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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 #if V8_TARGET_ARCH_MIPS | 5 #if V8_TARGET_ARCH_MIPS |
| 6 | 6 |
| 7 #include "src/codegen.h" | 7 #include "src/codegen.h" |
| 8 #include "src/debug/debug.h" | 8 #include "src/debug/debug.h" |
| 9 #include "src/deoptimizer.h" | 9 #include "src/deoptimizer.h" |
| 10 #include "src/full-codegen/full-codegen.h" | 10 #include "src/full-codegen/full-codegen.h" |
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| 138 __ LoadRoot(a2, Heap::kUndefinedValueRootIndex); | 138 __ LoadRoot(a2, Heap::kUndefinedValueRootIndex); |
| 139 ArrayConstructorStub stub(masm->isolate()); | 139 ArrayConstructorStub stub(masm->isolate()); |
| 140 __ TailCallStub(&stub); | 140 __ TailCallStub(&stub); |
| 141 } | 141 } |
| 142 | 142 |
| 143 | 143 |
| 144 // static | 144 // static |
| 145 void Builtins::Generate_MathMaxMin(MacroAssembler* masm, MathMaxMinKind kind) { | 145 void Builtins::Generate_MathMaxMin(MacroAssembler* masm, MathMaxMinKind kind) { |
| 146 // ----------- S t a t e ------------- | 146 // ----------- S t a t e ------------- |
| 147 // -- a0 : number of arguments | 147 // -- a0 : number of arguments |
| 148 // -- a1 : function |
| 149 // -- cp : context |
| 148 // -- ra : return address | 150 // -- ra : return address |
| 149 // -- sp[(argc - n) * 8] : arg[n] (zero-based) | 151 // -- sp[(argc - n) * 8] : arg[n] (zero-based) |
| 150 // -- sp[(argc + 1) * 8] : receiver | 152 // -- sp[(argc + 1) * 8] : receiver |
| 151 // ----------------------------------- | 153 // ----------------------------------- |
| 152 Heap::RootListIndex const root_index = | 154 Heap::RootListIndex const root_index = |
| 153 (kind == MathMaxMinKind::kMin) ? Heap::kInfinityValueRootIndex | 155 (kind == MathMaxMinKind::kMin) ? Heap::kInfinityValueRootIndex |
| 154 : Heap::kMinusInfinityValueRootIndex; | 156 : Heap::kMinusInfinityValueRootIndex; |
| 155 | 157 |
| 156 // Load the accumulator with the default return value (either -Infinity or | 158 // Load the accumulator with the default return value (either -Infinity or |
| 157 // +Infinity), with the tagged value in a1 and the double value in f0. | 159 // +Infinity), with the tagged value in t2 and the double value in f0. |
| 158 __ LoadRoot(a1, root_index); | 160 __ LoadRoot(t2, root_index); |
| 159 __ ldc1(f0, FieldMemOperand(a1, HeapNumber::kValueOffset)); | 161 __ ldc1(f0, FieldMemOperand(t2, HeapNumber::kValueOffset)); |
| 160 __ Addu(a3, a0, Operand(1)); | 162 __ Addu(a3, a0, Operand(1)); |
| 161 | 163 |
| 162 Label done_loop, loop; | 164 Label done_loop, loop; |
| 163 __ bind(&loop); | 165 __ bind(&loop); |
| 164 { | 166 { |
| 165 // Check if all parameters done. | 167 // Check if all parameters done. |
| 166 __ Subu(a0, a0, Operand(1)); | 168 __ Subu(a0, a0, Operand(1)); |
| 167 __ Branch(&done_loop, lt, a0, Operand(zero_reg)); | 169 __ Branch(&done_loop, lt, a0, Operand(zero_reg)); |
| 168 | 170 |
| 169 // Load the next parameter tagged value into a2. | 171 // Load the next parameter tagged value into a2. |
| 170 __ Lsa(at, sp, a0, kPointerSizeLog2); | 172 __ Lsa(at, sp, a0, kPointerSizeLog2); |
| 171 __ lw(a2, MemOperand(at)); | 173 __ lw(a2, MemOperand(at)); |
| 172 | 174 |
