Commit 03696ca7 authored by yangguo@chromium.org's avatar yangguo@chromium.org

Porting r10221 to x64 (avoid bailing out to runtime for short substrings).

Review URL: http://codereview.chromium.org/8894001

git-svn-id: http://v8.googlecode.com/svn/branches/bleeding_edge@10251 ce2b1a6d-e550-0410-aec6-3dcde31c8c00
parent 33a9e768
...@@ -6181,7 +6181,7 @@ void SubStringStub::Generate(MacroAssembler* masm) { ...@@ -6181,7 +6181,7 @@ void SubStringStub::Generate(MacroAssembler* masm) {
if (FLAG_string_slices) { if (FLAG_string_slices) {
Label copy_routine; Label copy_routine;
// edi: underlying subject string // edi: underlying subject string
// ebx: instance type of original subject string // ebx: instance type of underlying subject string
// edx: adjusted start index (smi) // edx: adjusted start index (smi)
// ecx: length (smi) // ecx: length (smi)
__ cmp(ecx, Immediate(Smi::FromInt(SlicedString::kMinLength))); __ cmp(ecx, Immediate(Smi::FromInt(SlicedString::kMinLength)));
...@@ -6214,7 +6214,7 @@ void SubStringStub::Generate(MacroAssembler* masm) { ...@@ -6214,7 +6214,7 @@ void SubStringStub::Generate(MacroAssembler* masm) {
} }
// edi: underlying subject string // edi: underlying subject string
// ebx: instance type of original subject string // ebx: instance type of underlying subject string
// edx: adjusted start index (smi) // edx: adjusted start index (smi)
// ecx: length (smi) // ecx: length (smi)
// The subject string can only be external or sequential string of either // The subject string can only be external or sequential string of either
...@@ -6226,7 +6226,6 @@ void SubStringStub::Generate(MacroAssembler* masm) { ...@@ -6226,7 +6226,6 @@ void SubStringStub::Generate(MacroAssembler* masm) {
__ j(zero, &sequential_string); __ j(zero, &sequential_string);
// Handle external string. // Handle external string.
Label ascii_external, done;
// Rule out short external strings. // Rule out short external strings.
STATIC_CHECK(kShortExternalStringTag != 0); STATIC_CHECK(kShortExternalStringTag != 0);
__ test_b(ebx, kShortExternalStringMask); __ test_b(ebx, kShortExternalStringMask);
......
...@@ -5040,8 +5040,12 @@ void SubStringStub::Generate(MacroAssembler* masm) { ...@@ -5040,8 +5040,12 @@ void SubStringStub::Generate(MacroAssembler* masm) {
__ SmiSub(rcx, rcx, rdx); // Overflow doesn't happen. __ SmiSub(rcx, rcx, rdx); // Overflow doesn't happen.
__ cmpq(FieldOperand(rax, String::kLengthOffset), rcx); __ cmpq(FieldOperand(rax, String::kLengthOffset), rcx);
Label return_rax; Label not_original_string;
__ j(equal, &return_rax); __ j(not_equal, &not_original_string, Label::kNear);
Counters* counters = masm->isolate()->counters();
__ IncrementCounter(counters->sub_string_native(), 1);
__ ret(kArgumentsSize);
__ bind(&not_original_string);
// Special handling of sub-strings of length 1 and 2. One character strings // Special handling of sub-strings of length 1 and 2. One character strings
// are handled in the runtime system (looked up in the single character // are handled in the runtime system (looked up in the single character
// cache). Two character strings are looked for in the symbol cache. // cache). Two character strings are looked for in the symbol cache.
...@@ -5060,38 +5064,32 @@ void SubStringStub::Generate(MacroAssembler* masm) { ...@@ -5060,38 +5064,32 @@ void SubStringStub::Generate(MacroAssembler* masm) {
// Get the two characters forming the sub string. // Get the two characters forming the sub string.
__ SmiToInteger32(rdx, rdx); // From index is no longer smi. __ SmiToInteger32(rdx, rdx); // From index is no longer smi.
__ movzxbq(rbx, FieldOperand(rax, rdx, times_1, SeqAsciiString::kHeaderSize)); __ movzxbq(rbx, FieldOperand(rax, rdx, times_1, SeqAsciiString::kHeaderSize));
__ movzxbq(rcx, __ movzxbq(rdi,
FieldOperand(rax, rdx, times_1, SeqAsciiString::kHeaderSize + 1)); FieldOperand(rax, rdx, times_1, SeqAsciiString::kHeaderSize + 1));
// Try to lookup two character string in symbol table. // Try to lookup two character string in symbol table.
