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Issue 430503007: Rename ASSERT* to DCHECK*. (Closed) Base URL: https://v8.googlecode.com/svn/branches/bleeding_edge
Patch Set: REBASE and fixes Created 6 years, 4 months ago
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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 // Use of this source code is governed by a BSD-style license that can be 2 // Use of this source code is governed by a BSD-style license that can be
3 // found in the LICENSE file. 3 // found in the LICENSE file.
4 4
5 #include "src/v8.h" 5 #include "src/v8.h"
6 6
7 #if V8_TARGET_ARCH_MIPS 7 #if V8_TARGET_ARCH_MIPS
8 8
9 #include "src/code-stubs.h" 9 #include "src/code-stubs.h"
10 #include "src/log.h" 10 #include "src/log.h"
(...skipping 92 matching lines...) Expand 10 before | Expand all | Expand 10 after
103 masm_(new MacroAssembler(zone->isolate(), NULL, kRegExpCodeSize)), 103 masm_(new MacroAssembler(zone->isolate(), NULL, kRegExpCodeSize)),
104 mode_(mode), 104 mode_(mode),
105 num_registers_(registers_to_save), 105 num_registers_(registers_to_save),
106 num_saved_registers_(registers_to_save), 106 num_saved_registers_(registers_to_save),
107 entry_label_(), 107 entry_label_(),
108 start_label_(), 108 start_label_(),
109 success_label_(), 109 success_label_(),
110 backtrack_label_(), 110 backtrack_label_(),
111 exit_label_(), 111 exit_label_(),
112 internal_failure_label_() { 112 internal_failure_label_() {
113 ASSERT_EQ(0, registers_to_save % 2); 113 DCHECK_EQ(0, registers_to_save % 2);
114 __ jmp(&entry_label_); // We'll write the entry code later. 114 __ jmp(&entry_label_); // We'll write the entry code later.
115 // If the code gets too big or corrupted, an internal exception will be 115 // If the code gets too big or corrupted, an internal exception will be
116 // raised, and we will exit right away. 116 // raised, and we will exit right away.
117 __ bind(&internal_failure_label_); 117 __ bind(&internal_failure_label_);
118 __ li(v0, Operand(FAILURE)); 118 __ li(v0, Operand(FAILURE));
119 __ Ret(); 119 __ Ret();
120 __ bind(&start_label_); // And then continue from here. 120 __ bind(&start_label_); // And then continue from here.
121 } 121 }
122 122
123 123
(...skipping 18 matching lines...) Expand all
142 142
143 void RegExpMacroAssemblerMIPS::AdvanceCurrentPosition(int by) { 143 void RegExpMacroAssemblerMIPS::AdvanceCurrentPosition(int by) {
144 if (by != 0) { 144 if (by != 0) {
145 __ Addu(current_input_offset(), 145 __ Addu(current_input_offset(),
146 current_input_offset(), Operand(by * char_size())); 146 current_input_offset(), Operand(by * char_size()));
147 } 147 }
148 } 148 }
149 149
150 150
151 void RegExpMacroAssemblerMIPS::AdvanceRegister(int reg, int by) { 151 void RegExpMacroAssemblerMIPS::AdvanceRegister(int reg, int by) {
152 ASSERT(reg >= 0); 152 DCHECK(reg >= 0);
153 ASSERT(reg < num_registers_); 153 DCHECK(reg < num_registers_);
154 if (by != 0) { 154 if (by != 0) {
155 __ lw(a0, register_location(reg)); 155 __ lw(a0, register_location(reg));
156 __ Addu(a0, a0, Operand(by)); 156 __ Addu(a0, a0, Operand(by));
157 __ sw(a0, register_location(reg)); 157 __ sw(a0, register_location(reg));
158 } 158 }
159 } 159 }
160 160
161 161
162 void RegExpMacroAssemblerMIPS::Backtrack() { 162 void RegExpMacroAssemblerMIPS::Backtrack() {
163 CheckPreemption(); 163 CheckPreemption();
(...skipping 118 matching lines...) Expand 10 before | Expand all | Expand 10 after
282 __ Branch(&loop, lt, a0, Operand(a1)); 282 __ Branch(&loop, lt, a0, Operand(a1));
283 __ jmp(&success); 283 __ jmp(&success);
284 284
285 __ bind(&fail); 285 __ bind(&fail);
286 GoTo(on_no_match); 286 GoTo(on_no_match);
287 287
288 __ bind(&success); 288 __ bind(&success);
289 // Compute new value of character position after the matched part. 289 // Compute new value of character position after the matched part.