| 173 // Load the double value of the parameter into f2, maybe converting the | 175 // Load the double value of the parameter into f2, maybe converting the |
| 174 // parameter to a number first using the ToNumber builtin if necessary. | 176 // parameter to a number first using the ToNumber builtin if necessary. |
| 175 Label convert, convert_smi, convert_number, done_convert; | 177 Label convert, convert_smi, convert_number, done_convert; |
| 176 __ bind(&convert); | 178 __ bind(&convert); |
| 177 __ JumpIfSmi(a2, &convert_smi); | 179 __ JumpIfSmi(a2, &convert_smi); |
| 178 __ lw(t0, FieldMemOperand(a2, HeapObject::kMapOffset)); | 180 __ lw(t0, FieldMemOperand(a2, HeapObject::kMapOffset)); |
| 179 __ JumpIfRoot(t0, Heap::kHeapNumberMapRootIndex, &convert_number); | 181 __ JumpIfRoot(t0, Heap::kHeapNumberMapRootIndex, &convert_number); |
| 180 { | 182 { |
| 181 // Parameter is not a Number, use the ToNumber builtin to convert it. | 183 // Parameter is not a Number, use the ToNumber builtin to convert it. |
| 182 FrameScope scope(masm, StackFrame::INTERNAL); | 184 FrameScope scope(masm, StackFrame::MANUAL); |
| 185 __ Push(ra, fp); |
| 186 __ Move(fp, sp); |
| 187 __ Push(cp, a1); |
| 183 __ SmiTag(a0); | 188 __ SmiTag(a0); |
| 184 __ SmiTag(a3); | 189 __ SmiTag(a3); |
| 185 __ Push(a0, a1, a3); | 190 __ Push(a0, t2, a3); |
| 186 __ mov(a0, a2); | 191 __ mov(a0, a2); |
| 187 __ Call(masm->isolate()->builtins()->ToNumber(), RelocInfo::CODE_TARGET); | 192 __ Call(masm->isolate()->builtins()->ToNumber(), RelocInfo::CODE_TARGET); |
| 188 __ mov(a2, v0); | 193 __ mov(a2, v0); |
| 189 __ Pop(a0, a1, a3); | 194 __ Pop(a0, t2, a3); |
| 190 { | 195 { |
| 191 // Restore the double accumulator value (f0). | 196 // Restore the double accumulator value (f0). |
| 192 Label restore_smi, done_restore; | 197 Label restore_smi, done_restore; |
| 193 __ JumpIfSmi(a1, &restore_smi); | 198 __ JumpIfSmi(t2, &restore_smi); |
| 194 __ ldc1(f0, FieldMemOperand(a1, HeapNumber::kValueOffset)); | 199 __ ldc1(f0, FieldMemOperand(t2, HeapNumber::kValueOffset)); |
| 195 __ jmp(&done_restore); | 200 __ jmp(&done_restore); |
| 196 __ bind(&restore_smi); | 201 __ bind(&restore_smi); |
| 197 __ SmiToDoubleFPURegister(a1, f0, t0); | 202 __ SmiToDoubleFPURegister(t2, f0, t0); |
| 198 __ bind(&done_restore); | 203 __ bind(&done_restore); |
| 199 } | 204 } |
| 200 __ SmiUntag(a3); | 205 __ SmiUntag(a3); |
| 201 __ SmiUntag(a0); | 206 __ SmiUntag(a0); |
| 207 __ Pop(cp, a1); |
| 208 __ Pop(ra, fp); |
| 202 } | 209 } |
| 203 __ jmp(&convert); | 210 __ jmp(&convert); |
| 204 __ bind(&convert_number); | 211 __ bind(&convert_number); |
| 205 __ ldc1(f2, FieldMemOperand(a2, HeapNumber::kValueOffset)); | 212 __ ldc1(f2, FieldMemOperand(a2, HeapNumber::kValueOffset)); |
| 206 __ jmp(&done_convert); | 213 __ jmp(&done_convert); |
| 207 __ bind(&convert_smi); | 214 __ bind(&convert_smi); |
| 208 __ SmiToDoubleFPURegister(a2, f2, t0); | 215 __ SmiToDoubleFPURegister(a2, f2, t0); |
| 209 __ bind(&done_convert); | 216 __ bind(&done_convert); |
| 210 | 217 |
| 211 // Perform the actual comparison with using Min/Max macro instructions the | 218 // Perform the actual comparison with using Min/Max macro instructions the |
| 212 // accumulator value on the left hand side (f0) and the next parameter value | 219 // accumulator value on the left hand side (f0) and the next parameter value |
