySize, 8);
3291 }
3292
3293 Value *GrArgSize = ConstantInt::get(MS.IntptrTy, kAArch64GrArgSize);
3294 Value *VrArgSize = ConstantInt::get(MS.IntptrTy, kAArch64VrArgSize);
3295
3296 // Instrument va_start, copy va_list shadow from the backup copy of
3297 // the TLS contents.
3298 for (size_t i = 0, n = VAStartInstrumentationList.size(); i < n; i++) {
3299 CallInst *OrigInst = VAStartInstrumentationList[i];
3300 IRBuilder<> IRB(OrigInst->getNextNode());
3301
3302 Value *VAListTag = OrigInst->getArgOperand(0);
3303
3304 // The variadic ABI for AArch64 creates two areas to save the incoming
3305 // argument registers (one for 64-bit general register xn-x7 and another
3306 // for 128-bit FP/SIMD vn-v7).
3307 // We need then to propagate the shadow arguments on both regions
3308 // 'va::__gr_top + va::__gr_offs' and 'va::__vr_top + va::__vr_offs'.
3309 // The remaning arguments are saved on shadow for 'va::stack'.
3310 // One caveat is it requires only to propagate the non-named arguments,
3311 // however on the call site instrumentation 'all' the arguments are
3312 // saved. So to copy the shadow values from the va_arg TLS array
3313 // we need to adjust the offset for both GR and VR fields based on
3314 // the __{gr,vr}_offs value (since they are stores based on incoming
3315 // named arguments).
3316
3317 // Read the stack pointer from the va_list.
3318 Value *StackSaveAreaPtr = getVAField64(IRB, VAListTag, 0);
3319
3320 // Read both the __gr_top and __gr_off and add them up.
3321 Value *GrTopSaveAreaPtr = getVAField64(IRB, VAListTag, 8);
3322 Value *GrOffSaveArea = getVAField32(IRB, VAListTag, 24);
3323
3324 Value *GrRegSaveAreaPtr = IRB.CreateAdd(GrTopSaveAreaPtr, GrOffSaveArea);
3325
3326 // Read both the __vr_top and __vr_off and add them up.
3327 Value *VrTopSaveAreaPtr = getVAField64(IRB, VAListTag, 16);
3328 Value *VrOffSaveArea = getVAField32(IRB, VAListTag, 28);
3329
3330 Value *VrRegSaveAreaPtr = IRB.CreateAdd(VrTopSaveAreaPtr, VrOffSaveArea);
3331
3332 // It does not know how many named arguments is being used and, on the
3333 // callsite all the arguments were saved. Since __gr_off is defined as
3334 // '0 - ((8 - named_gr) * 8)', the idea is to just propagate the variadic
3335 // argument by ignoring the bytes of shadow from named arguments.
3336 Value *GrRegSaveAreaShadowPtrOff =
3337 IRB.CreateAdd(GrArgSize, GrOffSaveArea);
3338
3339 Value *GrRegSaveAreaShadowPtr =
3340 MSV.getShadowPtr(GrRegSaveAreaPtr, IRB.getInt8Ty(), IRB);
3341
3342 Value *GrSrcPtr = IRB.CreateInBoundsGEP(IRB.getInt8Ty(), VAArgTLSCopy,
3343 GrRegSaveAreaShadowPtrOff);
3344 Value *GrCopySize = IRB.CreateSub(GrArgSize, GrRegSaveAreaShadowPtrOff);
3345
3346 IRB.CreateMemCpy(GrRegSaveAreaShadowPtr, GrSrcPtr, GrCopySize, 8);
3347
3348 // Again, but for FP/SIMD values.
3349 Value *VrRegSaveAreaShadowPtrOff =
3350 IRB.CreateAdd(VrArgSize, VrOffSaveArea);
3351
3352 Value *VrRegSaveAreaShadowPtr =
3353 MSV.getShadowPtr(VrRegSaveAreaPtr, IRB.getInt8Ty(), IRB);
3354
3355 Value *VrSrcPtr = IRB.CreateInBoundsGEP(
3356 IRB.getInt8Ty(),
3357 IRB.CreateInBoundsGEP(IRB.getInt8Ty(), VAArgTLSCopy,
3358 IRB.getInt32(AArch64VrBegOffset)),
3359 VrRegSaveAreaShadowPtrOff);
3360 Value *VrCopySize = IRB.CreateSub(VrArgSize, VrRegSaveAreaShadowPtrOff);
3361
3362 IRB.CreateMemCpy(VrRegSaveAreaShadowPtr, VrSrcPtr, VrCopySize, 8);
3363
3364 // And finally for remaining arguments.
