e0ab99b0b2
Remember if a JS warning was issued in ic_data. Save a word in ic_data on 64-bit platforms. R=iposva@google.com, srdjan@google.com Review URL: https://codereview.chromium.org//254723003 git-svn-id: https://dart.googlecode.com/svn/branches/bleeding_edge/dart@35457 260f80e4-7a28-3924-810f-c04153c831b5
1862 lines
68 KiB
C++
1862 lines
68 KiB
C++
// Copyright (c) 2013, 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(TARGET_ARCH_ARM)
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#include "vm/assembler.h"
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#include "vm/code_generator.h"
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#include "vm/compiler.h"
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#include "vm/dart_entry.h"
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#include "vm/flow_graph_compiler.h"
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#include "vm/heap.h"
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#include "vm/instructions.h"
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#include "vm/object_store.h"
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#include "vm/stack_frame.h"
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#include "vm/stub_code.h"
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#include "vm/tags.h"
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#define __ assembler->
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namespace dart {
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DEFINE_FLAG(bool, inline_alloc, true, "Inline allocation of objects.");
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DEFINE_FLAG(bool, use_slow_path, false,
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"Set to true for debugging & verifying the slow paths.");
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DECLARE_FLAG(bool, trace_optimized_ic_calls);
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// Input parameters:
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// LR : return address.
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// SP : address of last argument in argument array.
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// SP + 4*R4 - 4 : address of first argument in argument array.
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// SP + 4*R4 : address of return value.
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// R5 : address of the runtime function to call.
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// R4 : number of arguments to the call.
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void StubCode::GenerateCallToRuntimeStub(Assembler* assembler) {
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const intptr_t isolate_offset = NativeArguments::isolate_offset();
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const intptr_t argc_tag_offset = NativeArguments::argc_tag_offset();
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const intptr_t argv_offset = NativeArguments::argv_offset();
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const intptr_t retval_offset = NativeArguments::retval_offset();
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const intptr_t exitframe_last_param_slot_from_fp = 2;
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__ mov(IP, ShifterOperand(0));
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__ Push(IP); // Push 0 for the PC marker.
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__ EnterFrame((1 << FP) | (1 << LR), 0);
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// Load current Isolate pointer from Context structure into R0.
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__ ldr(R0, FieldAddress(CTX, Context::isolate_offset()));
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// Save exit frame information to enable stack walking as we are about
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// to transition to Dart VM C++ code.
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__ StoreToOffset(kWord, SP, R0, Isolate::top_exit_frame_info_offset());
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// Save current Context pointer into Isolate structure.
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__ StoreToOffset(kWord, CTX, R0, Isolate::top_context_offset());
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// Cache Isolate pointer into CTX while executing runtime code.
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__ mov(CTX, ShifterOperand(R0));
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#if defined(DEBUG)
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{ Label ok;
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// Check that we are always entering from Dart code.
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__ LoadFromOffset(kWord, R6, CTX, Isolate::vm_tag_offset());
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__ CompareImmediate(R6, VMTag::kScriptTagId);
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__ b(&ok, EQ);
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__ Stop("Not coming from Dart code.");
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__ Bind(&ok);
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}
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#endif
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// Mark that the isolate is executing VM code.
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__ StoreToOffset(kWord, R5, CTX, Isolate::vm_tag_offset());
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// Reserve space for arguments and align frame before entering C++ world.
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// NativeArguments are passed in registers.
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ASSERT(sizeof(NativeArguments) == 4 * kWordSize);
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__ ReserveAlignedFrameSpace(0);
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// Pass NativeArguments structure by value and call runtime.
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// Registers R0, R1, R2, and R3 are used.
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ASSERT(isolate_offset == 0 * kWordSize);
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// Set isolate in NativeArgs: R0 already contains CTX.
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// There are no runtime calls to closures, so we do not need to set the tag
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// bits kClosureFunctionBit and kInstanceFunctionBit in argc_tag_.
