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| 1 // Copyright 2012 the V8 project authors. All rights reserved. | 1 // Copyright 2012 the V8 project authors. All rights reserved. |
| 2 // Redistribution and use in source and binary forms, with or without | 2 // Redistribution and use in source and binary forms, with or without |
| 3 // modification, are permitted provided that the following conditions are | 3 // modification, are permitted provided that the following conditions are |
| 4 // met: | 4 // met: |
| 5 // | 5 // |
| 6 // * Redistributions of source code must retain the above copyright | 6 // * Redistributions of source code must retain the above copyright |
| 7 // notice, this list of conditions and the following disclaimer. | 7 // notice, this list of conditions and the following disclaimer. |
| 8 // * Redistributions in binary form must reproduce the above | 8 // * Redistributions in binary form must reproduce the above |
| 9 // copyright notice, this list of conditions and the following | 9 // copyright notice, this list of conditions and the following |
| 10 // disclaimer in the documentation and/or other materials provided | 10 // disclaimer in the documentation and/or other materials provided |
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| 335 void FullCodeGenerator::EmitBackEdgeBookkeeping(IterationStatement* stmt, | 335 void FullCodeGenerator::EmitBackEdgeBookkeeping(IterationStatement* stmt, |
| 336 Label* back_edge_target) { | 336 Label* back_edge_target) { |
| 337 Comment cmnt(masm_, "[ Back edge bookkeeping"); | 337 Comment cmnt(masm_, "[ Back edge bookkeeping"); |
| 338 Label ok; | 338 Label ok; |
| 339 | 339 |
| 340 int weight = 1; | 340 int weight = 1; |
| 341 if (FLAG_weighted_back_edges) { | 341 if (FLAG_weighted_back_edges) { |
| 342 ASSERT(back_edge_target->is_bound()); | 342 ASSERT(back_edge_target->is_bound()); |
| 343 int distance = masm_->SizeOfCodeGeneratedSince(back_edge_target); | 343 int distance = masm_->SizeOfCodeGeneratedSince(back_edge_target); |
| 344 weight = Min(kMaxBackEdgeWeight, | 344 weight = Min(kMaxBackEdgeWeight, |
| 345 Max(1, distance / kCodeSizeMultiplier)); | 345 Max(1, distance / kBackEdgeDistanceUnit)); |
| 346 } | 346 } |
| 347 EmitProfilingCounterDecrement(weight); | 347 EmitProfilingCounterDecrement(weight); |
| 348 __ j(positive, &ok, Label::kNear); | 348 __ j(positive, &ok, Label::kNear); |
| 349 InterruptStub stub; | 349 InterruptStub stub; |
| 350 __ CallStub(&stub); | 350 __ CallStub(&stub); |
| 351 | 351 |
| 352 // Record a mapping of this PC offset to the OSR id. This is used to find | 352 // Record a mapping of this PC offset to the OSR id. This is used to find |
| 353 // the AST id from the unoptimized code in order to use it as a key into | 353 // the AST id from the unoptimized code in order to use it as a key into |
| 354 // the deoptimization input data found in the optimized code. | 354 // the deoptimization input data found in the optimized code. |
| 355 RecordBackEdge(stmt->OsrEntryId()); | 355 RecordBackEdge(stmt->OsrEntryId()); |
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| 377 __ CallRuntime(Runtime::kTraceExit, 1); | 377 __ CallRuntime(Runtime::kTraceExit, 1); |
