1 //===- ICF.cpp ------------------------------------------------------------===// 2 // 3 // The LLVM Linker 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // ICF is short for Identical Code Folding. This is a size optimization to 11 // identify and merge two or more read-only sections (typically functions) 12 // that happened to have the same contents. It usually reduces output size 13 // by a few percent. 14 // 15 // In ICF, two sections are considered identical if they have the same 16 // section flags, section data, and relocations. Relocations are tricky, 17 // because two relocations are considered the same if they have the same 18 // relocation types, values, and if they point to the same sections *in 19 // terms of ICF*. 20 // 21 // Here is an example. If foo and bar defined below are compiled to the 22 // same machine instructions, ICF can and should merge the two, although 23 // their relocations point to each other. 24 // 25 // void foo() { bar(); } 26 // void bar() { foo(); } 27 // 28 // If you merge the two, their relocations point to the same section and 29 // thus you know they are mergeable, but how do you know they are 30 // mergeable in the first place? This is not an easy problem to solve. 31 // 32 // What we are doing in LLD is to partition sections into equivalence 33 // classes. Sections in the same equivalence class when the algorithm 34 // terminates are considered identical. Here are details: 35 // 36 // 1. First, we partition sections using their hash values as keys. Hash 37 // values contain section types, section contents and numbers of 38 // relocations. During this step, relocation targets are not taken into 39 // account. We just put sections that apparently differ into different 40 // equivalence classes. 41 // 42 // 2. Next, for each equivalence class, we visit sections to compare 43 // relocation targets. Relocation targets are considered equivalent if 44 // their targets are in the same equivalence class. Sections with 45 // different relocation targets are put into different equivalence 46 // clases. 47 // 48 // 3. If we split an equivalence class in step 2, two relocations 49 // previously target the same equivalence class may now target 50 // different equivalence classes. Therefore, we repeat step 2 until a 51 // convergence is obtained. 52 // 53 // 4. For each equivalence class C, pick an arbitrary section in C, and 54 // merge all the other sections in C with it. 55 // 56 // For small programs, this algorithm needs 3-5 iterations. For large 57 // programs such as Chromium, it takes more than 20 iterations. 58 // 59 // This algorithm was mentioned as an "optimistic algorithm" in [1], 60 // though gold implements a different algorithm than this. 61 // 62 // We parallelize each step so that multiple threads can work on different 63 // equivalence classes concurrently. That gave us a large performance 64 // boost when applying ICF on large programs. For example, MSVC link.exe 65 // or GNU gold takes 10-20 seconds to apply ICF on Chromium, whose output 66 // size is about 1.5 GB, but LLD can finish it in less than 2 seconds on a 67 // 2.8 GHz 40 core machine. Even without threading, LLD's ICF is still 68 // faster than MSVC or gold though. 