code-stubs-ia32.h 20.8 KB
Newer Older
1
// Copyright 2011 the V8 project authors. All rights reserved.
2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30
// Redistribution and use in source and binary forms, with or without
// modification, are permitted provided that the following conditions are
// met:
//
//     * Redistributions of source code must retain the above copyright
//       notice, this list of conditions and the following disclaimer.
//     * Redistributions in binary form must reproduce the above
//       copyright notice, this list of conditions and the following
//       disclaimer in the documentation and/or other materials provided
//       with the distribution.
//     * Neither the name of Google Inc. nor the names of its
//       contributors may be used to endorse or promote products derived
//       from this software without specific prior written permission.
//
// THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
// "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
// LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
// A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
// OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
// SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
// LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
// DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
// THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
// (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
// OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.

#ifndef V8_IA32_CODE_STUBS_IA32_H_
#define V8_IA32_CODE_STUBS_IA32_H_

31 32
#include "macro-assembler.h"
#include "code-stubs.h"
33 34 35 36 37 38
#include "ic-inl.h"

namespace v8 {
namespace internal {


39 40 41 42
void ArrayNativeCode(MacroAssembler* masm,
                     bool construct_call,
                     Label* call_generic_code);

43 44
// Compute a transcendental math function natively, or call the
// TranscendentalCache runtime function.
45
class TranscendentalCacheStub: public PlatformCodeStub {
46
 public:
47 48 49 50
  enum ArgumentType {
    TAGGED = 0,
    UNTAGGED = 1 << TranscendentalCache::kTranscendentalTypeBits
  };
51

52 53
  TranscendentalCacheStub(TranscendentalCache::Type type,
                          ArgumentType argument_type)
54
      : type_(type), argument_type_(argument_type) {}
55
  void Generate(MacroAssembler* masm);
56 57
  static void GenerateOperation(MacroAssembler* masm,
                                TranscendentalCache::Type type);
58 59
 private:
  TranscendentalCache::Type type_;
60
  ArgumentType argument_type_;
61

62 63
  Major MajorKey() { return TranscendentalCache; }
  int MinorKey() { return type_ | argument_type_; }
64 65 66 67
  Runtime::FunctionId RuntimeFunction();
};


68
class StoreBufferOverflowStub: public PlatformCodeStub {
69 70
 public:
  explicit StoreBufferOverflowStub(SaveFPRegsMode save_fp)
71 72 73
      : save_doubles_(save_fp) {
    ASSERT(CpuFeatures::IsSafeForSnapshot(SSE2) || save_fp == kDontSaveFPRegs);
  }
74 75 76

  void Generate(MacroAssembler* masm);

77
  virtual bool IsPregenerated(Isolate* isolate) V8_OVERRIDE { return true; }
78
  static void GenerateFixedRegStubsAheadOfTime(Isolate* isolate);
79 80 81 82 83 84 85 86 87 88
  virtual bool SometimesSetsUpAFrame() { return false; }

 private:
  SaveFPRegsMode save_doubles_;

  Major MajorKey() { return StoreBufferOverflow; }
  int MinorKey() { return (save_doubles_ == kSaveFPRegs) ? 1 : 0; }
};


89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111
class StringHelper : public AllStatic {
 public:
  // Generate code for copying characters using a simple loop. This should only
  // be used in places where the number of characters is small and the
  // additional setup and checking in GenerateCopyCharactersREP adds too much
  // overhead. Copying of overlapping regions is not supported.
  static void GenerateCopyCharacters(MacroAssembler* masm,
                                     Register dest,
                                     Register src,
                                     Register count,
                                     Register scratch,
                                     bool ascii);

  // Generate code for copying characters using the rep movs instruction.
  // Copies ecx characters from esi to edi. Copying of overlapping regions is
  // not supported.
  static void GenerateCopyCharactersREP(MacroAssembler* masm,
                                        Register dest,     // Must be edi.
                                        Register src,      // Must be esi.
                                        Register count,    // Must be ecx.
                                        Register scratch,  // Neither of above.
                                        bool ascii);

112
  // Probe the string table for a two character string. If the string
113 114 115 116
  // requires non-standard hashing a jump to the label not_probed is
  // performed and registers c1 and c2 are preserved. In all other
  // cases they are clobbered. If the string is not found by probing a
  // jump to the label not_found is performed. This jump does not
117
  // guarantee that the string is not in the string table. If the
118 119
  // string is found the code falls through with the string in
  // register eax.
120
  static void GenerateTwoCharacterStringTableProbe(MacroAssembler* masm,
121 122 123 124 125
                                                   Register c1,
                                                   Register c2,
                                                   Register scratch1,
                                                   Register scratch2,
                                                   Register scratch3,
126
                                                   Label* not_probed,
127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146
                                                   Label* not_found);