290 __ Subu(current_input_offset(), a2, end_of_input_address()); 290 __ Subu(current_input_offset(), a2, end_of_input_address());
291 } else { 291 } else {
292 ASSERT(mode_ == UC16); 292 DCHECK(mode_ == UC16);
293 // Put regexp engine registers on stack. 293 // Put regexp engine registers on stack.
294 RegList regexp_registers_to_retain = current_input_offset().bit() | 294 RegList regexp_registers_to_retain = current_input_offset().bit() |
295 current_character().bit() | backtrack_stackpointer().bit(); 295 current_character().bit() | backtrack_stackpointer().bit();
296 __ MultiPush(regexp_registers_to_retain); 296 __ MultiPush(regexp_registers_to_retain);
297 297
298 int argument_count = 4; 298 int argument_count = 4;
299 __ PrepareCallCFunction(argument_count, a2); 299 __ PrepareCallCFunction(argument_count, a2);
300 300
301 // a0 - offset of start of capture. 301 // a0 - offset of start of capture.
302 // a1 - length of capture. 302 // a1 - length of capture.
(...skipping 61 matching lines...) Expand 10 before | Expand all | Expand 10 after
364 __ Addu(a1, a1, Operand(a0)); 364 __ Addu(a1, a1, Operand(a0));
365 365
366 Label loop; 366 Label loop;
367 __ bind(&loop); 367 __ bind(&loop);
368 if (mode_ == ASCII) { 368 if (mode_ == ASCII) {
369 __ lbu(a3, MemOperand(a0, 0)); 369 __ lbu(a3, MemOperand(a0, 0));
370 __ addiu(a0, a0, char_size()); 370 __ addiu(a0, a0, char_size());
371 __ lbu(t0, MemOperand(a2, 0)); 371 __ lbu(t0, MemOperand(a2, 0));
372 __ addiu(a2, a2, char_size()); 372 __ addiu(a2, a2, char_size());
373 } else { 373 } else {
374 ASSERT(mode_ == UC16); 374 DCHECK(mode_ == UC16);
375 __ lhu(a3, MemOperand(a0, 0)); 375 __ lhu(a3, MemOperand(a0, 0));
376 __ addiu(a0, a0, char_size()); 376 __ addiu(a0, a0, char_size());
377 __ lhu(t0, MemOperand(a2, 0)); 377 __ lhu(t0, MemOperand(a2, 0));
378 __ addiu(a2, a2, char_size()); 378 __ addiu(a2, a2, char_size());
379 } 379 }
380 BranchOrBacktrack(on_no_match, ne, a3, Operand(t0)); 380 BranchOrBacktrack(on_no_match, ne, a3, Operand(t0));
381 __ Branch(&loop, lt, a0, Operand(a1)); 381 __ Branch(&loop, lt, a0, Operand(a1));
382 382
383 // Move current character position to position after match. 383 // Move current character position to position after match.
384 __ Subu(current_input_offset(), a2, end_of_input_address()); 384 __ Subu(current_input_offset(), a2, end_of_input_address());
(...skipping 23 matching lines...) Expand all
408 Operand rhs = (c == 0) ? Operand(zero_reg) : Operand(c); 408 Operand rhs = (c == 0) ? Operand(zero_reg) : Operand(c);
409 BranchOrBacktrack(on_not_equal, ne, a0, rhs); 409 BranchOrBacktrack(on_not_equal, ne, a0, rhs);
410 } 410 }
411 411
412 412
413 void RegExpMacroAssemblerMIPS::CheckNotCharacterAfterMinusAnd( 413 void RegExpMacroAssemblerMIPS::CheckNotCharacterAfterMinusAnd(
414 uc16 c, 414 uc16 c,
415 uc16 minus, 415 uc16 minus,
416 uc16 mask, 416 uc16 mask,
417 Label* on_not_equal) { 417 Label* on_not_equal) {
418 ASSERT(minus < String::kMaxUtf16CodeUnit); 418 DCHECK(minus < String::kMaxUtf16CodeUnit);
419 __ Subu(a0, current_character(), Operand(minus)); 419 __ Subu(a0, current_character(), Operand(minus));
420 __ And(a0, a0, Operand(mask)); 420 __ And(a0, a0, Operand(mask));
421 BranchOrBacktrack(on_not_equal, ne, a0, Operand(c)); 421 BranchOrBacktrack(on_not_equal, ne, a0, Operand(c));
422 } 422 }
423 423
424 424
425 void RegExpMacroAssemblerMIPS::CheckCharacterInRange( 425 void RegExpMacroAssemblerMIPS::CheckCharacterInRange(
426 uc16 from, 426 uc16 from,
427 uc16 to, 427 uc16 to,
428 Label* on_in_range) { 428 Label* on_in_range) {
(...skipping 270 matching lines...) Expand 10 before | Expand all | Expand 10 after
699 __ lw(a2, MemOperand(frame_pointer(), kStartIndex)); 699 __ lw(a2, MemOperand(frame_pointer(), kStartIndex));
700 __ Subu(a1, end_of_input_address(), a1); 700 __ Subu(a1, end_of_input_address(), a1);
701 // a1 is length of input in bytes. 701 // a1 is length of input in bytes.
