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| 1 // Copyright 2010 the V8 project authors. All rights reserved. | 1 // Copyright 2010 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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| 5416 } | 5416 } |
| 5417 | 5417 |
| 5418 } else if (op == Token::TYPEOF) { | 5418 } else if (op == Token::TYPEOF) { |
| 5419 // Special case for loading the typeof expression; see comment on | 5419 // Special case for loading the typeof expression; see comment on |
| 5420 // LoadTypeofExpression(). | 5420 // LoadTypeofExpression(). |
| 5421 LoadTypeofExpression(node->expression()); | 5421 LoadTypeofExpression(node->expression()); |
| 5422 frame_->CallRuntime(Runtime::kTypeof, 1); | 5422 frame_->CallRuntime(Runtime::kTypeof, 1); |
| 5423 frame_->EmitPush(r0); // r0 has result | 5423 frame_->EmitPush(r0); // r0 has result |
| 5424 | 5424 |
| 5425 } else { | 5425 } else { |
| 5426 bool overwrite = | 5426 bool can_overwrite = |
| 5427 (node->expression()->AsBinaryOperation() != NULL && | 5427 (node->expression()->AsBinaryOperation() != NULL && |
| 5428 node->expression()->AsBinaryOperation()->ResultOverwriteAllowed()); | 5428 node->expression()->AsBinaryOperation()->ResultOverwriteAllowed()); |
| 5429 UnaryOverwriteMode overwrite = |
| 5430 can_overwrite ? UNARY_OVERWRITE : UNARY_NO_OVERWRITE; |
| 5431 |
| 5432 bool no_negative_zero = node->expression()->no_negative_zero(); |
| 5429 Load(node->expression()); | 5433 Load(node->expression()); |
| 5430 switch (op) { | 5434 switch (op) { |
| 5431 case Token::NOT: | 5435 case Token::NOT: |
| 5432 case Token::DELETE: | 5436 case Token::DELETE: |
| 5433 case Token::TYPEOF: | 5437 case Token::TYPEOF: |
| 5434 UNREACHABLE(); // handled above | 5438 UNREACHABLE(); // handled above |
| 5435 break; | 5439 break; |
| 5436 | 5440 |
| 5437 case Token::SUB: { | 5441 case Token::SUB: { |
| 5438 frame_->PopToR0(); | 5442 frame_->PopToR0(); |
| 5439 GenericUnaryOpStub stub(Token::SUB, overwrite); | 5443 GenericUnaryOpStub stub( |
| 5444 Token::SUB, |
| 5445 overwrite, |
| 5446 no_negative_zero ? kIgnoreNegativeZero : kStrictNegativeZero); |
| 5440 frame_->CallStub(&stub, 0); | 5447 frame_->CallStub(&stub, 0); |
| 5441 frame_->EmitPush(r0); // r0 has result | 5448 frame_->EmitPush(r0); // r0 has result |
| 5442 break; | 5449 break; |
| 5443 } | 5450 } |
| 5444 | 5451 |
| 5445 case Token::BIT_NOT: { | 5452 case Token::BIT_NOT: { |
| 5446 Register tos = frame_->PopToRegister(); | 5453 Register tos = frame_->PopToRegister(); |
| 5447 JumpTarget not_smi_label; | 5454 JumpTarget not_smi_label; |
| 5448 JumpTarget continue_label; | 5455 JumpTarget continue_label; |
| 5449 // Smi check. | 5456 // Smi check. |
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| 8892 __ LoadRoot(heap_number_map, Heap::kHeapNumberMapRootIndex); | 8899 __ LoadRoot(heap_number_map, Heap::kHeapNumberMapRootIndex); |
| 8893 | 8900 |
| 8894 if (op_ == Token::SUB) { | 8901 if (op_ == Token::SUB) { |