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ASSERT(argc_tag_offset == 1 * kWordSize);
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__ mov(R1, ShifterOperand(R4)); // Set argc in NativeArguments.
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ASSERT(argv_offset == 2 * kWordSize);
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__ add(R2, FP, ShifterOperand(R4, LSL, 2)); // Compute argv.
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// Set argv in NativeArguments.
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__ AddImmediate(R2, exitframe_last_param_slot_from_fp * kWordSize);
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ASSERT(retval_offset == 3 * kWordSize);
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__ add(R3, R2, ShifterOperand(kWordSize)); // Retval is next to 1st argument.
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// Call runtime or redirection via simulator.
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__ blx(R5);
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// Mark that the isolate is executing Dart code.
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__ LoadImmediate(R2, VMTag::kScriptTagId);
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__ StoreToOffset(kWord, R2, CTX, Isolate::vm_tag_offset());
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// Reset exit frame information in Isolate structure.
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__ LoadImmediate(R2, 0);
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__ StoreToOffset(kWord, R2, CTX, Isolate::top_exit_frame_info_offset());
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// Load Context pointer from Isolate structure into R2.
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__ LoadFromOffset(kWord, R2, CTX, Isolate::top_context_offset());
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// Reset Context pointer in Isolate structure.
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__ LoadImmediate(R3, reinterpret_cast<intptr_t>(Object::null()));
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__ StoreToOffset(kWord, R3, CTX, Isolate::top_context_offset());
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// Cache Context pointer into CTX while executing Dart code.
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__ mov(CTX, ShifterOperand(R2));
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__ LeaveFrame((1 << FP) | (1 << LR));
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// Adjust SP for the empty PC marker.
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__ AddImmediate(SP, kWordSize);
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__ Ret();
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}
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// Print the stop message.
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DEFINE_LEAF_RUNTIME_ENTRY(void, PrintStopMessage, 1, const char* message) {
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OS::Print("Stop message: %s\n", message);
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}
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END_LEAF_RUNTIME_ENTRY
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// Input parameters:
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// R0 : stop message (const char*).
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// Must preserve all registers.
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void StubCode::GeneratePrintStopMessageStub(Assembler* assembler) {
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__ EnterCallRuntimeFrame(0);
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// Call the runtime leaf function. R0 already contains the parameter.
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__ CallRuntime(kPrintStopMessageRuntimeEntry, 1);
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__ LeaveCallRuntimeFrame();
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__ Ret();
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}
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// Input parameters:
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// LR : return address.
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// SP : address of return value.
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// R5 : address of the native function to call.
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// R2 : address of first argument in argument array.
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// R1 : argc_tag including number of arguments and function kind.
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void StubCode::GenerateCallNativeCFunctionStub(Assembler* assembler) {
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const intptr_t isolate_offset = NativeArguments::isolate_offset();
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const intptr_t argc_tag_offset = NativeArguments::argc_tag_offset();
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const intptr_t argv_offset = NativeArguments::argv_offset();
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const intptr_t retval_offset = NativeArguments::retval_offset();
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__ mov(IP, ShifterOperand(0));
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__ Push(IP); // Push 0 for the PC marker.
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__ EnterFrame((1 << FP) | (1 << LR), 0);
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// Load current Isolate pointer from Context structure into R0.
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__ ldr(R0, FieldAddress(CTX, Context::isolate_offset()));
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// Save exit frame information to enable stack walking as we are about
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// to transition to native code.
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__ StoreToOffset(kWord, SP, R0, Isolate::top_exit_frame_info_offset());
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// Save current Context pointer into Isolate structure.
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__ StoreToOffset(kWord, CTX, R0, Isolate::top_context_offset());
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// Cache Isolate pointer into CTX while executing native code.
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__ mov(CTX, ShifterOperand(R0));
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#if defined(DEBUG)
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{ Label ok;
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// Check that we are always entering from Dart code.