702 if (mode_ == UC16) { 702 if (mode_ == UC16) {
703 __ srl(a1, a1, 1); 703 __ srl(a1, a1, 1);
704 } 704 }
705 // a1 is length of input in characters. 705 // a1 is length of input in characters.
706 __ Addu(a1, a1, Operand(a2)); 706 __ Addu(a1, a1, Operand(a2));
707 // a1 is length of string in characters. 707 // a1 is length of string in characters.
708 708
709 ASSERT_EQ(0, num_saved_registers_ % 2); 709 DCHECK_EQ(0, num_saved_registers_ % 2);
710 // Always an even number of capture registers. This allows us to 710 // Always an even number of capture registers. This allows us to
711 // unroll the loop once to add an operation between a load of a register 711 // unroll the loop once to add an operation between a load of a register
712 // and the following use of that register. 712 // and the following use of that register.
713 for (int i = 0; i < num_saved_registers_; i += 2) { 713 for (int i = 0; i < num_saved_registers_; i += 2) {
714 __ lw(a2, register_location(i)); 714 __ lw(a2, register_location(i));
715 __ lw(a3, register_location(i + 1)); 715 __ lw(a3, register_location(i + 1));
716 if (i == 0 && global_with_zero_length_check()) { 716 if (i == 0 && global_with_zero_length_check()) {
717 // Keep capture start in a4 for the zero-length check later. 717 // Keep capture start in a4 for the zero-length check later.
718 __ mov(t7, a2); 718 __ mov(t7, a2);
719 } 719 }
(...skipping 181 matching lines...) Expand 10 before | Expand all | Expand 10 after
901 RegExpMacroAssembler::IrregexpImplementation 901 RegExpMacroAssembler::IrregexpImplementation
902 RegExpMacroAssemblerMIPS::Implementation() { 902 RegExpMacroAssemblerMIPS::Implementation() {
903 return kMIPSImplementation; 903 return kMIPSImplementation;
904 } 904 }
905 905
906 906
907 void RegExpMacroAssemblerMIPS::LoadCurrentCharacter(int cp_offset, 907 void RegExpMacroAssemblerMIPS::LoadCurrentCharacter(int cp_offset,
908 Label* on_end_of_input, 908 Label* on_end_of_input,
909 bool check_bounds, 909 bool check_bounds,
910 int characters) { 910 int characters) {
911 ASSERT(cp_offset >= -1); // ^ and \b can look behind one character. 911 DCHECK(cp_offset >= -1); // ^ and \b can look behind one character.
912 ASSERT(cp_offset < (1<<30)); // Be sane! (And ensure negation works). 912 DCHECK(cp_offset < (1<<30)); // Be sane! (And ensure negation works).
913 if (check_bounds) { 913 if (check_bounds) {
914 CheckPosition(cp_offset + characters - 1, on_end_of_input); 914 CheckPosition(cp_offset + characters - 1, on_end_of_input);
915 } 915 }
916 LoadCurrentCharacterUnchecked(cp_offset, characters); 916 LoadCurrentCharacterUnchecked(cp_offset, characters);
917 } 917 }
918 918
919 919
920 void RegExpMacroAssemblerMIPS::PopCurrentPosition() { 920 void RegExpMacroAssemblerMIPS::PopCurrentPosition() {
921 Pop(current_input_offset()); 921 Pop(current_input_offset());
922 } 922 }
(...skipping 64 matching lines...) Expand 10 before | Expand all | Expand 10 after
987 __ li(current_input_offset(), -by * char_size()); 987 __ li(current_input_offset(), -by * char_size());
988 // On RegExp code entry (where this operation is used), the character before 988 // On RegExp code entry (where this operation is used), the character before
989 // the current position is expected to be already loaded. 989 // the current position is expected to be already loaded.
