a651838652
Bug: https://github.com/dart-lang/sdk/issues/35009 Change-Id: I6b509e1eb8e76e07f60a086c67358d65d2a1fae4 Reviewed-on: https://dart-review.googlesource.com/c/82460 Reviewed-by: Vyacheslav Egorov <vegorov@google.com> Reviewed-by: Martin Kustermann <kustermann@google.com> Reviewed-by: Siva Annamalai <asiva@google.com> Commit-Queue: Ryan Macnak <rmacnak@google.com>
374 lines
12 KiB
C++
374 lines
12 KiB
C++
// Copyright (c) 2018, the Dart project authors. Please see the AUTHORS file
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// for details. All rights reserved. Use of this source code is governed by a
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// BSD-style license that can be found in the LICENSE file.
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#include "vm/globals.h"
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#if !defined(DART_PRECOMPILED_RUNTIME)
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#include "vm/compiler/assembler/disassembler_kbc.h"
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#include "platform/assert.h"
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#include "vm/constants_kbc.h"
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#include "vm/cpu.h"
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#include "vm/instructions.h"
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namespace dart {
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static const char* kOpcodeNames[] = {
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#define BYTECODE_NAME(name, encoding, op1, op2, op3) #name,
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KERNEL_BYTECODES_LIST(BYTECODE_NAME)
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#undef BYTECODE_NAME
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};
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static const size_t kOpcodeCount =
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sizeof(kOpcodeNames) / sizeof(kOpcodeNames[0]);
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typedef void (*BytecodeFormatter)(char* buffer,
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intptr_t size,
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uword pc,
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uint32_t bc);
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typedef void (*Fmt)(char** buf, intptr_t* size, uword pc, int32_t value);
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template <typename ValueType>
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void FormatOperand(char** buf,
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intptr_t* size,
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const char* fmt,
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ValueType value) {
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intptr_t written = Utils::SNPrint(*buf, *size, fmt, value);
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if (written < *size) {
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*buf += written;
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*size += written;
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} else {
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*size = -1;
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}
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}
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static void Fmt___(char** buf, intptr_t* size, uword pc, int32_t value) {}
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static void Fmttgt(char** buf, intptr_t* size, uword pc, int32_t value) {
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FormatOperand(buf, size, "-> %" Px, pc + (value << 2));
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}
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static void Fmtlit(char** buf, intptr_t* size, uword pc, int32_t value) {
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FormatOperand(buf, size, "k%d", value);
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}
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static void Fmtreg(char** buf, intptr_t* size, uword pc, int32_t value) {
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FormatOperand(buf, size, "r%d", value);
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}
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static void Fmtxeg(char** buf, intptr_t* size, uword pc, int32_t value) {
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if (value < 0) {
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FormatOperand(buf, size, "FP[%d]", value);
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} else {
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Fmtreg(buf, size, pc, value);
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}
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}
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static void Fmtnum(char** buf, intptr_t* size, uword pc, int32_t value) {
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FormatOperand(buf, size, "#%d", value);
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}
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static void Apply(char** buf,
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intptr_t* size,
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uword pc,
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Fmt fmt,
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int32_t value,
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const char* suffix) {
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if (*size <= 0) {
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return;
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}
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fmt(buf, size, pc, value);
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if (*size > 0) {
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FormatOperand(buf, size, "%s", suffix);
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}
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}
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static void Format0(char* buf,
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intptr_t size,
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uword pc,
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uint32_t op,
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Fmt op1,
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Fmt op2,
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Fmt op3) {}
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static void FormatT(char* buf,
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intptr_t size,
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uword pc,
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uint32_t op,
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Fmt op1,
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Fmt op2,
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Fmt op3) {
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const int32_t x = static_cast<int32_t>(op) >> 8;
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Apply(&buf, &size, pc, op1, x, "");
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}
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static void FormatA(char* buf,
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intptr_t size,
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uword pc,
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uint32_t op,
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Fmt op1,
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Fmt op2,
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Fmt op3) {
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const int32_t a = (op & 0xFF00) >> 8;
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Apply(&buf, &size, pc, op1, a, "");
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}
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static void FormatA_D(char* buf,
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intptr_t size,
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uword pc,
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uint32_t op,
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Fmt op1,
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Fmt op2,
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Fmt op3) {
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const int32_t a = (op & 0xFF00) >> 8;
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const int32_t bc = op >> 16;
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Apply(&buf, &size, pc, op1, a, ", ");
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Apply(&buf, &size, pc, op2, bc, "");
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}
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static void FormatA_X(char* buf,
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intptr_t size,
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uword pc,
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uint32_t op,
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Fmt op1,
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Fmt op2,
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Fmt op3) {
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const int32_t a = (op & 0xFF00) >> 8;
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const int32_t bc = static_cast<int32_t>(op) >> 16;
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Apply(&buf, &size, pc, op1, a, ", ");
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Apply(&buf, &size, pc, op2, bc, "");
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}
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static void FormatX(char* buf,
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intptr_t size,
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uword pc,
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uint32_t op,
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Fmt op1,
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Fmt op2,