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__ LoadFromOffset(kWord, R6, CTX, Isolate::vm_tag_offset());
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__ CompareImmediate(R6, VMTag::kScriptTagId);
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__ b(&ok, EQ);
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__ Stop("Not coming from Dart code.");
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__ Bind(&ok);
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}
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#endif
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// Mark that the isolate is executing Native code.
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__ StoreToOffset(kWord, R5, CTX, Isolate::vm_tag_offset());
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// Reserve space for the native arguments structure passed on the stack (the
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// outgoing pointer parameter to the native arguments structure is passed in
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// R0) and align frame before entering the C++ world.
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__ ReserveAlignedFrameSpace(sizeof(NativeArguments));
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// Initialize NativeArguments structure and call native function.
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// Registers R0, R1, R2, and R3 are used.
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ASSERT(isolate_offset == 0 * kWordSize);
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// Set isolate in NativeArgs: R0 already contains CTX.
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// There are no native calls to closures, so we do not need to set the tag
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// bits kClosureFunctionBit and kInstanceFunctionBit in argc_tag_.
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ASSERT(argc_tag_offset == 1 * kWordSize);
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// Set argc in NativeArguments: R1 already contains argc.
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ASSERT(argv_offset == 2 * kWordSize);
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// Set argv in NativeArguments: R2 already contains argv.
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ASSERT(retval_offset == 3 * kWordSize);
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__ add(R3, FP, ShifterOperand(3 * kWordSize)); // Set retval in NativeArgs.
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// TODO(regis): Should we pass the structure by value as in runtime calls?
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// It would require changing Dart API for native functions.
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// For now, space is reserved on the stack and we pass a pointer to it.
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__ stm(IA, SP, (1 << R0) | (1 << R1) | (1 << R2) | (1 << R3));
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__ mov(R0, ShifterOperand(SP)); // Pass the pointer to the NativeArguments.
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// Call native function (setsup scope if not leaf function).
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Label leaf_call;
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Label done;
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__ TestImmediate(R1, NativeArguments::AutoSetupScopeMask());
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__ b(&leaf_call, EQ);
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__ mov(R1, ShifterOperand(R5)); // Pass the function entrypoint to call.
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// Call native function invocation wrapper or redirection via simulator.
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#if defined(USING_SIMULATOR)
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uword entry = reinterpret_cast<uword>(NativeEntry::NativeCallWrapper);
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entry = Simulator::RedirectExternalReference(
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entry, Simulator::kNativeCall, NativeEntry::kNumCallWrapperArguments);
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__ LoadImmediate(R2, entry);
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__ blx(R2);
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#else
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__ BranchLink(&NativeEntry::NativeCallWrapperLabel());
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#endif
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__ b(&done);
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__ Bind(&leaf_call);
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// Call native function or redirection via simulator.
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__ blx(R5);
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__ Bind(&done);
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// Mark that the isolate is executing Dart code.
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__ LoadImmediate(R2, VMTag::kScriptTagId);
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__ StoreToOffset(kWord, R2, CTX, Isolate::vm_tag_offset());
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// Reset exit frame information in Isolate structure.
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__ LoadImmediate(R2, 0);
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__ StoreToOffset(kWord, R2, CTX, Isolate::top_exit_frame_info_offset());
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// Load Context pointer from Isolate structure into R2.
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__ LoadFromOffset(kWord, R2, CTX, Isolate::top_context_offset());
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// Reset Context pointer in Isolate structure.
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__ LoadImmediate(R3, reinterpret_cast<intptr_t>(Object::null()));
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__ StoreToOffset(kWord, R3, CTX, Isolate::top_context_offset());
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// Cache Context pointer into CTX while executing Dart code.
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__ mov(CTX, ShifterOperand(R2));
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__ LeaveFrame((1 << FP) | (1 << LR));
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// Adjust SP for the empty PC marker.
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__ AddImmediate(SP, kWordSize);
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__ Ret();
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}
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// Input parameters:
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// LR : return address.