990 // We have advanced the position, so it's safe to read backwards. 990 // We have advanced the position, so it's safe to read backwards.
991 LoadCurrentCharacterUnchecked(-1, 1); 991 LoadCurrentCharacterUnchecked(-1, 1);
992 __ bind(&after_position); 992 __ bind(&after_position);
993 } 993 }
994 994
995 995
996 void RegExpMacroAssemblerMIPS::SetRegister(int register_index, int to) { 996 void RegExpMacroAssemblerMIPS::SetRegister(int register_index, int to) {
997 ASSERT(register_index >= num_saved_registers_); // Reserved for positions! 997 DCHECK(register_index >= num_saved_registers_); // Reserved for positions!
998 __ li(a0, Operand(to)); 998 __ li(a0, Operand(to));
999 __ sw(a0, register_location(register_index)); 999 __ sw(a0, register_location(register_index));
1000 } 1000 }
1001 1001
1002 1002
1003 bool RegExpMacroAssemblerMIPS::Succeed() { 1003 bool RegExpMacroAssemblerMIPS::Succeed() {
1004 __ jmp(&success_label_); 1004 __ jmp(&success_label_);
1005 return global(); 1005 return global();
1006 } 1006 }
1007 1007
1008 1008
1009 void RegExpMacroAssemblerMIPS::WriteCurrentPositionToRegister(int reg, 1009 void RegExpMacroAssemblerMIPS::WriteCurrentPositionToRegister(int reg,
1010 int cp_offset) { 1010 int cp_offset) {
1011 if (cp_offset == 0) { 1011 if (cp_offset == 0) {
1012 __ sw(current_input_offset(), register_location(reg)); 1012 __ sw(current_input_offset(), register_location(reg));
1013 } else { 1013 } else {
1014 __ Addu(a0, current_input_offset(), Operand(cp_offset * char_size())); 1014 __ Addu(a0, current_input_offset(), Operand(cp_offset * char_size()));
1015 __ sw(a0, register_location(reg)); 1015 __ sw(a0, register_location(reg));
1016 } 1016 }
1017 } 1017 }
1018 1018
1019 1019
1020 void RegExpMacroAssemblerMIPS::ClearRegisters(int reg_from, int reg_to) { 1020 void RegExpMacroAssemblerMIPS::ClearRegisters(int reg_from, int reg_to) {
1021 ASSERT(reg_from <= reg_to); 1021 DCHECK(reg_from <= reg_to);
1022 __ lw(a0, MemOperand(frame_pointer(), kInputStartMinusOne)); 1022 __ lw(a0, MemOperand(frame_pointer(), kInputStartMinusOne));
1023 for (int reg = reg_from; reg <= reg_to; reg++) { 1023 for (int reg = reg_from; reg <= reg_to; reg++) {
1024 __ sw(a0, register_location(reg)); 1024 __ sw(a0, register_location(reg));
1025 } 1025 }
1026 } 1026 }
1027 1027
1028 1028
1029 void RegExpMacroAssemblerMIPS::WriteStackPointerToRegister(int reg) { 1029 void RegExpMacroAssemblerMIPS::WriteStackPointerToRegister(int reg) {
1030 __ lw(a1, MemOperand(frame_pointer(), kStackHighEnd)); 1030 __ lw(a1, MemOperand(frame_pointer(), kStackHighEnd));
1031 __ Subu(a0, backtrack_stackpointer(), a1); 1031 __ Subu(a0, backtrack_stackpointer(), a1);
1032 __ sw(a0, register_location(reg)); 1032 __ sw(a0, register_location(reg));
1033 } 1033 }
1034 1034
1035 1035
1036 bool RegExpMacroAssemblerMIPS::CanReadUnaligned() { 1036 bool RegExpMacroAssemblerMIPS::CanReadUnaligned() {
1037 return false; 1037 return false;
1038 } 1038 }
1039 1039
1040 1040
1041 // Private methods: 1041 // Private methods:
1042 1042
1043 void RegExpMacroAssemblerMIPS::CallCheckStackGuardState(Register scratch) { 1043 void RegExpMacroAssemblerMIPS::CallCheckStackGuardState(Register scratch) {
1044 int stack_alignment = base::OS::ActivationFrameAlignment(); 1044 int stack_alignment = base::OS::ActivationFrameAlignment();
1045 1045
1046 // Align the stack pointer and save the original sp value on the stack. 1046 // Align the stack pointer and save the original sp value on the stack.