| 378 } | 378 } |
| 379 if (FLAG_interrupt_at_exit || FLAG_self_optimization) { | 379 if (FLAG_interrupt_at_exit || FLAG_self_optimization) { |
| 380 // Pretend that the exit is a backwards jump to the entry. | 380 // Pretend that the exit is a backwards jump to the entry. |
| 381 int weight = 1; | 381 int weight = 1; |
| 382 if (info_->ShouldSelfOptimize()) { | 382 if (info_->ShouldSelfOptimize()) { |
| 383 weight = FLAG_interrupt_budget / FLAG_self_opt_count; | 383 weight = FLAG_interrupt_budget / FLAG_self_opt_count; |
| 384 } else if (FLAG_weighted_back_edges) { | 384 } else if (FLAG_weighted_back_edges) { |
| 385 int distance = masm_->pc_offset(); | 385 int distance = masm_->pc_offset(); |
| 386 weight = Min(kMaxBackEdgeWeight, | 386 weight = Min(kMaxBackEdgeWeight, |
| 387 Max(1, distance / kCodeSizeMultiplier)); | 387 Max(1, distance / kBackEdgeDistanceUnit)); |
| 388 } | 388 } |
| 389 EmitProfilingCounterDecrement(weight); | 389 EmitProfilingCounterDecrement(weight); |
| 390 Label ok; | 390 Label ok; |
| 391 __ j(positive, &ok, Label::kNear); | 391 __ j(positive, &ok, Label::kNear); |
| 392 __ push(eax); | 392 __ push(eax); |
| 393 if (info_->ShouldSelfOptimize() && FLAG_direct_self_opt) { | 393 if (info_->ShouldSelfOptimize() && FLAG_direct_self_opt) { |
| 394 __ push(Operand(ebp, JavaScriptFrameConstants::kFunctionOffset)); | 394 __ push(Operand(ebp, JavaScriptFrameConstants::kFunctionOffset)); |
| 395 __ CallRuntime(Runtime::kOptimizeFunctionOnNextCall, 1); | 395 __ CallRuntime(Runtime::kOptimizeFunctionOnNextCall, 1); |
| 396 } else { | 396 } else { |
| 397 InterruptStub stub; | 397 InterruptStub stub; |
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| 1781 for (int i = 0; i < length; i++) { | 1781 for (int i = 0; i < length; i++) { |
| 1782 Expression* subexpr = subexprs->at(i); | 1782 Expression* subexpr = subexprs->at(i); |
| 1783 // If the subexpression is a literal or a simple materialized literal it | 1783 // If the subexpression is a literal or a simple materialized literal it |
| 1784 // is already set in the cloned array. | 1784 // is already set in the cloned array. |
| 1785 if (subexpr->AsLiteral() != NULL || | 1785 if (subexpr->AsLiteral() != NULL || |
| 1786 CompileTimeValue::IsCompileTimeValue(subexpr)) { | 1786 CompileTimeValue::IsCompileTimeValue(subexpr)) { |
| 1787 continue; | 1787 continue; |
| 1788 } | 1788 } |
| 1789 | 1789 |
| 1790 if (!result_saved) { | 1790 if (!result_saved) { |
| 1791 __ push(eax); // array literal. | 1791 __ push(eax); |
| 1792 __ push(Immediate(Smi::FromInt(expr->literal_index()))); | |
| 1793 result_saved = true; | 1792 result_saved = true; |
| 1794 } | 1793 } |
| 1795 VisitForAccumulatorValue(subexpr); | 1794 VisitForAccumulatorValue(subexpr); |
| 1796 | 1795 |
| 1797 if (IsFastObjectElementsKind(constant_elements_kind)) { | 1796 if (IsFastObjectElementsKind(constant_elements_kind)) { |
| 1798 // Fast-case array literal with ElementsKind of FAST_*_ELEMENTS, they | 1797 // Fast-case array literal with ElementsKind of FAST_*_ELEMENTS, they |
| 1799 // cannot transition and don't need to call the runtime stub. | 1798 // cannot transition and don't need to call the runtime stub. |