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// SP : address of return value.
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// R5 : address of the native function to call.
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// R2 : address of first argument in argument array.
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// R1 : argc_tag including number of arguments and function kind.
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void StubCode::GenerateCallBootstrapCFunctionStub(Assembler* assembler) {
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const intptr_t isolate_offset = NativeArguments::isolate_offset();
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const intptr_t argc_tag_offset = NativeArguments::argc_tag_offset();
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const intptr_t argv_offset = NativeArguments::argv_offset();
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const intptr_t retval_offset = NativeArguments::retval_offset();
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__ mov(IP, ShifterOperand(0));
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__ Push(IP); // Push 0 for the PC marker.
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__ EnterFrame((1 << FP) | (1 << LR), 0);
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// Load current Isolate pointer from Context structure into R0.
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__ ldr(R0, FieldAddress(CTX, Context::isolate_offset()));
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// Save exit frame information to enable stack walking as we are about
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// to transition to native code.
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__ StoreToOffset(kWord, SP, R0, Isolate::top_exit_frame_info_offset());
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// Save current Context pointer into Isolate structure.
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__ StoreToOffset(kWord, CTX, R0, Isolate::top_context_offset());
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// Cache Isolate pointer into CTX while executing native code.
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__ mov(CTX, ShifterOperand(R0));
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#if defined(DEBUG)
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{ Label ok;
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// Check that we are always entering from Dart code.
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__ LoadFromOffset(kWord, R6, CTX, Isolate::vm_tag_offset());
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__ CompareImmediate(R6, VMTag::kScriptTagId);
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__ b(&ok, EQ);
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__ Stop("Not coming from Dart code.");
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__ Bind(&ok);
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}
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#endif
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// Mark that the isolate is executing Native code.
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__ StoreToOffset(kWord, R5, CTX, Isolate::vm_tag_offset());
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// Reserve space for the native arguments structure passed on the stack (the
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// outgoing pointer parameter to the native arguments structure is passed in
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// R0) and align frame before entering the C++ world.
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__ ReserveAlignedFrameSpace(sizeof(NativeArguments));
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// Initialize NativeArguments structure and call native function.
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// Registers R0, R1, R2, and R3 are used.
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ASSERT(isolate_offset == 0 * kWordSize);
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// Set isolate in NativeArgs: R0 already contains CTX.
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// There are no native calls to closures, so we do not need to set the tag
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// bits kClosureFunctionBit and kInstanceFunctionBit in argc_tag_.
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ASSERT(argc_tag_offset == 1 * kWordSize);
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// Set argc in NativeArguments: R1 already contains argc.
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ASSERT(argv_offset == 2 * kWordSize);
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// Set argv in NativeArguments: R2 already contains argv.
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ASSERT(retval_offset == 3 * kWordSize);
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__ add(R3, FP, ShifterOperand(3 * kWordSize)); // Set retval in NativeArgs.
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// TODO(regis): Should we pass the structure by value as in runtime calls?
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// It would require changing Dart API for native functions.
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// For now, space is reserved on the stack and we pass a pointer to it.
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__ stm(IA, SP, (1 << R0) | (1 << R1) | (1 << R2) | (1 << R3));
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__ mov(R0, ShifterOperand(SP)); // Pass the pointer to the NativeArguments.
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// Call native function or redirection via simulator.
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__ blx(R5);
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// Mark that the isolate is executing Dart code.
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__ LoadImmediate(R2, VMTag::kScriptTagId);
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__ StoreToOffset(kWord, R2, CTX, Isolate::vm_tag_offset());
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// Reset exit frame information in Isolate structure.
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__ LoadImmediate(R2, 0);
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__ StoreToOffset(kWord, R2, CTX, Isolate::top_exit_frame_info_offset());
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// Load Context pointer from Isolate structure into R2.