3365 Value *StackSaveAreaShadowPtr =
3366 MSV.getShadowPtr(StackSaveAreaPtr, IRB.getInt8Ty(), IRB);
3367
3368 Value *StackSrcPtr =
3369 IRB.CreateInBoundsGEP(IRB.getInt8Ty(), VAArgTLSCopy,
3370 IRB.getInt32(AArch64VAEndOffset));
3371
3372 IRB.CreateMemCpy(StackSaveAreaShadowPtr, StackSrcPtr,
3373 VAArgOverflowSize, 16);
3374 }
3375 }
3376};
3377
Marcin Koscielnickia4fcd362016-05-13 23:55:33 +00003378/// \brief PowerPC64-specific implementation of VarArgHelper.
3379struct VarArgPowerPC64Helper : public VarArgHelper {
3380 Function &F;
3381 MemorySanitizer &MS;
3382 MemorySanitizerVisitor &MSV;
3383 Value *VAArgTLSCopy;
3384 Value *VAArgSize;
3385
3386 SmallVector<CallInst*, 16> VAStartInstrumentationList;
3387
3388 VarArgPowerPC64Helper(Function &F, MemorySanitizer &MS,
3389 MemorySanitizerVisitor &MSV)
3390 : F(F), MS(MS), MSV(MSV), VAArgTLSCopy(nullptr),
3391 VAArgSize(nullptr) {}
3392
3393 void visitCallSite(CallSite &CS, IRBuilder<> &IRB) override {
3394 // For PowerPC, we need to deal with alignment of stack arguments -
3395 // they are mostly aligned to 8 bytes, but vectors and i128 arrays
3396 // are aligned to 16 bytes, byvals can be aligned to 8 or 16 bytes,
3397 // and QPX vectors are aligned to 32 bytes. For that reason, we
3398 // compute current offset from stack pointer (which is always properly
3399 // aligned), and offset for the first vararg, then subtract them.
3400 unsigned VAArgBase;
3401 llvm::Triple TargetTriple(F.getParent()->getTargetTriple());
3402 // Parameter save area starts at 48 bytes from frame pointer for ABIv1,
3403 // and 32 bytes for ABIv2. This is usually determined by target
3404 // endianness, but in theory could be overriden by function attribute.
3405 // For simplicity, we ignore it here (it'd only matter for QPX vectors).
3406 if (TargetTriple.getArch() == llvm::Triple::ppc64)
3407 VAArgBase = 48;
3408 else
3409 VAArgBase = 32;
3410 unsigned VAArgOffset = VAArgBase;
3411 const DataLayout &DL = F.getParent()->getDataLayout();
3412 for (CallSite::arg_iterator ArgIt = CS.arg_begin(), End = CS.arg_end();
3413 ArgIt != End; ++ArgIt) {
3414 Value *A = *ArgIt;
3415 unsigned ArgNo = CS.getArgumentNo(ArgIt);
3416 bool IsFixed = ArgNo < CS.getFunctionType()->getNumParams();
3417 bool IsByVal = CS.paramHasAttr(ArgNo + 1, Attribute::ByVal);
3418 if (IsByVal) {
3419 assert(A->getType()->isPointerTy());
3420 Type *RealTy = A->getType()->getPointerElementType();
3421 uint64_t ArgSize = DL.getTypeAllocSize(RealTy);
3422 uint64_t ArgAlign = CS.getParamAlignment(ArgNo + 1);
3423 if (ArgAlign < 8)
3424 ArgAlign = 8;
3425 VAArgOffset = alignTo(VAArgOffset, ArgAlign);
3426 if (!IsFixed) {
3427 Value *Base = getShadowPtrForVAArgument(RealTy, IRB,
3428 VAArgOffset - VAArgBase);
3429 IRB.CreateMemCpy(Base, MSV.getShadowPtr(A, IRB.getInt8Ty(), IRB),
3430 ArgSize, kShadowTLSAlignment);
3431 }
3432 VAArgOffset += alignTo(ArgSize, 8);
3433 } else {
3434 Value *Base;
3435 uint64_t ArgSize = DL.getTypeAllocSize(A->getType());
3436 uint64_t ArgAlign = 8;
3437 if (A->getType()->isArrayTy()) {
3438 // Arrays are aligned to element size, except for long double
3439 // arrays, which are aligned to 8 bytes.
3440 Type *ElementTy = A->getType()->getArrayElementType();
3441 if (!ElementTy->isPPC_FP128Ty())
3442 ArgAlign = DL.getTypeAllocSize(ElementTy);
3443 } else if (A->getType()->isVectorTy()) {
3444 // Vectors are naturally aligned.