  // Generate string hash.
  static void GenerateHashInit(MacroAssembler* masm,
                               Register hash,
                               Register character,
                               Register scratch);
  static void GenerateHashAddCharacter(MacroAssembler* masm,
                                       Register hash,
                                       Register character,
                                       Register scratch);
  static void GenerateHashGetHash(MacroAssembler* masm,
                                  Register hash,
                                  Register scratch);

 private:
  DISALLOW_IMPLICIT_CONSTRUCTORS(StringHelper);
};


147
class StringAddStub: public PlatformCodeStub {
148
 public:
149
  explicit StringAddStub(StringAddFlags flags) : flags_(flags) {}
150 151 152

 private:
  Major MajorKey() { return StringAdd; }
153
  int MinorKey() { return flags_; }
154 155 156

  void Generate(MacroAssembler* masm);

157 158 159 160 161 162 163 164
  void GenerateConvertArgument(MacroAssembler* masm,
                               int stack_offset,
                               Register arg,
                               Register scratch1,
                               Register scratch2,
                               Register scratch3,
                               Label* slow);

165 166 167
  void GenerateRegisterArgsPush(MacroAssembler* masm);
  void GenerateRegisterArgsPop(MacroAssembler* masm, Register temp);

168
  const StringAddFlags flags_;
169 170 171
};


172
class SubStringStub: public PlatformCodeStub {
173 174 175 176 177 178 179 180 181 182 183
 public:
  SubStringStub() {}

 private:
  Major MajorKey() { return SubString; }
  int MinorKey() { return 0; }

  void Generate(MacroAssembler* masm);
};


184
class StringCompareStub: public PlatformCodeStub {
185
 public:
186
  StringCompareStub() { }
187

188
  // Compares two flat ASCII strings and returns result in eax.
189 190 191 192 193 194 195
  static void GenerateCompareFlatAsciiStrings(MacroAssembler* masm,
                                              Register left,
                                              Register right,
                                              Register scratch1,
                                              Register scratch2,
                                              Register scratch3);

196 197 198 199 200 201 202 203
  // Compares two flat ASCII strings for equality and returns result
  // in eax.
  static void GenerateFlatAsciiStringEquals(MacroAssembler* masm,
                                            Register left,
                                            Register right,
                                            Register scratch1,
                                            Register scratch2);

204
 private:
205 206 207
  virtual Major MajorKey() { return StringCompare; }
  virtual int MinorKey() { return 0; }
  virtual void Generate(MacroAssembler* masm);
208

209 210 211 212 213 214 215 216
  static void GenerateAsciiCharsCompareLoop(
      MacroAssembler* masm,
      Register left,
      Register right,
      Register length,
      Register scratch,
      Label* chars_not_equal,
      Label::Distance chars_not_equal_near = Label::kFar);
217 218 219
};


220
class NumberToStringStub: public PlatformCodeStub {
221 222 223 224 225 226 227 228 229 230 231 232 233 234 235 236 237 238 239 240 241 242
 public:
  NumberToStringStub() { }

  // Generate code to do a lookup in the number string cache. If the number in
  // the register object is found in the cache the generated code falls through
  // with the result in the result register. The object and the result register
  // can be the same. If the number is not found in the cache the code jumps to
  // the label not_found with only the content of register object unchanged.
  static void GenerateLookupNumberStringCache(MacroAssembler* masm,
                                              Register object,
                                              Register result,
                                              Register scratch1,
                                              Register scratch2,
                                              Label* not_found);

 private:
  Major MajorKey() { return NumberToString; }
  int MinorKey() { return 0; }

  void Generate(MacroAssembler* masm);
};

243

244
class NameDictionaryLookupStub: public PlatformCodeStub {
245 246 247
 public:
  enum LookupMode { POSITIVE_LOOKUP, NEGATIVE_LOOKUP };

248 249 250 251
  NameDictionaryLookupStub(Register dictionary,
                           Register result,
                           Register index,
                           LookupMode mode)
252 253 254 255
      : dictionary_(dictionary), result_(result), index_(index), mode_(mode) { }

  void Generate(MacroAssembler* masm);

256 257 258 259
  static void GenerateNegativeLookup(MacroAssembler* masm,
                                     Label* miss,
                                     Label* done,
                                     Register properties,
260
                                     Handle<Name> name,
261 262
                                     Register r0);