Label make_two_character_string; Label make_two_character_string;
StringHelper::GenerateTwoCharacterSymbolTableProbe( StringHelper::GenerateTwoCharacterSymbolTableProbe(
masm, rbx, rcx, rax, rdx, rdi, r14, &make_two_character_string); masm, rbx, rdi, r9, r11, r14, r15, &make_two_character_string);
__ IncrementCounter(counters->sub_string_native(), 1);
__ ret(3 * kPointerSize); __ ret(3 * kPointerSize);
__ bind(&make_two_character_string); __ bind(&make_two_character_string);
// Setup registers for allocating the two character string. // Setup registers for allocating the two character string.
__ movq(rax, Operand(rsp, kStringOffset)); __ movzxwq(rbx, FieldOperand(rax, rdx, times_1, SeqAsciiString::kHeaderSize));
__ movq(rbx, FieldOperand(rax, HeapObject::kMapOffset)); __ AllocateAsciiString(rax, rcx, r11, r14, r15, &runtime);
__ movzxbl(rbx, FieldOperand(rbx, Map::kInstanceTypeOffset)); __ movw(FieldOperand(rax, SeqAsciiString::kHeaderSize), rbx);
__ Set(rcx, 2); __ IncrementCounter(counters->sub_string_native(), 1);
__ ret(3 * kPointerSize);
if (FLAG_string_slices) {
Label copy_routine;
// If coming from the make_two_character_string path, the string
// is too short to be sliced anyways.
STATIC_ASSERT(2 < SlicedString::kMinLength);
__ jmp(&copy_routine);
__ bind(&result_longer_than_two); __ bind(&result_longer_than_two);
// rax: string // rax: string
// rbx: instance type // rbx: instance type
// rcx: sub string length // rcx: sub string length
// rdx: from index (smi) // rdx: from index (smi)
Label allocate_slice, sliced_string, seq_or_external_string; // Deal with different string types: update the index if necessary
__ cmpq(rcx, Immediate(SlicedString::kMinLength)); // and put the underlying string into edi.
// Short slice. Copy instead of slicing. Label underlying_unpacked, sliced_string, seq_or_external_string;
__ j(less, &copy_routine);
// If the string is not indirect, it can only be sequential or external. // If the string is not indirect, it can only be sequential or external.
STATIC_ASSERT(kIsIndirectStringMask == (kSlicedStringTag & kConsStringTag)); STATIC_ASSERT(kIsIndirectStringMask == (kSlicedStringTag & kConsStringTag));
STATIC_ASSERT(kIsIndirectStringMask != 0); STATIC_ASSERT(kIsIndirectStringMask != 0);
...@@ -5101,27 +5099,42 @@ void SubStringStub::Generate(MacroAssembler* masm) { ...@@ -5101,27 +5099,42 @@ void SubStringStub::Generate(MacroAssembler* masm) {
__ testb(rbx, Immediate(kSlicedNotConsMask)); __ testb(rbx, Immediate(kSlicedNotConsMask));
__ j(not_zero, &sliced_string, Label::kNear); __ j(not_zero, &sliced_string, Label::kNear);
// Cons string. Check whether it is flat, then fetch first part. // Cons string. Check whether it is flat, then fetch first part.
// Flat cons strings have an empty second part.
__ CompareRoot(FieldOperand(rax, ConsString::kSecondOffset), __ CompareRoot(FieldOperand(rax, ConsString::kSecondOffset),
Heap::kEmptyStringRootIndex); Heap::kEmptyStringRootIndex);
__ j(not_equal, &runtime); __ j(not_equal, &runtime);
__ movq(rdi, FieldOperand(rax, ConsString::kFirstOffset)); __ movq(rdi, FieldOperand(rax, ConsString::kFirstOffset));
__ jmp(&allocate_slice, Label::kNear); // Update instance type.
__ movq(rbx, FieldOperand(rdi, HeapObject::kMapOffset));
__ movzxbl(rbx, FieldOperand(rbx, Map::kInstanceTypeOffset));
__ jmp(&underlying_unpacked, Label::kNear);
__ bind(&sliced_string); __ bind(&sliced_string);
// Sliced string. Fetch parent and correct start index by offset. // Sliced string. Fetch parent and correct start index by offset.
__ addq(rdx, FieldOperand(rax, SlicedString::kOffsetOffset)); __ addq(rdx, FieldOperand(rax, SlicedString::kOffsetOffset));
__ movq(rdi, FieldOperand(rax, SlicedString::kParentOffset)); __ movq(rdi, FieldOperand(rax, SlicedString::kParentOffset));
__ jmp(&allocate_slice, Label::kNear); // Update instance type.
__ movq(rbx, FieldOperand(rdi, HeapObject::kMapOffset));
__ movzxbl(rbx, FieldOperand(rbx, Map::kInstanceTypeOffset));
__ jmp(&underlying_unpacked, Label::kNear);
__ bind(&seq_or_external_string); __ bind(&seq_or_external_string);
// Sequential or external string. Just move string to the correct register. // Sequential or external string. Just move string to the correct register.