69 // 70 // [1] Safe ICF: Pointer Safe and Unwinding aware Identical Code Folding 71 // in the Gold Linker 72 // http://static.googleusercontent.com/media/research.google.com/en//pubs/archive/36912.pdf 73 // 74 //===----------------------------------------------------------------------===// 75 76 #include "ICF.h" 77 #include "Config.h" 78 #include "SymbolTable.h" 79 #include "Threads.h" 80 81 #include "llvm/ADT/Hashing.h" 82 #include "llvm/Object/ELF.h" 83 #include "llvm/Support/ELF.h" 84 #include <algorithm> 85 #include <atomic> 86 87 using namespace lld; 88 using namespace lld::elf; 89 using namespace llvm; 90 using namespace llvm::ELF; 91 using namespace llvm::object; 92 93 namespace { 94 template <class ELFT> class ICF { 95 public: 96 void run(); 97 98 private: 99 void segregate(size_t Begin, size_t End, bool Constant); 100 101 template <class RelTy> 102 bool constantEq(ArrayRef<RelTy> RelsA, ArrayRef<RelTy> RelsB); 103 104 template <class RelTy> 105 bool variableEq(const InputSection *A, ArrayRef<RelTy> RelsA, 106 const InputSection *B, ArrayRef<RelTy> RelsB); 107 108 bool equalsConstant(const InputSection *A, const InputSection *B); 109 bool equalsVariable(const InputSection *A, const InputSection *B); 110 111 size_t findBoundary(size_t Begin, size_t End); 112 113 void forEachClassRange(size_t Begin, size_t End, 114 std::function<void(size_t, size_t)> Fn); 115 116 void forEachClass(std::function<void(size_t, size_t)> Fn); 117 118 std::vector<InputSection *> Sections; 119 120 // We repeat the main loop while `Repeat` is true. 121 std::atomic<bool> Repeat; 122 123 // The main loop counter. 124 int Cnt = 0; 125 126 // We have two locations for equivalence classes. On the first iteration 127 // of the main loop, Class[0] has a valid value, and Class[1] contains 128 // garbage. We read equivalence classes from slot 0 and write to slot 1. 129 // So, Class[0] represents the current class, and Class[1] represents 130 // the next class. On each iteration, we switch their roles and use them 131 // alternately. 132 // 133 // Why are we doing this? Recall that other threads may be working on 134 // other equivalence classes in parallel. They may read sections that we 135 // are updating. We cannot update equivalence classes in place because 136 // it breaks the invariance that all possibly-identical sections must be 137 // in the same equivalence class at any moment. In other words, the for 138 // loop to update equivalence classes is not atomic, and that is 139 // observable from other threads. By writing new classes to other 140 // places, we can keep the invariance. 141 // 142 // Below, `Current` has the index of the current class, and `Next` has 143 // the index of the next class. If threading is enabled, they are either 144 // (0, 1) or (1, 0). 145 // 146 // Note on single-thread: if that's the case, they are always (0, 0) 147 // because we can safely read the next class without worrying about race 148 // conditions. Using the same location makes this algorithm converge 149 // faster because it uses results of the same iteration earlier. 150 int Current = 0; 151 int Next = 0; 152 }; 153 } 154 155 // Returns a hash value for S. Note that the information about 156 // relocation targets is not included in the hash value. 157 template <class ELFT> static uint32_t getHash(InputSection *S) { 158 return hash_combine(S->Flags, S->template getSize<ELFT>(), S->NumRelocations); 159 } 160 161 // Returns true if section S is subject of ICF. 162 template <class ELFT> static bool isEligible(InputSection *S) { 163 // .init and .fini contains instructions that must be executed to 164 // initialize and finalize the process. They cannot and should not 165 // be merged. 166 return S->Live && (S->Flags & SHF_ALLOC) && !(S->Flags & SHF_WRITE) && 167 S->Name != ".init" && S->Name != ".fini"; 168 } 169 170 // Split an equivalence class into smaller classes. 171 template <class ELFT> 172 void ICF<ELFT>::segregate(size_t Begin, size_t End, bool Constant) { 173 // This loop rearranges sections in [Begin, End) so that all sections 174 // that are equal in terms of equals{Constant,Variable} are contiguous 175 // in [Begin, End). 