263 264 265 266 267 268 269 270
  static void GeneratePositiveLookup(MacroAssembler* masm,
                                     Label* miss,
                                     Label* done,
                                     Register elements,
                                     Register name,
                                     Register r0,
                                     Register r1);

271 272
  virtual bool SometimesSetsUpAFrame() { return false; }

273 274 275 276 277
 private:
  static const int kInlinedProbes = 4;
  static const int kTotalProbes = 20;

  static const int kCapacityOffset =
278 279
      NameDictionary::kHeaderSize +
      NameDictionary::kCapacityIndex * kPointerSize;
280 281

  static const int kElementsStartOffset =
282 283
      NameDictionary::kHeaderSize +
      NameDictionary::kElementsStartIndex * kPointerSize;
284

285
  Major MajorKey() { return NameDictionaryLookup; }
286 287 288 289 290 291 292 293 294 295 296 297 298 299 300 301 302 303 304 305

  int MinorKey() {
    return DictionaryBits::encode(dictionary_.code()) |
        ResultBits::encode(result_.code()) |
        IndexBits::encode(index_.code()) |
        LookupModeBits::encode(mode_);
  }

  class DictionaryBits: public BitField<int, 0, 3> {};
  class ResultBits: public BitField<int, 3, 3> {};
  class IndexBits: public BitField<int, 6, 3> {};
  class LookupModeBits: public BitField<LookupMode, 9, 1> {};

  Register dictionary_;
  Register result_;
  Register index_;
  LookupMode mode_;
};


306
class RecordWriteStub: public PlatformCodeStub {
307 308 309 310 311 312 313 314 315 316 317 318 319 320
 public:
  RecordWriteStub(Register object,
                  Register value,
                  Register address,
                  RememberedSetAction remembered_set_action,
                  SaveFPRegsMode fp_mode)
      : object_(object),
        value_(value),
        address_(address),
        remembered_set_action_(remembered_set_action),
        save_fp_regs_mode_(fp_mode),
        regs_(object,   // An input reg.
              address,  // An input reg.
              value) {  // One scratch reg.
321
    ASSERT(CpuFeatures::IsSafeForSnapshot(SSE2) || fp_mode == kDontSaveFPRegs);
322 323 324 325 326 327 328 329
  }

  enum Mode {
    STORE_BUFFER_ONLY,
    INCREMENTAL,
    INCREMENTAL_COMPACTION
  };

330
  virtual bool IsPregenerated(Isolate* isolate) V8_OVERRIDE;
331
  static void GenerateFixedRegStubsAheadOfTime(Isolate* isolate);
332 333 334 335 336 337 338 339 340 341 342 343 344 345 346 347 348 349 350 351 352 353 354 355 356 357 358 359 360 361 362 363 364 365 366 367 368 369 370 371 372 373 374 375 376 377 378 379 380 381 382 383 384 385 386 387 388 389 390 391 392 393 394 395 396 397 398 399 400 401 402 403 404 405 406 407 408 409 410 411 412 413 414 415 416 417 418 419 420 421 422 423 424 425 426 427 428 429 430 431 432 433 434 435 436 437 438 439 440 441 442 443 444 445 446 447 448 449 450 451 452 453 454 455 456 457 458 459 460 461 462 463 464
  virtual bool SometimesSetsUpAFrame() { return false; }

  static const byte kTwoByteNopInstruction = 0x3c;  // Cmpb al, #imm8.
  static const byte kTwoByteJumpInstruction = 0xeb;  // Jmp #imm8.

  static const byte kFiveByteNopInstruction = 0x3d;  // Cmpl eax, #imm32.
  static const byte kFiveByteJumpInstruction = 0xe9;  // Jmp #imm32.

  static Mode GetMode(Code* stub) {
    byte first_instruction = stub->instruction_start()[0];
    byte second_instruction = stub->instruction_start()[2];

    if (first_instruction == kTwoByteJumpInstruction) {
      return INCREMENTAL;
    }

    ASSERT(first_instruction == kTwoByteNopInstruction);

    if (second_instruction == kFiveByteJumpInstruction) {
      return INCREMENTAL_COMPACTION;
    }