| 8895 // Check whether the value is a smi. | 8902 // Check whether the value is a smi. |
| 8896 Label try_float; | 8903 Label try_float; |
| 8897 __ tst(r0, Operand(kSmiTagMask)); | 8904 __ tst(r0, Operand(kSmiTagMask)); |
| 8898 __ b(ne, &try_float); | 8905 __ b(ne, &try_float); |
| 8899 | 8906 |
| 8900 // Go slow case if the value of the expression is zero | 8907 // Go slow case if the value of the expression is zero |
| 8901 // to make sure that we switch between 0 and -0. | 8908 // to make sure that we switch between 0 and -0. |
| 8902 __ cmp(r0, Operand(0)); | 8909 if (negative_zero_ == kStrictNegativeZero) { |
| 8903 __ b(eq, &slow); | 8910 // If we have to check for zero, then we can check for the max negative |
| 8904 | 8911 // smi while we are at it. |
| 8905 // The value of the expression is a smi that is not zero. Try | 8912 __ bic(ip, r0, Operand(0x80000000), SetCC); |
| 8906 // optimistic subtraction '0 - value'. | 8913 __ b(eq, &slow); |
| 8907 __ rsb(r1, r0, Operand(0), SetCC); | 8914 __ rsb(r0, r0, Operand(0)); |
| 8908 __ b(vs, &slow); | 8915 __ StubReturn(1); |
| 8909 | 8916 } else { |
| 8910 __ mov(r0, Operand(r1)); // Set r0 to result. | 8917 // The value of the expression is a smi and 0 is OK for -0. Try |
| 8911 __ b(&done); | 8918 // optimistic subtraction '0 - value'. |
| 8919 __ rsb(r0, r0, Operand(0), SetCC); |
| 8920 __ StubReturn(1, vc); |
| 8921 // We don't have to reverse the optimistic neg since the only case |
| 8922 // where we fall through is the minimum negative Smi, which is the case |
| 8923 // where the neg leaves the register unchanged. |
| 8924 __ jmp(&slow); // Go slow on max negative Smi. |
| 8925 } |
| 8912 | 8926 |
| 8913 __ bind(&try_float); | 8927 __ bind(&try_float); |
| 8914 __ ldr(r1, FieldMemOperand(r0, HeapObject::kMapOffset)); | 8928 __ ldr(r1, FieldMemOperand(r0, HeapObject::kMapOffset)); |
| 8915 __ AssertRegisterIsRoot(heap_number_map, Heap::kHeapNumberMapRootIndex); | 8929 __ AssertRegisterIsRoot(heap_number_map, Heap::kHeapNumberMapRootIndex); |
| 8916 __ cmp(r1, heap_number_map); | 8930 __ cmp(r1, heap_number_map); |
| 8917 __ b(ne, &slow); | 8931 __ b(ne, &slow); |
| 8918 // r0 is a heap number. Get a new heap number in r1. | 8932 // r0 is a heap number. Get a new heap number in r1. |
| 8919 if (overwrite_) { | 8933 if (overwrite_ == UNARY_OVERWRITE) { |
| 8920 __ ldr(r2, FieldMemOperand(r0, HeapNumber::kExponentOffset)); | 8934 __ ldr(r2, FieldMemOperand(r0, HeapNumber::kExponentOffset)); |
| 8921 __ eor(r2, r2, Operand(HeapNumber::kSignMask)); // Flip sign. | 8935 __ eor(r2, r2, Operand(HeapNumber::kSignMask)); // Flip sign. |
| 8922 __ str(r2, FieldMemOperand(r0, HeapNumber::kExponentOffset)); | 8936 __ str(r2, FieldMemOperand(r0, HeapNumber::kExponentOffset)); |
| 8923 } else { | 8937 } else { |
| 8924 __ AllocateHeapNumber(r1, r2, r3, r6, &slow); | 8938 __ AllocateHeapNumber(r1, r2, r3, r6, &slow); |