176 // 177 // The algorithm is quadratic in the worst case, but that is not an 178 // issue in practice because the number of the distinct sections in 179 // each range is usually very small. 180 181 while (Begin < End) { 182 // Divide [Begin, End) into two. Let Mid be the start index of the 183 // second group. 184 auto Bound = 185 std::stable_partition(Sections.begin() + Begin + 1, 186 Sections.begin() + End, [&](InputSection *S) { 187 if (Constant) 188 return equalsConstant(Sections[Begin], S); 189 return equalsVariable(Sections[Begin], S); 190 }); 191 size_t Mid = Bound - Sections.begin(); 192 193 // Now we split [Begin, End) into [Begin, Mid) and [Mid, End) by 194 // updating the sections in [Begin, Mid). We use Mid as an equivalence 195 // class ID because every group ends with a unique index. 196 for (size_t I = Begin; I < Mid; ++I) 197 Sections[I]->Class[Next] = Mid; 198 199 // If we created a group, we need to iterate the main loop again. 200 if (Mid != End) 201 Repeat = true; 202 203 Begin = Mid; 204 } 205 } 206 207 // Compare two lists of relocations. 208 template <class ELFT> 209 template <class RelTy> 210 bool ICF<ELFT>::constantEq(ArrayRef<RelTy> RelsA, ArrayRef<RelTy> RelsB) { 211 auto Eq = [](const RelTy &A, const RelTy &B) { 212 return A.r_offset == B.r_offset && 213 A.getType(Config->Mips64EL) == B.getType(Config->Mips64EL) && 214 getAddend<ELFT>(A) == getAddend<ELFT>(B); 215 }; 216 217 return RelsA.size() == RelsB.size() && 218 std::equal(RelsA.begin(), RelsA.end(), RelsB.begin(), Eq); 219 } 220 221 // Compare "non-moving" part of two InputSections, namely everything 222 // except relocation targets. 223 template <class ELFT> 224 bool ICF<ELFT>::equalsConstant(const InputSection *A, const InputSection *B) { 225 if (A->NumRelocations != B->NumRelocations || A->Flags != B->Flags || 226 A->template getSize<ELFT>() != B->template getSize<ELFT>() || 227 A->Data != B->Data) 228 return false; 229 230 if (A->AreRelocsRela) 231 return constantEq(A->template relas<ELFT>(), B->template relas<ELFT>()); 232 return constantEq(A->template rels<ELFT>(), B->template rels<ELFT>()); 233 } 234 235 // Compare two lists of relocations. Returns true if all pairs of 236 // relocations point to the same section in terms of ICF. 237 template <class ELFT> 238 template <class RelTy> 239 bool ICF<ELFT>::variableEq(const InputSection *A, ArrayRef<RelTy> RelsA, 240 const InputSection *B, ArrayRef<RelTy> RelsB) { 241 auto Eq = [&](const RelTy &RA, const RelTy &RB) { 242 // The two sections must be identical. 243 SymbolBody &SA = A->template getFile<ELFT>()->getRelocTargetSym(RA); 244 SymbolBody &SB = B->template getFile<ELFT>()->getRelocTargetSym(RB); 245 if (&SA == &SB) 246 return true; 247 248 auto *DA = dyn_cast<DefinedRegular<ELFT>>(&SA); 249 auto *DB = dyn_cast<DefinedRegular<ELFT>>(&SB); 250 if (!DA || !DB) 251 return false; 252 if (DA->Value != DB->Value) 253 return false; 254 255 // Either both symbols must be absolute... 256 if (!DA->Section || !DB->Section) 257 return !DA->Section && !DB->Section; 258 259 // Or the two sections must be in the same equivalence class. 260 auto *X = dyn_cast<InputSection>(DA->Section); 261 auto *Y = dyn_cast<InputSection>(DB->Section); 262 if (!X || !Y) 263 return false; 264 265 // Ineligible sections are in the special equivalence class 0. 266 // They can never be the same in terms of the equivalence class. 267 if (X->Class[Current] == 0) 268 return false; 269 270 return X->Class[Current] == Y->Class[Current]; 271 }; 272 273 return std::equal(RelsA.begin(), RelsA.end(), RelsB.begin(), Eq); 274 } 275 276 // Compare "moving" part of two InputSections, namely relocation targets. 