3445 ArgAlign = DL.getTypeAllocSize(A->getType());
3446 }
3447 if (ArgAlign < 8)
3448 ArgAlign = 8;
3449 VAArgOffset = alignTo(VAArgOffset, ArgAlign);
3450 if (DL.isBigEndian()) {
3451 // Adjusting the shadow for argument with size < 8 to match the placement
3452 // of bits in big endian system
3453 if (ArgSize < 8)
3454 VAArgOffset += (8 - ArgSize);
3455 }
3456 if (!IsFixed) {
3457 Base = getShadowPtrForVAArgument(A->getType(), IRB,
3458 VAArgOffset - VAArgBase);
3459 IRB.CreateAlignedStore(MSV.getShadow(A), Base, kShadowTLSAlignment);
3460 }
3461 VAArgOffset += ArgSize;
3462 VAArgOffset = alignTo(VAArgOffset, 8);
3463 }
3464 if (IsFixed)
3465 VAArgBase = VAArgOffset;
3466 }
3467
3468 Constant *TotalVAArgSize = ConstantInt::get(IRB.getInt64Ty(),
3469 VAArgOffset - VAArgBase);
3470 // Here using VAArgOverflowSizeTLS as VAArgSizeTLS to avoid creation of
3471 // a new class member i.e. it is the total size of all VarArgs.
3472 IRB.CreateStore(TotalVAArgSize, MS.VAArgOverflowSizeTLS);
3473 }
3474
3475 /// \brief Compute the shadow address for a given va_arg.
3476 Value *getShadowPtrForVAArgument(Type *Ty, IRBuilder<> &IRB,
3477 int ArgOffset) {
3478 Value *Base = IRB.CreatePointerCast(MS.VAArgTLS, MS.IntptrTy);
3479 Base = IRB.CreateAdd(Base, ConstantInt::get(MS.IntptrTy, ArgOffset));
3480 return IRB.CreateIntToPtr(Base, PointerType::get(MSV.getShadowTy(Ty), 0),
3481 "_msarg");
3482 }
3483
3484 void visitVAStartInst(VAStartInst &I) override {
3485 IRBuilder<> IRB(&I);
3486 VAStartInstrumentationList.push_back(&I);
3487 Value *VAListTag = I.getArgOperand(0);
3488 Value *ShadowPtr = MSV.getShadowPtr(VAListTag, IRB.getInt8Ty(), IRB);
3489 IRB.CreateMemSet(ShadowPtr, Constant::getNullValue(IRB.getInt8Ty()),
3490 /* size */8, /* alignment */8, false);
3491 }
3492
3493 void visitVACopyInst(VACopyInst &I) override {
3494 IRBuilder<> IRB(&I);
3495 Value *VAListTag = I.getArgOperand(0);
3496 Value *ShadowPtr = MSV.getShadowPtr(VAListTag, IRB.getInt8Ty(), IRB);
3497 // Unpoison the whole __va_list_tag.
3498 // FIXME: magic ABI constants.
3499 IRB.CreateMemSet(ShadowPtr, Constant::getNullValue(IRB.getInt8Ty()),
3500 /* size */8, /* alignment */8, false);
3501 }
3502
3503 void finalizeInstrumentation() override {
3504 assert(!VAArgSize && !VAArgTLSCopy &&
3505 "finalizeInstrumentation called twice");
3506 IRBuilder<> IRB(F.getEntryBlock().getFirstNonPHI());
3507 VAArgSize = IRB.CreateLoad(MS.VAArgOverflowSizeTLS);
3508 Value *CopySize = IRB.CreateAdd(ConstantInt::get(MS.IntptrTy, 0),
3509 VAArgSize);
3510
3511 if (!VAStartInstrumentationList.empty()) {
3512 // If there is a va_start in this function, make a backup copy of
3513 // va_arg_tls somewhere in the function entry block.
3514 VAArgTLSCopy = IRB.CreateAlloca(Type::getInt8Ty(*MS.C), CopySize);
3515 IRB.CreateMemCpy(VAArgTLSCopy, MS.VAArgTLS, CopySize, 8);
3516 }
3517
3518 // Instrument va_start.
3519 // Copy va_list shadow from the backup copy of the TLS contents.