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Fmt op3) {
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const int32_t bc = static_cast<int32_t>(op) >> 16;
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Apply(&buf, &size, pc, op1, bc, "");
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}
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static void FormatD(char* buf,
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intptr_t size,
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uword pc,
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uint32_t op,
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Fmt op1,
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Fmt op2,
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Fmt op3) {
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const int32_t bc = op >> 16;
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Apply(&buf, &size, pc, op1, bc, "");
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}
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static void FormatA_B_C(char* buf,
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intptr_t size,
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uword pc,
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uint32_t op,
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Fmt op1,
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Fmt op2,
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Fmt op3) {
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const int32_t a = (op >> 8) & 0xFF;
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const int32_t b = (op >> 16) & 0xFF;
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const int32_t c = (op >> 24) & 0xFF;
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Apply(&buf, &size, pc, op1, a, ", ");
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Apply(&buf, &size, pc, op2, b, ", ");
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Apply(&buf, &size, pc, op3, c, "");
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}
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// TODO(alexmarkov) This format is currently unused. Restore it if needed, or
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// remove it once bytecode instruction set is finalized.
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//
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// static void FormatA_B_Y(char* buf,
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// intptr_t size,
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// uword pc,
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// uint32_t op,
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// Fmt op1,
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// Fmt op2,
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// Fmt op3) {
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// const int32_t a = (op >> 8) & 0xFF;
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// const int32_t b = (op >> 16) & 0xFF;
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// const int32_t y = static_cast<int8_t>((op >> 24) & 0xFF);
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// Apply(&buf, &size, pc, op1, a, ", ");
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// Apply(&buf, &size, pc, op2, b, ", ");
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// Apply(&buf, &size, pc, op3, y, "");
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// }
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#define BYTECODE_FORMATTER(name, encoding, op1, op2, op3) \
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static void Format##name(char* buf, intptr_t size, uword pc, uint32_t op) { \
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Format##encoding(buf, size, pc, op, Fmt##op1, Fmt##op2, Fmt##op3); \
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}
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KERNEL_BYTECODES_LIST(BYTECODE_FORMATTER)
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#undef BYTECODE_FORMATTER
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static const BytecodeFormatter kFormatters[] = {
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#define BYTECODE_FORMATTER(name, encoding, op1, op2, op3) &Format##name,
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KERNEL_BYTECODES_LIST(BYTECODE_FORMATTER)
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#undef BYTECODE_FORMATTER
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};
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static bool HasLoadFromPool(KBCInstr instr) {
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switch (KernelBytecode::DecodeOpcode(instr)) {
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case KernelBytecode::kLoadConstant:
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case KernelBytecode::kPushConstant:
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case KernelBytecode::kIndirectStaticCall:
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case KernelBytecode::kInstanceCall:
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case KernelBytecode::kStoreStaticTOS:
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case KernelBytecode::kPushStatic:
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case KernelBytecode::kAllocate:
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case KernelBytecode::kInstantiateType:
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case KernelBytecode::kInstantiateTypeArgumentsTOS:
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case KernelBytecode::kAssertAssignable:
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return true;
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default:
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return false;
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}
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}
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static bool GetLoadedObjectAt(uword pc,
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const ObjectPool& object_pool,
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Object* obj) {
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KBCInstr instr = KernelBytecode::At(pc);
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if (HasLoadFromPool(instr)) {
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uint16_t index = KernelBytecode::DecodeD(instr);
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if (object_pool.TypeAt(index) == ObjectPool::kTaggedObject) {
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*obj = object_pool.ObjectAt(index);
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return true;
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}
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}
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return false;
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}
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void KernelBytecodeDisassembler::DecodeInstruction(char* hex_buffer,
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intptr_t hex_size,
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char* human_buffer,
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intptr_t human_size,
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int* out_instr_size,
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const Code& bytecode,
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Object** object,
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uword pc) {
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const uint32_t instr = *reinterpret_cast<uint32_t*>(pc);
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const uint8_t opcode = instr & 0xFF;
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ASSERT(opcode < kOpcodeCount);
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size_t name_size =
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Utils::SNPrint(human_buffer, human_size, "%-10s\t", kOpcodeNames[opcode]);
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human_buffer += name_size;
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human_size -= name_size;
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kFormatters[opcode](human_buffer, human_size, pc, instr);
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Utils::SNPrint(hex_buffer, hex_size, "%08x", instr);
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if (out_instr_size) {
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*out_instr_size = sizeof(uint32_t);
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}
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*object = NULL;
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if (!bytecode.IsNull()) {
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*object = &Object::Handle();
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const ObjectPool& pool = ObjectPool::Handle(bytecode.object_pool());
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if (!GetLoadedObjectAt(pc, pool, *object)) {
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*object = NULL;
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}
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}
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}
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void KernelBytecodeDisassembler::Disassemble(uword start,
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uword end,
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DisassemblyFormatter* formatter,
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const Code& bytecode) {
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#if !defined(PRODUCT)
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const Code::Comments& comments =
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bytecode.IsNull() ? Code::Comments::New(0) : bytecode.comments();
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ASSERT(formatter != NULL);
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char hex_buffer[kHexadecimalBufferSize]; // Instruction in hexadecimal form.