__ movq(rdi, rax); __ movq(rdi, rax);
__ bind(&allocate_slice); __ bind(&underlying_unpacked);
// edi: underlying subject string
// ebx: instance type of original subject string if (FLAG_string_slices) {
// edx: offset Label copy_routine;
// ecx: length // rdi: underlying subject string
// rbx: instance type of underlying subject string
// rdx: adjusted start index (smi)
// rcx: length
// If coming from the make_two_character_string path, the string
// is too short to be sliced anyways.
__ cmpq(rcx, Immediate(SlicedString::kMinLength));
// Short slice. Copy instead of slicing.
__ j(less, &copy_routine);
// Allocate new sliced string. At this point we do not reload the instance // Allocate new sliced string. At this point we do not reload the instance
// type including the string encoding because we simply rely on the info // type including the string encoding because we simply rely on the info
// provided by the original string. It does not matter if the original // provided by the original string. It does not matter if the original
...@@ -5132,10 +5145,10 @@ void SubStringStub::Generate(MacroAssembler* masm) { ...@@ -5132,10 +5145,10 @@ void SubStringStub::Generate(MacroAssembler* masm) {
STATIC_ASSERT((kStringEncodingMask & kTwoByteStringTag) == 0); STATIC_ASSERT((kStringEncodingMask & kTwoByteStringTag) == 0);
__ testb(rbx, Immediate(kStringEncodingMask)); __ testb(rbx, Immediate(kStringEncodingMask));
__ j(zero, &two_byte_slice, Label::kNear); __ j(zero, &two_byte_slice, Label::kNear);
__ AllocateAsciiSlicedString(rax, rbx, no_reg, &runtime); __ AllocateAsciiSlicedString(rax, rbx, r14, &runtime);
__ jmp(&set_slice_header, Label::kNear); __ jmp(&set_slice_header, Label::kNear);
__ bind(&two_byte_slice); __ bind(&two_byte_slice);
__ AllocateTwoByteSlicedString(rax, rbx, no_reg, &runtime); __ AllocateTwoByteSlicedString(rax, rbx, r14, &runtime);
__ bind(&set_slice_header); __ bind(&set_slice_header);
__ movq(FieldOperand(rax, SlicedString::kOffsetOffset), rdx); __ movq(FieldOperand(rax, SlicedString::kOffsetOffset), rdx);
__ Integer32ToSmi(rcx, rcx); __ Integer32ToSmi(rcx, rcx);
...@@ -5143,82 +5156,85 @@ void SubStringStub::Generate(MacroAssembler* masm) { ...@@ -5143,82 +5156,85 @@ void SubStringStub::Generate(MacroAssembler* masm) {
__ movq(FieldOperand(rax, SlicedString::kParentOffset), rdi); __ movq(FieldOperand(rax, SlicedString::kParentOffset), rdi);
__ movq(FieldOperand(rax, SlicedString::kHashFieldOffset), __ movq(FieldOperand(rax, SlicedString::kHashFieldOffset),
Immediate(String::kEmptyHashField)); Immediate(String::kEmptyHashField));
__ jmp(&return_rax); __ IncrementCounter(counters->sub_string_native(), 1);
__ ret(kArgumentsSize);
__ bind(&copy_routine); __ bind(&copy_routine);
} else {
__ bind(&result_longer_than_two);
} }
// rax: string // rdi: underlying subject string
// rbx: instance type // rbx: instance type of underlying subject string
// rcx: result string length // rdx: adjusted start index (smi)
// Check for flat ascii string // rcx: length
Label non_ascii_flat; // The subject string can only be external or sequential string of either
__ JumpIfInstanceTypeIsNotSequentialAscii(rbx, rbx, &non_ascii_flat); // encoding at this point.
Label two_byte_sequential, sequential_string;
STATIC_ASSERT(kExternalStringTag != 0);
STATIC_ASSERT(kSeqStringTag == 0);
__ testb(rbx, Immediate(kExternalStringTag));
__ j(zero, &sequential_string);
// Handle external string.
// Rule out short external strings.
STATIC_CHECK(kShortExternalStringTag != 0);
__ testb(rbx, Immediate(kShortExternalStringMask));
__ j(not_zero, &runtime);
__ movq(rdi, FieldOperand(rdi, ExternalString::kResourceDataOffset));
// Move the pointer so that offset-wise, it looks like a sequential string.
STATIC_ASSERT(SeqTwoByteString::kHeaderSize == SeqAsciiString::kHeaderSize);
__ subq(rdi, Immediate(SeqTwoByteString::kHeaderSize - kHeapObjectTag));
__ bind(&sequential_string);
STATIC_ASSERT((kAsciiStringTag & kStringEncodingMask) != 0);
__ testb(rbx, Immediate(kStringEncodingMask));
__ j(zero, &two_byte_sequential);
// Allocate the result. // Allocate the result.