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__ LoadFromOffset(kWord, R2, CTX, Isolate::top_context_offset());
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// Reset Context pointer in Isolate structure.
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__ LoadImmediate(R3, reinterpret_cast<intptr_t>(Object::null()));
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__ StoreToOffset(kWord, R3, CTX, Isolate::top_context_offset());
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// Cache Context pointer into CTX while executing Dart code.
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__ mov(CTX, ShifterOperand(R2));
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__ LeaveFrame((1 << FP) | (1 << LR));
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// Adjust SP for the empty PC marker.
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__ AddImmediate(SP, kWordSize);
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__ Ret();
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}
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// Input parameters:
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// R4: arguments descriptor array.
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void StubCode::GenerateCallStaticFunctionStub(Assembler* assembler) {
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// Create a stub frame as we are pushing some objects on the stack before
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// calling into the runtime.
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__ EnterStubFrame();
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// Setup space on stack for return value and preserve arguments descriptor.
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__ LoadImmediate(R0, reinterpret_cast<intptr_t>(Object::null()));
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__ PushList((1 << R0) | (1 << R4));
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__ CallRuntime(kPatchStaticCallRuntimeEntry, 0);
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// Get Code object result and restore arguments descriptor array.
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__ PopList((1 << R0) | (1 << R4));
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// Remove the stub frame.
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__ LeaveStubFrame();
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// Jump to the dart function.
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__ ldr(R0, FieldAddress(R0, Code::instructions_offset()));
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__ AddImmediate(R0, R0, Instructions::HeaderSize() - kHeapObjectTag);
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__ bx(R0);
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}
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// Called from a static call only when an invalid code has been entered
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// (invalid because its function was optimized or deoptimized).
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// R4: arguments descriptor array.
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void StubCode::GenerateFixCallersTargetStub(Assembler* assembler) {
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// Create a stub frame as we are pushing some objects on the stack before
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// calling into the runtime.
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__ EnterStubFrame();
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// Setup space on stack for return value and preserve arguments descriptor.
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__ LoadImmediate(R0, reinterpret_cast<intptr_t>(Object::null()));
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__ PushList((1 << R0) | (1 << R4));
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__ CallRuntime(kFixCallersTargetRuntimeEntry, 0);
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// Get Code object result and restore arguments descriptor array.
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__ PopList((1 << R0) | (1 << R4));
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// Remove the stub frame.
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__ LeaveStubFrame();
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// Jump to the dart function.
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__ ldr(R0, FieldAddress(R0, Code::instructions_offset()));
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__ AddImmediate(R0, R0, Instructions::HeaderSize() - kHeapObjectTag);
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__ bx(R0);
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}
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// Input parameters:
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// R2: smi-tagged argument count, may be zero.
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// FP[kParamEndSlotFromFp + 1]: last argument.
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static void PushArgumentsArray(Assembler* assembler) {
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// Allocate array to store arguments of caller.
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__ LoadImmediate(R1, reinterpret_cast<intptr_t>(Object::null()));
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// R1: null element type for raw Array.
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// R2: smi-tagged argument count, may be zero.
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__ BranchLink(&StubCode::AllocateArrayLabel());
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// R0: newly allocated array.
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// R2: smi-tagged argument count, may be zero (was preserved by the stub).
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__ Push(R0); // Array is in R0 and on top of stack.
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__ add(R1, FP, ShifterOperand(R2, LSL, 1));
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__ AddImmediate(R1, kParamEndSlotFromFp * kWordSize);
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__ AddImmediate(R3, R0, Array::data_offset() - kHeapObjectTag);
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// R1: address of first argument on stack.
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// R3: address of first argument in array.
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Label loop;
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__ Bind(&loop);
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__ subs(R2, R2, ShifterOperand(Smi::RawValue(1))); // R2 is Smi.