| 8925 __ ldr(r3, FieldMemOperand(r0, HeapNumber::kMantissaOffset)); | 8939 __ ldr(r3, FieldMemOperand(r0, HeapNumber::kMantissaOffset)); |
| 8926 __ ldr(r2, FieldMemOperand(r0, HeapNumber::kExponentOffset)); | 8940 __ ldr(r2, FieldMemOperand(r0, HeapNumber::kExponentOffset)); |
| 8927 __ str(r3, FieldMemOperand(r1, HeapNumber::kMantissaOffset)); | 8941 __ str(r3, FieldMemOperand(r1, HeapNumber::kMantissaOffset)); |
| 8928 __ eor(r2, r2, Operand(HeapNumber::kSignMask)); // Flip sign. | 8942 __ eor(r2, r2, Operand(HeapNumber::kSignMask)); // Flip sign. |
| 8929 __ str(r2, FieldMemOperand(r1, HeapNumber::kExponentOffset)); | 8943 __ str(r2, FieldMemOperand(r1, HeapNumber::kExponentOffset)); |
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| 8942 // Do the bitwise operation (move negated) and check if the result | 8956 // Do the bitwise operation (move negated) and check if the result |
| 8943 // fits in a smi. | 8957 // fits in a smi. |
| 8944 Label try_float; | 8958 Label try_float; |
| 8945 __ mvn(r1, Operand(r1)); | 8959 __ mvn(r1, Operand(r1)); |
| 8946 __ add(r2, r1, Operand(0x40000000), SetCC); | 8960 __ add(r2, r1, Operand(0x40000000), SetCC); |
| 8947 __ b(mi, &try_float); | 8961 __ b(mi, &try_float); |
| 8948 __ mov(r0, Operand(r1, LSL, kSmiTagSize)); | 8962 __ mov(r0, Operand(r1, LSL, kSmiTagSize)); |
| 8949 __ b(&done); | 8963 __ b(&done); |
| 8950 | 8964 |
| 8951 __ bind(&try_float); | 8965 __ bind(&try_float); |
| 8952 if (!overwrite_) { | 8966 if (!overwrite_ == UNARY_OVERWRITE) { |
| 8953 // Allocate a fresh heap number, but don't overwrite r0 until | 8967 // Allocate a fresh heap number, but don't overwrite r0 until |
| 8954 // we're sure we can do it without going through the slow case | 8968 // we're sure we can do it without going through the slow case |
| 8955 // that needs the value in r0. | 8969 // that needs the value in r0. |
| 8956 __ AllocateHeapNumber(r2, r3, r4, r6, &slow); | 8970 __ AllocateHeapNumber(r2, r3, r4, r6, &slow); |
| 8957 __ mov(r0, Operand(r2)); | 8971 __ mov(r0, Operand(r2)); |
| 8958 } | 8972 } |
| 8959 | 8973 |
| 8960 if (CpuFeatures::IsSupported(VFP3)) { | 8974 if (CpuFeatures::IsSupported(VFP3)) { |
| 8961 // Convert the int32 in r1 to the heap number in r0. r2 is corrupted. | 8975 // Convert the int32 in r1 to the heap number in r0. r2 is corrupted. |
| 8962 CpuFeatures::Scope scope(VFP3); | 8976 CpuFeatures::Scope scope(VFP3); |
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| 11199 __ bind(&string_add_runtime); | 11213 __ bind(&string_add_runtime); |
| 11200 __ TailCallRuntime(Runtime::kStringAdd, 2, 1); | 11214 __ TailCallRuntime(Runtime::kStringAdd, 2, 1); |
| 11201 } | 11215 } |
| 11202 | 11216 |
| 11203 | 11217 |
| 11204 #undef __ | 11218 #undef __ |
| 11205 | 11219 |
| 11206 } } // namespace v8::internal | 11220 } } // namespace v8::internal |
| 11207 | 11221 |
| 11208 #endif // V8_TARGET_ARCH_ARM | 11222 #endif // V8_TARGET_ARCH_ARM |
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