__ AllocateAsciiString(rax, rcx, rbx, rdx, rdi, &runtime); __ AllocateAsciiString(rax, rcx, r11, r14, r15, &runtime);
// rax: result string // rax: result string
// rcx: result string length // rcx: result string length
__ movq(rdx, rsi); // esi used by following code. __ movq(r14, rsi); // esi used by following code.
// Locate first character of result. { // Locate character of sub string start.
__ lea(rdi, FieldOperand(rax, SeqAsciiString::kHeaderSize)); SmiIndex smi_as_index = masm->SmiToIndex(rdx, rdx, times_1);
// Load string argument and locate character of sub string start. __ lea(rsi, Operand(rdi, smi_as_index.reg, smi_as_index.scale,
__ movq(rsi, Operand(rsp, kStringOffset));
__ movq(rbx, Operand(rsp, kFromOffset));
{
SmiIndex smi_as_index = masm->SmiToIndex(rbx, rbx, times_1);
__ lea(rsi, Operand(rsi, smi_as_index.reg, smi_as_index.scale,
SeqAsciiString::kHeaderSize - kHeapObjectTag)); SeqAsciiString::kHeaderSize - kHeapObjectTag));
} }
// Locate first character of result.
__ lea(rdi, FieldOperand(rax, SeqAsciiString::kHeaderSize));
// rax: result string // rax: result string
// rcx: result length // rcx: result length
// rdx: original value of rsi
// rdi: first character of result // rdi: first character of result
// rsi: character of sub string start // rsi: character of sub string start
// r14: original value of rsi
StringHelper::GenerateCopyCharactersREP(masm, rdi, rsi, rcx, true); StringHelper::GenerateCopyCharactersREP(masm, rdi, rsi, rcx, true);
__ movq(rsi, rdx); // Restore rsi. __ movq(rsi, r14); // Restore rsi.
Counters* counters = masm->isolate()->counters();
__ IncrementCounter(counters->sub_string_native(), 1); __ IncrementCounter(counters->sub_string_native(), 1);
__ ret(kArgumentsSize); __ ret(kArgumentsSize);
__ bind(&non_ascii_flat); __ bind(&two_byte_sequential);
// rax: string
// rbx: instance type & kStringRepresentationMask | kStringEncodingMask
// rcx: result string length
// Check for sequential two byte string
__ cmpb(rbx, Immediate(kSeqStringTag | kTwoByteStringTag));
__ j(not_equal, &runtime);
// Allocate the result. // Allocate the result.
__ AllocateTwoByteString(rax, rcx, rbx, rdx, rdi, &runtime); __ AllocateTwoByteString(rax, rcx, r11, r14, r15, &runtime);
// rax: result string // rax: result string
// rcx: result string length // rcx: result string length
__ movq(rdx, rsi); // esi used by following code. __ movq(r14, rsi); // esi used by following code.
// Locate first character of result. { // Locate character of sub string start.
__ lea(rdi, FieldOperand(rax, SeqTwoByteString::kHeaderSize)); SmiIndex smi_as_index = masm->SmiToIndex(rdx, rdx, times_2);
// Load string argument and locate character of sub string start. __ lea(rsi, Operand(rdi, smi_as_index.reg, smi_as_index.scale,
__ movq(rsi, Operand(rsp, kStringOffset));
__ movq(rbx, Operand(rsp, kFromOffset));
{
SmiIndex smi_as_index = masm->SmiToIndex(rbx, rbx, times_2);
__ lea(rsi, Operand(rsi, smi_as_index.reg, smi_as_index.scale,
SeqAsciiString::kHeaderSize - kHeapObjectTag)); SeqAsciiString::kHeaderSize - kHeapObjectTag));
} }
// Locate first character of result.
__ lea(rdi, FieldOperand(rax, SeqTwoByteString::kHeaderSize));
// rax: result string // rax: result string
// rcx: result length // rcx: result length
// rdx: original value of rsi
// rdi: first character of result // rdi: first character of result
// rsi: character of sub string start // rsi: character of sub string start
// r14: original value of rsi
StringHelper::GenerateCopyCharactersREP(masm, rdi, rsi, rcx, false); StringHelper::GenerateCopyCharactersREP(masm, rdi, rsi, rcx, false);
__ movq(rsi, rdx); // Restore esi. __ movq(rsi, r14); // Restore esi.
__ bind(&return_rax);
__ IncrementCounter(counters->sub_string_native(), 1); __ IncrementCounter(counters->sub_string_native(), 1);
__ ret(kArgumentsSize); __ ret(kArgumentsSize);
......
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