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__ ldr(IP, Address(R1, 0), PL);
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__ str(IP, Address(R3, 0), PL);
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__ AddImmediate(R1, -kWordSize, PL);
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__ AddImmediate(R3, kWordSize, PL);
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__ b(&loop, PL);
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}
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DECLARE_LEAF_RUNTIME_ENTRY(intptr_t, DeoptimizeCopyFrame,
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intptr_t deopt_reason,
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uword saved_registers_address);
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DECLARE_LEAF_RUNTIME_ENTRY(void, DeoptimizeFillFrame, uword last_fp);
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// Used by eager and lazy deoptimization. Preserve result in R0 if necessary.
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// This stub translates optimized frame into unoptimized frame. The optimized
|
|
// frame can contain values in registers and on stack, the unoptimized
|
|
// frame contains all values on stack.
|
|
// Deoptimization occurs in following steps:
|
|
// - Push all registers that can contain values.
|
|
// - Call C routine to copy the stack and saved registers into temporary buffer.
|
|
// - Adjust caller's frame to correct unoptimized frame size.
|
|
// - Fill the unoptimized frame.
|
|
// - Materialize objects that require allocation (e.g. Double instances).
|
|
// GC can occur only after frame is fully rewritten.
|
|
// Stack after EnterFrame(...) below:
|
|
// +------------------+
|
|
// | Saved PP | <- TOS
|
|
// +------------------+
|
|
// | Saved FP | <- FP of stub
|
|
// +------------------+
|
|
// | Saved LR | (deoptimization point)
|
|
// +------------------+
|
|
// | PC marker |
|
|
// +------------------+
|
|
// | ... | <- SP of optimized frame
|
|
//
|
|
// Parts of the code cannot GC, part of the code can GC.
|
|
static void GenerateDeoptimizationSequence(Assembler* assembler,
|
|
bool preserve_result) {
|
|
// DeoptimizeCopyFrame expects a Dart frame, i.e. EnterDartFrame(0), but there
|
|
// is no need to set the correct PC marker or load PP, since they get patched.
|
|
__ mov(IP, ShifterOperand(LR));
|
|
__ mov(LR, ShifterOperand(0));
|
|
__ EnterFrame((1 << PP) | (1 << FP) | (1 << IP) | (1 << LR), 0);
|
|
// The code in this frame may not cause GC. kDeoptimizeCopyFrameRuntimeEntry
|
|
// and kDeoptimizeFillFrameRuntimeEntry are leaf runtime calls.
|
|
const intptr_t saved_result_slot_from_fp =
|
|
kFirstLocalSlotFromFp + 1 - (kNumberOfCpuRegisters - R0);
|
|
// Result in R0 is preserved as part of pushing all registers below.
|
|
|
|
// TODO(regis): Should we align the stack before pushing the fpu registers?
|
|
// If we do, saved_r0_offset_from_fp is not constant anymore.
|
|
|
|
// Push registers in their enumeration order: lowest register number at
|
|
// lowest address.
|
|
__ PushList(kAllCpuRegistersList);
|
|
ASSERT(kFpuRegisterSize == 4 * kWordSize);
|
|
if (kNumberOfDRegisters > 16) {
|
|
__ vstmd(DB_W, SP, D16, kNumberOfDRegisters - 16);
|
|
__ vstmd(DB_W, SP, D0, 16);
|
|
} else {
|
|
__ vstmd(DB_W, SP, D0, kNumberOfDRegisters);
|
|
}
|
|
|
|
__ mov(R0, ShifterOperand(SP)); // Pass address of saved registers block.
|
|
__ ReserveAlignedFrameSpace(0);
|
|
__ CallRuntime(kDeoptimizeCopyFrameRuntimeEntry, 1);
|
|
// Result (R0) is stack-size (FP - SP) in bytes.
|
|
|
|
if (preserve_result) {
|
|
// Restore result into R1 temporarily.