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char human_buffer[kUserReadableBufferSize]; // Human-readable instruction.
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uword pc = start;
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intptr_t comment_finger = 0;
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GrowableArray<const Function*> inlined_functions;
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GrowableArray<TokenPosition> token_positions;
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while (pc < end) {
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const intptr_t offset = pc - start;
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const intptr_t old_comment_finger = comment_finger;
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while (comment_finger < comments.Length() &&
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comments.PCOffsetAt(comment_finger) <= offset) {
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formatter->Print(
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" ;; %s\n",
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String::Handle(comments.CommentAt(comment_finger)).ToCString());
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comment_finger++;
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}
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if (old_comment_finger != comment_finger) {
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char str[4000];
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BufferFormatter f(str, sizeof(str));
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// Comment emitted, emit inlining information.
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bytecode.GetInlinedFunctionsAtInstruction(offset, &inlined_functions,
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&token_positions);
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// Skip top scope function printing (last entry in 'inlined_functions').
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bool first = true;
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for (intptr_t i = 1; i < inlined_functions.length(); i++) {
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const char* name = inlined_functions[i]->ToQualifiedCString();
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if (first) {
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f.Print(" ;; Inlined [%s", name);
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first = false;
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} else {
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f.Print(" -> %s", name);
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}
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}
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if (!first) {
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f.Print("]\n");
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formatter->Print("%s", str);
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}
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}
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int instruction_length;
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Object* object;
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DecodeInstruction(hex_buffer, sizeof(hex_buffer), human_buffer,
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sizeof(human_buffer), &instruction_length, bytecode,
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&object, pc);
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formatter->ConsumeInstruction(bytecode, hex_buffer, sizeof(hex_buffer),
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human_buffer, sizeof(human_buffer), object,
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pc);
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pc += instruction_length;
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}
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#else
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UNREACHABLE();
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#endif
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}
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void KernelBytecodeDisassembler::Disassemble(const Function& function) {
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#if !defined(PRODUCT)
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ASSERT(function.HasBytecode());
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const char* function_fullname = function.ToFullyQualifiedCString();
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Zone* zone = Thread::Current()->zone();
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const Code& bytecode = Code::Handle(zone, function.Bytecode());
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THR_Print("Bytecode for function '%s' {\n", function_fullname);
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const Instructions& instr = Instructions::Handle(bytecode.instructions());
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uword start = instr.PayloadStart();
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DisassembleToStdout stdout_formatter;
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LogBlock lb;
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Disassemble(start, start + instr.Size(), &stdout_formatter, bytecode);
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THR_Print("}\n");
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const ObjectPool& object_pool =
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ObjectPool::Handle(zone, bytecode.GetObjectPool());
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object_pool.DebugPrint();
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THR_Print("PC Descriptors for function '%s' {\n", function_fullname);
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PcDescriptors::PrintHeaderString();
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const PcDescriptors& descriptors =
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PcDescriptors::Handle(zone, bytecode.pc_descriptors());
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THR_Print("%s}\n", descriptors.ToCString());
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THR_Print("Exception Handlers for function '%s' {\n", function_fullname);
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const ExceptionHandlers& handlers =
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ExceptionHandlers::Handle(zone, bytecode.exception_handlers());
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THR_Print("%s}\n", handlers.ToCString());
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#else
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UNREACHABLE();
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#endif
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}
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} // namespace dart
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#endif // !defined(DART_PRECOMPILED_RUNTIME)
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