| 1800 int offset = FixedArray::kHeaderSize + (i * kPointerSize); | 1799 int offset = FixedArray::kHeaderSize + (i * kPointerSize); |
| 1801 __ mov(ebx, Operand(esp, kPointerSize)); // Copy of array literal. | 1800 __ mov(ebx, Operand(esp, 0)); // Copy of array literal. |
| 1802 __ mov(ebx, FieldOperand(ebx, JSObject::kElementsOffset)); | 1801 __ mov(ebx, FieldOperand(ebx, JSObject::kElementsOffset)); |
| 1803 // Store the subexpression value in the array's elements. | 1802 // Store the subexpression value in the array's elements. |
| 1804 __ mov(FieldOperand(ebx, offset), result_register()); | 1803 __ mov(FieldOperand(ebx, offset), result_register()); |
| 1805 // Update the write barrier for the array store. | 1804 // Update the write barrier for the array store. |
| 1806 __ RecordWriteField(ebx, offset, result_register(), ecx, | 1805 __ RecordWriteField(ebx, offset, result_register(), ecx, |
| 1807 kDontSaveFPRegs, | 1806 kDontSaveFPRegs, |
| 1808 EMIT_REMEMBERED_SET, | 1807 EMIT_REMEMBERED_SET, |
| 1809 INLINE_SMI_CHECK); | 1808 INLINE_SMI_CHECK); |
| 1810 } else { | 1809 } else { |
| 1811 // Store the subexpression value in the array's elements. | 1810 // Store the subexpression value in the array's elements. |
| 1811 __ mov(ebx, Operand(esp, 0)); // Copy of array literal. |
| 1812 __ mov(edi, FieldOperand(ebx, JSObject::kMapOffset)); |
| 1812 __ mov(ecx, Immediate(Smi::FromInt(i))); | 1813 __ mov(ecx, Immediate(Smi::FromInt(i))); |
| 1814 __ mov(edx, Immediate(Smi::FromInt(expr->literal_index()))); |
| 1813 StoreArrayLiteralElementStub stub; | 1815 StoreArrayLiteralElementStub stub; |
| 1814 __ CallStub(&stub); | 1816 __ CallStub(&stub); |
| 1815 } | 1817 } |
| 1816 | 1818 |
| 1817 PrepareForBailoutForId(expr->GetIdForElement(i), NO_REGISTERS); | 1819 PrepareForBailoutForId(expr->GetIdForElement(i), NO_REGISTERS); |
| 1818 } | 1820 } |
| 1819 | 1821 |
| 1820 if (result_saved) { | 1822 if (result_saved) { |
| 1821 __ add(esp, Immediate(kPointerSize)); // literal index | |
| 1822 context()->PlugTOS(); | 1823 context()->PlugTOS(); |
| 1823 } else { | 1824 } else { |
| 1824 context()->Plug(eax); | 1825 context()->Plug(eax); |
| 1825 } | 1826 } |
| 1826 } | 1827 } |
| 1827 | 1828 |
| 1828 | 1829 |
| 1829 void FullCodeGenerator::VisitAssignment(Assignment* expr) { | 1830 void FullCodeGenerator::VisitAssignment(Assignment* expr) { |
| 1830 Comment cmnt(masm_, "[ Assignment"); | 1831 Comment cmnt(masm_, "[ Assignment"); |
| 1831 // Invalid left-hand sides are rewritten to have a 'throw ReferenceError' | 1832 // Invalid left-hand sides are rewritten to have a 'throw ReferenceError' |
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| 4893 *stack_depth = 0; | 4894 *stack_depth = 0; |
| 4894 *context_length = 0; | 4895 *context_length = 0; |
| 4895 return previous_; | 4896 return previous_; |
| 4896 } | 4897 } |
| 4897 | 4898 |
| 4898 #undef __ | 4899 #undef __ |
| 4899 | 4900 |
| 4900 } } // namespace v8::internal | 4901 } } // namespace v8::internal |
| 4901 | 4902 |
| 4902 #endif // V8_TARGET_ARCH_IA32 | 4903 #endif // V8_TARGET_ARCH_IA32 |
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