3520 for (size_t i = 0, n = VAStartInstrumentationList.size(); i < n; i++) {
3521 CallInst *OrigInst = VAStartInstrumentationList[i];
3522 IRBuilder<> IRB(OrigInst->getNextNode());
3523 Value *VAListTag = OrigInst->getArgOperand(0);
3524 Value *RegSaveAreaPtrPtr =
3525 IRB.CreateIntToPtr(IRB.CreatePtrToInt(VAListTag, MS.IntptrTy),
3526 Type::getInt64PtrTy(*MS.C));
3527 Value *RegSaveAreaPtr = IRB.CreateLoad(RegSaveAreaPtrPtr);
3528 Value *RegSaveAreaShadowPtr =
3529 MSV.getShadowPtr(RegSaveAreaPtr, IRB.getInt8Ty(), IRB);
3530 IRB.CreateMemCpy(RegSaveAreaShadowPtr, VAArgTLSCopy, CopySize, 8);
3531 }
3532 }
3533};
3534
Evgeniy Stepanovebd7f8e2013-05-21 12:27:47 +00003535/// \brief A no-op implementation of VarArgHelper.
3536struct VarArgNoOpHelper : public VarArgHelper {
3537 VarArgNoOpHelper(Function &F, MemorySanitizer &MS,
3538 MemorySanitizerVisitor &MSV) {}
3539
Craig Topper3e4c6972014-03-05 09:10:37 +00003540 void visitCallSite(CallSite &CS, IRBuilder<> &IRB) override {}
Evgeniy Stepanovebd7f8e2013-05-21 12:27:47 +00003541
Craig Topper3e4c6972014-03-05 09:10:37 +00003542 void visitVAStartInst(VAStartInst &I) override {}
Evgeniy Stepanovebd7f8e2013-05-21 12:27:47 +00003543
Craig Topper3e4c6972014-03-05 09:10:37 +00003544 void visitVACopyInst(VACopyInst &I) override {}
Evgeniy Stepanovebd7f8e2013-05-21 12:27:47 +00003545
Craig Topper3e4c6972014-03-05 09:10:37 +00003546 void finalizeInstrumentation() override {}
Evgeniy Stepanovebd7f8e2013-05-21 12:27:47 +00003547};
3548
3549VarArgHelper *CreateVarArgHelper(Function &Func, MemorySanitizer &Msan,
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00003550 MemorySanitizerVisitor &Visitor) {
Evgeniy Stepanovebd7f8e2013-05-21 12:27:47 +00003551 // VarArg handling is only implemented on AMD64. False positives are possible
3552 // on other platforms.
3553 llvm::Triple TargetTriple(Func.getParent()->getTargetTriple());
3554 if (TargetTriple.getArch() == llvm::Triple::x86_64)
3555 return new VarArgAMD64Helper(Func, Msan, Visitor);
Mohit K. Bhakkad518946e2015-02-18 11:41:24 +00003556 else if (TargetTriple.getArch() == llvm::Triple::mips64 ||
3557 TargetTriple.getArch() == llvm::Triple::mips64el)
3558 return new VarArgMIPS64Helper(Func, Msan, Visitor);
Adhemerval Zanellad2b10c52015-12-14 14:14:15 +00003559 else if (TargetTriple.getArch() == llvm::Triple::aarch64)
3560 return new VarArgAArch64Helper(Func, Msan, Visitor);
Marcin Koscielnickia4fcd362016-05-13 23:55:33 +00003561 else if (TargetTriple.getArch() == llvm::Triple::ppc64 ||
3562 TargetTriple.getArch() == llvm::Triple::ppc64le)
3563 return new VarArgPowerPC64Helper(Func, Msan, Visitor);
Evgeniy Stepanovebd7f8e2013-05-21 12:27:47 +00003564 else
3565 return new VarArgNoOpHelper(Func, Msan, Visitor);
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00003566}
3567
Hans Wennborg083ca9b2015-10-06 23:24:35 +00003568} // anonymous namespace
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00003569
3570bool MemorySanitizer::runOnFunction(Function &F) {
Ismail Pazarbasie5048e12015-05-07 21:41:52 +00003571 if (&F == MsanCtorFunction)
3572 return false;
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00003573 MemorySanitizerVisitor Visitor(F, *this);
3574
3575 // Clear out readonly/readnone attributes.
3576 AttrBuilder B;
Bill Wendling3d7b0b82012-12-19 07:18:57 +00003577 B.addAttribute(Attribute::ReadOnly)
3578 .addAttribute(Attribute::ReadNone);
Bill Wendling430fa9b2013-01-23 00:45:55 +00003579 F.removeAttributes(AttributeSet::FunctionIndex,
3580 AttributeSet::get(F.getContext(),
3581 AttributeSet::FunctionIndex, B));
Evgeniy Stepanovd4bd7b72012-11-29 09:57:20 +00003582
3583 return Visitor.runOnFunction();
3584}