1047 __ mov(scratch, sp); 1047 __ mov(scratch, sp);
1048 __ Subu(sp, sp, Operand(kPointerSize)); 1048 __ Subu(sp, sp, Operand(kPointerSize));
1049 ASSERT(IsPowerOf2(stack_alignment)); 1049 DCHECK(IsPowerOf2(stack_alignment));
1050 __ And(sp, sp, Operand(-stack_alignment)); 1050 __ And(sp, sp, Operand(-stack_alignment));
1051 __ sw(scratch, MemOperand(sp)); 1051 __ sw(scratch, MemOperand(sp));
1052 1052
1053 __ mov(a2, frame_pointer()); 1053 __ mov(a2, frame_pointer());
1054 // Code* of self. 1054 // Code* of self.
1055 __ li(a1, Operand(masm_->CodeObject()), CONSTANT_SIZE); 1055 __ li(a1, Operand(masm_->CodeObject()), CONSTANT_SIZE);
1056 1056
1057 // We need to make room for the return address on the stack. 1057 // We need to make room for the return address on the stack.
1058 ASSERT(IsAligned(stack_alignment, kPointerSize)); 1058 DCHECK(IsAligned(stack_alignment, kPointerSize));
1059 __ Subu(sp, sp, Operand(stack_alignment)); 1059 __ Subu(sp, sp, Operand(stack_alignment));
1060 1060
1061 // Stack pointer now points to cell where return address is to be written. 1061 // Stack pointer now points to cell where return address is to be written.
1062 // Arguments are in registers, meaning we teat the return address as 1062 // Arguments are in registers, meaning we teat the return address as
1063 // argument 5. Since DirectCEntryStub will handleallocating space for the C 1063 // argument 5. Since DirectCEntryStub will handleallocating space for the C
1064 // argument slots, we don't need to care about that here. This is how the 1064 // argument slots, we don't need to care about that here. This is how the
1065 // stack will look (sp meaning the value of sp at this moment): 1065 // stack will look (sp meaning the value of sp at this moment):
1066 // [sp + 3] - empty slot if needed for alignment. 1066 // [sp + 3] - empty slot if needed for alignment.
1067 // [sp + 2] - saved sp. 1067 // [sp + 2] - saved sp.
1068 // [sp + 1] - second word reserved for return value. 1068 // [sp + 1] - second word reserved for return value.
(...skipping 52 matching lines...) Expand 10 before | Expand all | Expand 10 after
1121 } 1121 }
1122 1122
1123 // Prepare for possible GC. 1123 // Prepare for possible GC.
1124 HandleScope handles(isolate); 1124 HandleScope handles(isolate);
1125 Handle<Code> code_handle(re_code); 1125 Handle<Code> code_handle(re_code);
1126 1126
1127 Handle<String> subject(frame_entry<String*>(re_frame, kInputString)); 1127 Handle<String> subject(frame_entry<String*>(re_frame, kInputString));
1128 // Current string. 1128 // Current string.
1129 bool is_ascii = subject->IsOneByteRepresentationUnderneath(); 1129 bool is_ascii = subject->IsOneByteRepresentationUnderneath();
1130 1130
1131 ASSERT(re_code->instruction_start() <= *return_address); 1131 DCHECK(re_code->instruction_start() <= *return_address);
1132 ASSERT(*return_address <= 1132 DCHECK(*return_address <=
1133 re_code->instruction_start() + re_code->instruction_size()); 1133 re_code->instruction_start() + re_code->instruction_size());
1134 1134
1135 Object* result = isolate->stack_guard()->HandleInterrupts(); 1135 Object* result = isolate->stack_guard()->HandleInterrupts();
1136 1136
1137 if (*code_handle != re_code) { // Return address no longer valid. 1137 if (*code_handle != re_code) { // Return address no longer valid.