    ASSERT(second_instruction == kFiveByteNopInstruction);

    return STORE_BUFFER_ONLY;
  }

  static void Patch(Code* stub, Mode mode) {
    switch (mode) {
      case STORE_BUFFER_ONLY:
        ASSERT(GetMode(stub) == INCREMENTAL ||
               GetMode(stub) == INCREMENTAL_COMPACTION);
        stub->instruction_start()[0] = kTwoByteNopInstruction;
        stub->instruction_start()[2] = kFiveByteNopInstruction;
        break;
      case INCREMENTAL:
        ASSERT(GetMode(stub) == STORE_BUFFER_ONLY);
        stub->instruction_start()[0] = kTwoByteJumpInstruction;
        break;
      case INCREMENTAL_COMPACTION:
        ASSERT(GetMode(stub) == STORE_BUFFER_ONLY);
        stub->instruction_start()[0] = kTwoByteNopInstruction;
        stub->instruction_start()[2] = kFiveByteJumpInstruction;
        break;
    }
    ASSERT(GetMode(stub) == mode);
    CPU::FlushICache(stub->instruction_start(), 7);
  }

 private:
  // This is a helper class for freeing up 3 scratch registers, where the third
  // is always ecx (needed for shift operations).  The input is two registers
  // that must be preserved and one scratch register provided by the caller.
  class RegisterAllocation {
   public:
    RegisterAllocation(Register object,
                       Register address,
                       Register scratch0)
        : object_orig_(object),
          address_orig_(address),
          scratch0_orig_(scratch0),
          object_(object),
          address_(address),
          scratch0_(scratch0) {
      ASSERT(!AreAliased(scratch0, object, address, no_reg));
      scratch1_ = GetRegThatIsNotEcxOr(object_, address_, scratch0_);
      if (scratch0.is(ecx)) {
        scratch0_ = GetRegThatIsNotEcxOr(object_, address_, scratch1_);
      }
      if (object.is(ecx)) {
        object_ = GetRegThatIsNotEcxOr(address_, scratch0_, scratch1_);
      }
      if (address.is(ecx)) {
        address_ = GetRegThatIsNotEcxOr(object_, scratch0_, scratch1_);
      }
      ASSERT(!AreAliased(scratch0_, object_, address_, ecx));
    }

    void Save(MacroAssembler* masm) {
      ASSERT(!address_orig_.is(object_));
      ASSERT(object_.is(object_orig_) || address_.is(address_orig_));
      ASSERT(!AreAliased(object_, address_, scratch1_, scratch0_));
      ASSERT(!AreAliased(object_orig_, address_, scratch1_, scratch0_));
      ASSERT(!AreAliased(object_, address_orig_, scratch1_, scratch0_));
      // We don't have to save scratch0_orig_ because it was given to us as
      // a scratch register.  But if we had to switch to a different reg then
      // we should save the new scratch0_.
      if (!scratch0_.is(scratch0_orig_)) masm->push(scratch0_);
      if (!ecx.is(scratch0_orig_) &&
          !ecx.is(object_orig_) &&
          !ecx.is(address_orig_)) {
        masm->push(ecx);
      }
      masm->push(scratch1_);
      if (!address_.is(address_orig_)) {
        masm->push(address_);
        masm->mov(address_, address_orig_);
      }
      if (!object_.is(object_orig_)) {
        masm->push(object_);
        masm->mov(object_, object_orig_);
      }
    }

    void Restore(MacroAssembler* masm) {
      // These will have been preserved the entire time, so we just need to move
      // them back.  Only in one case is the orig_ reg different from the plain
      // one, since only one of them can alias with ecx.
      if (!object_.is(object_orig_)) {
        masm->mov(object_orig_, object_);
        masm->pop(object_);
      }
      if (!address_.is(address_orig_)) {
        masm->mov(address_orig_, address_);
        masm->pop(address_);
      }
      masm->pop(scratch1_);
      if (!ecx.is(scratch0_orig_) &&
          !ecx.is(object_orig_) &&
          !ecx.is(address_orig_)) {
        masm->pop(ecx);
      }
      if (!scratch0_.is(scratch0_orig_)) masm->pop(scratch0_);
    }