|
|
__ ldr(R1, Address(FP, saved_result_slot_from_fp * kWordSize));
|
|
}
|
|
|
|
__ LeaveDartFrame();
|
|
__ sub(SP, FP, ShifterOperand(R0));
|
|
|
|
// DeoptimizeFillFrame expects a Dart frame, i.e. EnterDartFrame(0), but there
|
|
// is no need to set the correct PC marker or load PP, since they get patched.
|
|
__ mov(IP, ShifterOperand(LR));
|
|
__ mov(LR, ShifterOperand(0));
|
|
__ EnterFrame((1 << PP) | (1 << FP) | (1 << IP) | (1 << LR), 0);
|
|
__ mov(R0, ShifterOperand(FP)); // Get last FP address.
|
|
if (preserve_result) {
|
|
__ Push(R1); // Preserve result as first local.
|
|
}
|
|
__ ReserveAlignedFrameSpace(0);
|
|
__ CallRuntime(kDeoptimizeFillFrameRuntimeEntry, 1); // Pass last FP in R0.
|
|
if (preserve_result) {
|
|
// Restore result into R1.
|
|
__ ldr(R1, Address(FP, kFirstLocalSlotFromFp * kWordSize));
|
|
}
|
|
// Code above cannot cause GC.
|
|
__ LeaveDartFrame();
|
|
|
|
// Frame is fully rewritten at this point and it is safe to perform a GC.
|
|
// Materialize any objects that were deferred by FillFrame because they
|
|
// require allocation.
|
|
__ EnterStubFrame();
|
|
if (preserve_result) {
|
|
__ Push(R1); // Preserve result, it will be GC-d here.
|
|
}
|
|
__ PushObject(Smi::ZoneHandle()); // Space for the result.
|
|
__ CallRuntime(kDeoptimizeMaterializeRuntimeEntry, 0);
|
|
// Result tells stub how many bytes to remove from the expression stack
|
|
// of the bottom-most frame. They were used as materialization arguments.
|
|
__ Pop(R1);
|
|
if (preserve_result) {
|
|
__ Pop(R0); // Restore result.
|
|
}
|
|
__ LeaveStubFrame();
|
|
// Remove materialization arguments.
|
|
__ add(SP, SP, ShifterOperand(R1, ASR, kSmiTagSize));
|
|
__ Ret();
|
|
}
|
|
|
|
|
|
void StubCode::GenerateDeoptimizeLazyStub(Assembler* assembler) {
|
|
// Correct return address to point just after the call that is being
|
|
// deoptimized.
|
|
__ AddImmediate(LR, -CallPattern::LengthInBytes());
|
|
GenerateDeoptimizationSequence(assembler, true); // Preserve R0.
|
|
}
|
|
|
|
|
|
void StubCode::GenerateDeoptimizeStub(Assembler* assembler) {
|
|
GenerateDeoptimizationSequence(assembler, false); // Don't preserve R0.
|
|
}
|
|
|
|
|
|
void StubCode::GenerateMegamorphicMissStub(Assembler* assembler) {
|
|
__ EnterStubFrame();
|
|
|
|
// Load the receiver.
|
|
__ ldr(R2, FieldAddress(R4, ArgumentsDescriptor::count_offset()));
|
|
__ add(IP, FP, ShifterOperand(R2, LSL, 1)); // R2 is Smi.
|
|
__ ldr(R6, Address(IP, kParamEndSlotFromFp * kWordSize));
|
|
|
|
// Preserve IC data and arguments descriptor.
|
|
__ PushList((1 << R4) | (1 << R5));
|
|
|
|
// Push space for the return value.
|
|
// Push the receiver.
|
|
// Push IC data object.
|
|
// Push arguments descriptor array.
|
|
__ LoadImmediate(IP, reinterpret_cast<intptr_t>(Object::null()));
|
|
__ PushList((1 << R4) | (1 << R5) | (1 << R6) | (1 << IP));
|
|
__ CallRuntime(kMegamorphicCacheMissHandlerRuntimeEntry, 3);
|
|
// Remove arguments.