277 template <class ELFT> 278 bool ICF<ELFT>::equalsVariable(const InputSection *A, const InputSection *B) { 279 if (A->AreRelocsRela) 280 return variableEq(A, A->template relas<ELFT>(), B, 281 B->template relas<ELFT>()); 282 return variableEq(A, A->template rels<ELFT>(), B, B->template rels<ELFT>()); 283 } 284 285 template <class ELFT> size_t ICF<ELFT>::findBoundary(size_t Begin, size_t End) { 286 uint32_t Class = Sections[Begin]->Class[Current]; 287 for (size_t I = Begin + 1; I < End; ++I) 288 if (Class != Sections[I]->Class[Current]) 289 return I; 290 return End; 291 } 292 293 // Sections in the same equivalence class are contiguous in Sections 294 // vector. Therefore, Sections vector can be considered as contiguous 295 // groups of sections, grouped by the class. 296 // 297 // This function calls Fn on every group that starts within [Begin, End). 298 // Note that a group must start in that range but doesn't necessarily 299 // have to end before End. 300 template <class ELFT> 301 void ICF<ELFT>::forEachClassRange(size_t Begin, size_t End, 302 std::function<void(size_t, size_t)> Fn) { 303 if (Begin > 0) 304 Begin = findBoundary(Begin - 1, End); 305 306 while (Begin < End) { 307 size_t Mid = findBoundary(Begin, Sections.size()); 308 Fn(Begin, Mid); 309 Begin = Mid; 310 } 311 } 312 313 // Call Fn on each equivalence class. 314 template <class ELFT> 315 void ICF<ELFT>::forEachClass(std::function<void(size_t, size_t)> Fn) { 316 // If threading is disabled or the number of sections are 317 // too small to use threading, call Fn sequentially. 318 if (!Config->Threads || Sections.size() < 1024) { 319 forEachClassRange(0, Sections.size(), Fn); 320 ++Cnt; 321 return; 322 } 323 324 Current = Cnt % 2; 325 Next = (Cnt + 1) % 2; 326 327 // Split sections into 256 shards and call Fn in parallel. 328 size_t NumShards = 256; 329 size_t Step = Sections.size() / NumShards; 330 forLoop(0, NumShards, 331 [&](size_t I) { forEachClassRange(I * Step, (I + 1) * Step, Fn); }); 332 forEachClassRange(Step * NumShards, Sections.size(), Fn); 333 ++Cnt; 334 } 335 336 // The main function of ICF. 337 template <class ELFT> void ICF<ELFT>::run() { 338 // Collect sections to merge. 339 for (InputSectionBase *Sec : Symtab<ELFT>::X->Sections) 340 if (auto *S = dyn_cast<InputSection>(Sec)) 341 if (isEligible<ELFT>(S)) 342 Sections.push_back(S); 343 344 // Initially, we use hash values to partition sections. 345 for (InputSection *S : Sections) 346 // Set MSB to 1 to avoid collisions with non-hash IDs. 347 S->Class[0] = getHash<ELFT>(S) | (1 << 31); 348 349 // From now on, sections in Sections vector are ordered so that sections 350 // in the same equivalence class are consecutive in the vector. 351 std::stable_sort(Sections.begin(), Sections.end(), 352 [](InputSection *A, InputSection *B) { 353 return A->Class[0] < B->Class[0]; 354 }); 355 356 // Compare static contents and assign unique IDs for each static content. 357 forEachClass([&](size_t Begin, size_t End) { segregate(Begin, End, true); }); 358 359 // Split groups by comparing relocations until convergence is obtained. 360 do { 361 Repeat = false; 362 forEachClass( 363 [&](size_t Begin, size_t End) { segregate(Begin, End, false); }); 364 } while (Repeat); 365 366 log("ICF needed " + Twine(Cnt) + " iterations"); 367 368 // Merge sections by the equivalence class. 369 forEachClass([&](size_t Begin, size_t End) { 370 if (End - Begin == 1) 371 return; 372 373 log("selected " + Sections[Begin]->Name); 374 for (size_t I = Begin + 1; I < End; ++I) { 375 log(" removed " + Sections[I]->Name); 376 Sections[Begin]->replace(Sections[I]); 377 } 378 }); 379 } 380 381 // ICF entry point function. 382 template <class ELFT> void elf::doIcf() { ICF<ELFT>().run(); } 383 384 template void elf::doIcf<ELF32LE>(); 385 template void elf::doIcf<ELF32BE>(); 386 template void elf::doIcf<ELF64LE>(); 387 template void elf::doIcf<ELF64BE>(); 388