1138 int delta = code_handle->address() - re_code->address(); 1138 int delta = code_handle->address() - re_code->address();
1139 // Overwrite the return address on the stack. 1139 // Overwrite the return address on the stack.
1140 *return_address += delta; 1140 *return_address += delta;
1141 } 1141 }
1142 1142
(...skipping 18 matching lines...) Expand all
1161 // If we changed between an ASCII and an UC16 string, the specialized 1161 // If we changed between an ASCII and an UC16 string, the specialized
1162 // code cannot be used, and we need to restart regexp matching from 1162 // code cannot be used, and we need to restart regexp matching from
1163 // scratch (including, potentially, compiling a new version of the code). 1163 // scratch (including, potentially, compiling a new version of the code).
1164 return RETRY; 1164 return RETRY;
1165 } 1165 }
1166 1166
1167 // Otherwise, the content of the string might have moved. It must still 1167 // Otherwise, the content of the string might have moved. It must still
1168 // be a sequential or external string with the same content. 1168 // be a sequential or external string with the same content.
1169 // Update the start and end pointers in the stack frame to the current 1169 // Update the start and end pointers in the stack frame to the current
1170 // location (whether it has actually moved or not). 1170 // location (whether it has actually moved or not).
1171 ASSERT(StringShape(*subject_tmp).IsSequential() || 1171 DCHECK(StringShape(*subject_tmp).IsSequential() ||
1172 StringShape(*subject_tmp).IsExternal()); 1172 StringShape(*subject_tmp).IsExternal());
1173 1173
1174 // The original start address of the characters to match. 1174 // The original start address of the characters to match.
1175 const byte* start_address = frame_entry<const byte*>(re_frame, kInputStart); 1175 const byte* start_address = frame_entry<const byte*>(re_frame, kInputStart);
1176 1176
1177 // Find the current start address of the same character at the current string 1177 // Find the current start address of the same character at the current string
1178 // position. 1178 // position.
1179 int start_index = frame_entry<int>(re_frame, kStartIndex); 1179 int start_index = frame_entry<int>(re_frame, kStartIndex);
1180 const byte* new_address = StringCharacterPosition(*subject_tmp, 1180 const byte* new_address = StringCharacterPosition(*subject_tmp,
1181 start_index + slice_offset); 1181 start_index + slice_offset);
(...skipping 11 matching lines...) Expand all
1193 // short-circuiting during GC. That will not change start_address but 1193 // short-circuiting during GC. That will not change start_address but
1194 // will change pointer inside the subject handle. 1194 // will change pointer inside the subject handle.
1195 frame_entry<const String*>(re_frame, kInputString) = *subject; 1195 frame_entry<const String*>(re_frame, kInputString) = *subject;
1196 } 1196 }
1197 1197
1198 return 0; 1198 return 0;
1199 } 1199 }
1200 1200
1201 1201
1202 MemOperand RegExpMacroAssemblerMIPS::register_location(int register_index) { 1202 MemOperand RegExpMacroAssemblerMIPS::register_location(int register_index) {
1203 ASSERT(register_index < (1<<30)); 1203 DCHECK(register_index < (1<<30));
1204 if (num_registers_ <= register_index) { 1204 if (num_registers_ <= register_index) {
1205 num_registers_ = register_index + 1; 1205 num_registers_ = register_index + 1;
1206 } 1206 }
1207 return MemOperand(frame_pointer(), 1207 return MemOperand(frame_pointer(),
1208 kRegisterZero - register_index * kPointerSize); 1208 kRegisterZero - register_index * kPointerSize);
1209 } 1209 }
1210 1210
1211 1211
1212 void RegExpMacroAssemblerMIPS::CheckPosition(int cp_offset, 1212 void RegExpMacroAssemblerMIPS::CheckPosition(int cp_offset,
1213 Label* on_outside_input) { 1213 Label* on_outside_input) {
(...skipping 40 matching lines...) Expand 10 before | Expand all | Expand 10 after