| 213 // on the right hand side (f2). | 220 // on the right hand side (f2). |
| 214 // We need to work out which HeapNumber (or smi) the result came from. | 221 // We need to work out which HeapNumber (or smi) the result came from. |
| 215 Label compare_nan, set_value; | 222 Label compare_nan, set_value; |
| 216 __ BranchF(nullptr, &compare_nan, eq, f0, f2); | 223 __ BranchF(nullptr, &compare_nan, eq, f0, f2); |
| 217 __ Move(t0, t1, f0); | 224 __ Move(t0, t1, f0); |
| 218 if (kind == MathMaxMinKind::kMin) { | 225 if (kind == MathMaxMinKind::kMin) { |
| 219 __ MinNaNCheck_d(f0, f0, f2); | 226 __ MinNaNCheck_d(f0, f0, f2); |
| 220 } else { | 227 } else { |
| 221 DCHECK(kind == MathMaxMinKind::kMax); | 228 DCHECK(kind == MathMaxMinKind::kMax); |
| 222 __ MaxNaNCheck_d(f0, f0, f2); | 229 __ MaxNaNCheck_d(f0, f0, f2); |
| 223 } | 230 } |
| 224 __ Move(at, t8, f0); | 231 __ Move(at, t8, f0); |
| 225 __ Branch(&set_value, ne, t0, Operand(at)); | 232 __ Branch(&set_value, ne, t0, Operand(at)); |
| 226 __ Branch(&set_value, ne, t1, Operand(t8)); | 233 __ Branch(&set_value, ne, t1, Operand(t8)); |
| 227 __ jmp(&loop); | 234 __ jmp(&loop); |
| 228 __ bind(&set_value); | 235 __ bind(&set_value); |
| 229 __ mov(a1, a2); | 236 __ mov(t2, a2); |
| 230 __ jmp(&loop); | 237 __ jmp(&loop); |
| 231 | 238 |
| 232 // At least one side is NaN, which means that the result will be NaN too. | 239 // At least one side is NaN, which means that the result will be NaN too. |
| 233 __ bind(&compare_nan); | 240 __ bind(&compare_nan); |
| 234 __ LoadRoot(a1, Heap::kNanValueRootIndex); | 241 __ LoadRoot(t2, Heap::kNanValueRootIndex); |
| 235 __ ldc1(f0, FieldMemOperand(a1, HeapNumber::kValueOffset)); | 242 __ ldc1(f0, FieldMemOperand(t2, HeapNumber::kValueOffset)); |
| 236 __ jmp(&loop); | 243 __ jmp(&loop); |
| 237 } | 244 } |
| 238 | 245 |
| 239 __ bind(&done_loop); | 246 __ bind(&done_loop); |
| 240 __ Lsa(sp, sp, a3, kPointerSizeLog2); | 247 __ Lsa(sp, sp, a3, kPointerSizeLog2); |
| 241 __ Ret(USE_DELAY_SLOT); | 248 __ Ret(USE_DELAY_SLOT); |
| 242 __ mov(v0, a1); // In delay slot. | 249 __ mov(v0, t2); // In delay slot. |
| 243 } | 250 } |
| 244 | 251 |
| 245 // static | 252 // static |
| 246 void Builtins::Generate_NumberConstructor(MacroAssembler* masm) { | 253 void Builtins::Generate_NumberConstructor(MacroAssembler* masm) { |
| 247 // ----------- S t a t e ------------- | 254 // ----------- S t a t e ------------- |
| 248 // -- a0 : number of arguments | 255 // -- a0 : number of arguments |
| 249 // -- a1 : constructor function | 256 // -- a1 : constructor function |
| 250 // -- ra : return address | 257 // -- ra : return address |
| 251 // -- sp[(argc - n - 1) * 4] : arg[n] (zero based) | 258 // -- sp[(argc - n - 1) * 4] : arg[n] (zero based) |
| 252 // -- sp[argc * 4] : receiver | 259 // -- sp[argc * 4] : receiver |
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| 2958 } | 2965 } |
| 2959 } | 2966 } |
| 2960 | 2967 |
| 2961 | 2968 |
| 2962 #undef __ | 2969 #undef __ |
| 2963 | 2970 |
| 2964 } // namespace internal | 2971 } // namespace internal |
| 2965 } // namespace v8 | 2972 } // namespace v8 |
| 2966 | 2973 |
| 2967 #endif // V8_TARGET_ARCH_MIPS | 2974 #endif // V8_TARGET_ARCH_MIPS |
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