    // If we have to call into C then we need to save and restore all caller-
    // saved registers that were not already preserved.  The caller saved
    // registers are eax, ecx and edx.  The three scratch registers (incl. ecx)
    // will be restored by other means so we don't bother pushing them here.
    void SaveCallerSaveRegisters(MacroAssembler* masm, SaveFPRegsMode mode) {
      if (!scratch0_.is(eax) && !scratch1_.is(eax)) masm->push(eax);
      if (!scratch0_.is(edx) && !scratch1_.is(edx)) masm->push(edx);
      if (mode == kSaveFPRegs) {
465
        CpuFeatureScope scope(masm, SSE2);
466 467
        masm->sub(esp,
                  Immediate(kDoubleSize * (XMMRegister::kNumRegisters - 1)));
468 469 470 471 472 473 474 475 476 477 478
        // Save all XMM registers except XMM0.
        for (int i = XMMRegister::kNumRegisters - 1; i > 0; i--) {
          XMMRegister reg = XMMRegister::from_code(i);
          masm->movdbl(Operand(esp, (i - 1) * kDoubleSize), reg);
        }
      }
    }

    inline void RestoreCallerSaveRegisters(MacroAssembler*masm,
                                           SaveFPRegsMode mode) {
      if (mode == kSaveFPRegs) {
479
        CpuFeatureScope scope(masm, SSE2);
480 481 482 483 484
        // Restore all XMM registers except XMM0.
        for (int i = XMMRegister::kNumRegisters - 1; i > 0; i--) {
          XMMRegister reg = XMMRegister::from_code(i);
          masm->movdbl(reg, Operand(esp, (i - 1) * kDoubleSize));
        }
485
        masm->add(esp,
486 487 488 489 490 491 492 493 494 495 496 497 498 499 500 501 502 503 504 505 506 507 508 509
                  Immediate(kDoubleSize * (XMMRegister::kNumRegisters - 1)));
      }
      if (!scratch0_.is(edx) && !scratch1_.is(edx)) masm->pop(edx);
      if (!scratch0_.is(eax) && !scratch1_.is(eax)) masm->pop(eax);
    }

    inline Register object() { return object_; }
    inline Register address() { return address_; }
    inline Register scratch0() { return scratch0_; }
    inline Register scratch1() { return scratch1_; }

   private:
    Register object_orig_;
    Register address_orig_;
    Register scratch0_orig_;
    Register object_;
    Register address_;
    Register scratch0_;
    Register scratch1_;
    // Third scratch register is always ecx.

    Register GetRegThatIsNotEcxOr(Register r1,
                                  Register r2,
                                  Register r3) {
510
      for (int i = 0; i < Register::NumAllocatableRegisters(); i++) {
511 512 513 514 515 516 517 518 519 520 521 522 523 524 525 526 527 528 529 530 531 532 533 534 535 536 537 538 539 540 541 542 543 544 545 546 547 548 549 550 551 552 553 554 555 556 557 558 559 560 561 562 563 564 565
        Register candidate = Register::FromAllocationIndex(i);
        if (candidate.is(ecx)) continue;
        if (candidate.is(r1)) continue;
        if (candidate.is(r2)) continue;
        if (candidate.is(r3)) continue;
        return candidate;
      }
      UNREACHABLE();
      return no_reg;
    }
    friend class RecordWriteStub;
  };

  enum OnNoNeedToInformIncrementalMarker {
    kReturnOnNoNeedToInformIncrementalMarker,
    kUpdateRememberedSetOnNoNeedToInformIncrementalMarker
  }
;
  void Generate(MacroAssembler* masm);
  void GenerateIncremental(MacroAssembler* masm, Mode mode);
  void CheckNeedsToInformIncrementalMarker(
      MacroAssembler* masm,
      OnNoNeedToInformIncrementalMarker on_no_need,
      Mode mode);
  void InformIncrementalMarker(MacroAssembler* masm, Mode mode);

  Major MajorKey() { return RecordWrite; }

  int MinorKey() {
    return ObjectBits::encode(object_.code()) |
        ValueBits::encode(value_.code()) |
        AddressBits::encode(address_.code()) |
        RememberedSetActionBits::encode(remembered_set_action_) |
        SaveFPRegsModeBits::encode(save_fp_regs_mode_);
  }

  void Activate(Code* code) {
    code->GetHeap()->incremental_marking()->ActivateGeneratedStub(code);
  }

  class ObjectBits: public BitField<int, 0, 3> {};
  class ValueBits: public BitField<int, 3, 3> {};
  class AddressBits: public BitField<int, 6, 3> {};
  class RememberedSetActionBits: public BitField<RememberedSetAction, 9, 1> {};
  class SaveFPRegsModeBits: public BitField<SaveFPRegsMode, 10, 1> {};

  Register object_;
  Register value_;
  Register address_;
  RememberedSetAction remembered_set_action_;
  SaveFPRegsMode save_fp_regs_mode_;
  RegisterAllocation regs_;
};


566 567 568
} }  // namespace v8::internal

#endif  // V8_IA32_CODE_STUBS_IA32_H_