1254 1254
1255 1255
1256 void RegExpMacroAssemblerMIPS::SafeCallTarget(Label* name) { 1256 void RegExpMacroAssemblerMIPS::SafeCallTarget(Label* name) {
1257 __ bind(name); 1257 __ bind(name);
1258 __ Subu(ra, ra, Operand(masm_->CodeObject())); 1258 __ Subu(ra, ra, Operand(masm_->CodeObject()));
1259 __ push(ra); 1259 __ push(ra);
1260 } 1260 }
1261 1261
1262 1262
1263 void RegExpMacroAssemblerMIPS::Push(Register source) { 1263 void RegExpMacroAssemblerMIPS::Push(Register source) {
1264 ASSERT(!source.is(backtrack_stackpointer())); 1264 DCHECK(!source.is(backtrack_stackpointer()));
1265 __ Addu(backtrack_stackpointer(), 1265 __ Addu(backtrack_stackpointer(),
1266 backtrack_stackpointer(), 1266 backtrack_stackpointer(),
1267 Operand(-kPointerSize)); 1267 Operand(-kPointerSize));
1268 __ sw(source, MemOperand(backtrack_stackpointer())); 1268 __ sw(source, MemOperand(backtrack_stackpointer()));
1269 } 1269 }
1270 1270
1271 1271
1272 void RegExpMacroAssemblerMIPS::Pop(Register target) { 1272 void RegExpMacroAssemblerMIPS::Pop(Register target) {
1273 ASSERT(!target.is(backtrack_stackpointer())); 1273 DCHECK(!target.is(backtrack_stackpointer()));
1274 __ lw(target, MemOperand(backtrack_stackpointer())); 1274 __ lw(target, MemOperand(backtrack_stackpointer()));
1275 __ Addu(backtrack_stackpointer(), backtrack_stackpointer(), kPointerSize); 1275 __ Addu(backtrack_stackpointer(), backtrack_stackpointer(), kPointerSize);
1276 } 1276 }
1277 1277
1278 1278
1279 void RegExpMacroAssemblerMIPS::CheckPreemption() { 1279 void RegExpMacroAssemblerMIPS::CheckPreemption() {
1280 // Check for preemption. 1280 // Check for preemption.
1281 ExternalReference stack_limit = 1281 ExternalReference stack_limit =
1282 ExternalReference::address_of_stack_limit(masm_->isolate()); 1282 ExternalReference::address_of_stack_limit(masm_->isolate());
1283 __ li(a0, Operand(stack_limit)); 1283 __ li(a0, Operand(stack_limit));
(...skipping 15 matching lines...) Expand all
1299 void RegExpMacroAssemblerMIPS::LoadCurrentCharacterUnchecked(int cp_offset, 1299 void RegExpMacroAssemblerMIPS::LoadCurrentCharacterUnchecked(int cp_offset,
1300 int characters) { 1300 int characters) {
1301 Register offset = current_input_offset(); 1301 Register offset = current_input_offset();
1302 if (cp_offset != 0) { 1302 if (cp_offset != 0) {
1303 // t7 is not being used to store the capture start index at this point. 1303 // t7 is not being used to store the capture start index at this point.
1304 __ Addu(t7, current_input_offset(), Operand(cp_offset * char_size())); 1304 __ Addu(t7, current_input_offset(), Operand(cp_offset * char_size()));
1305 offset = t7; 1305 offset = t7;
1306 } 1306 }
1307 // We assume that we cannot do unaligned loads on MIPS, so this function 1307 // We assume that we cannot do unaligned loads on MIPS, so this function
1308 // must only be used to load a single character at a time. 1308 // must only be used to load a single character at a time.
1309 ASSERT(characters == 1); 1309 DCHECK(characters == 1);
1310 __ Addu(t5, end_of_input_address(), Operand(offset)); 1310 __ Addu(t5, end_of_input_address(), Operand(offset));
1311 if (mode_ == ASCII) { 1311 if (mode_ == ASCII) {
1312 __ lbu(current_character(), MemOperand(t5, 0)); 1312 __ lbu(current_character(), MemOperand(t5, 0));
1313 } else { 1313 } else {
1314 ASSERT(mode_ == UC16); 1314 DCHECK(mode_ == UC16);
1315 __ lhu(current_character(), MemOperand(t5, 0)); 1315 __ lhu(current_character(), MemOperand(t5, 0));
1316 } 1316 }
1317 } 1317 }
1318 1318
1319 1319
1320 #undef __ 1320 #undef __
1321 1321
1322 #endif // V8_INTERPRETED_REGEXP 1322 #endif // V8_INTERPRETED_REGEXP
1323 1323
1324 }} // namespace v8::internal 1324 }} // namespace v8::internal
1325 1325
1326 #endif // V8_TARGET_ARCH_MIPS 1326 #endif // V8_TARGET_ARCH_MIPS
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