|
|
__ Drop(3);
|
|
__ Pop(R0); // Get result into R0 (target function).
|
|
|
|
// Restore IC data and arguments descriptor.
|
|
__ PopList((1 << R4) | (1 << R5));
|
|
|
|
__ LeaveStubFrame();
|
|
|
|
// Tail-call to target function.
|
|
__ ldr(R2, FieldAddress(R0, Function::code_offset()));
|
|
__ ldr(R2, FieldAddress(R2, Code::instructions_offset()));
|
|
__ AddImmediate(R2, Instructions::HeaderSize() - kHeapObjectTag);
|
|
__ bx(R2);
|
|
}
|
|
|
|
|
|
// Called for inline allocation of arrays.
|
|
// Input parameters:
|
|
// LR: return address.
|
|
// R2: array length as Smi.
|
|
// R1: array element type (either NULL or an instantiated type).
|
|
// NOTE: R2 cannot be clobbered here as the caller relies on it being saved.
|
|
// The newly allocated object is returned in R0.
|
|
void StubCode::GenerateAllocateArrayStub(Assembler* assembler) {
|
|
Label slow_case;
|
|
if (FLAG_inline_alloc) {
|
|
// Compute the size to be allocated, it is based on the array length
|
|
// and is computed as:
|
|
// RoundedAllocationSize((array_length * kwordSize) + sizeof(RawArray)).
|
|
// Assert that length is a Smi.
|
|
__ tst(R2, ShifterOperand(kSmiTagMask));
|
|
if (FLAG_use_slow_path) {
|
|
__ b(&slow_case);
|
|
} else {
|
|
__ b(&slow_case, NE);
|
|
}
|
|
__ ldr(R8, FieldAddress(CTX, Context::isolate_offset()));
|
|
__ LoadFromOffset(kWord, R8, R8, Isolate::heap_offset());
|
|
__ LoadFromOffset(kWord, R8, R8, Heap::new_space_offset());
|
|
|
|
// Calculate and align allocation size.
|
|
// Load new object start and calculate next object start.
|
|
// R1: array element type.
|
|
// R2: array length as Smi.
|
|
// R8: points to new space object.
|
|
__ LoadFromOffset(kWord, R0, R8, Scavenger::top_offset());
|
|
intptr_t fixed_size = sizeof(RawArray) + kObjectAlignment - 1;
|
|
__ LoadImmediate(R3, fixed_size);
|
|
__ add(R3, R3, ShifterOperand(R2, LSL, 1)); // R2 is Smi.
|
|
ASSERT(kSmiTagShift == 1);
|
|
__ bic(R3, R3, ShifterOperand(kObjectAlignment - 1));
|
|
__ add(R7, R3, ShifterOperand(R0));
|
|
|
|
// Check if the allocation fits into the remaining space.
|
|
// R0: potential new object start.
|
|
// R1: array element type.
|
|
// R2: array length as Smi.
|
|
// R3: array size.
|
|
// R7: potential next object start.
|
|
// R8: points to new space object.
|
|
__ LoadFromOffset(kWord, IP, R8, Scavenger::end_offset());
|
|
__ cmp(R7, ShifterOperand(IP));
|
|
__ b(&slow_case, CS); // Branch if unsigned higher or equal.
|
|
|
|
// Successfully allocated the object(s), now update top to point to
|
|
// next object start and initialize the object.
|
|
// R0: potential new object start.
|
|
// R3: array size.
|
|
// R7: potential next object start.
|
|
// R8: Points to new space object.
|
|
__ StoreToOffset(kWord, R7, R8, Scavenger::top_offset());
|
|
__ add(R0, R0, ShifterOperand(kHeapObjectTag));
|
|
__ UpdateAllocationStatsWithSize(kArrayCid, R3, R8);
|
|
|
|
// R0: new object start as a tagged pointer.
|
|
// R1: array element type.
|
|
// R2: array length as Smi.
|
|
// R3: array size.
|
|
// R7: new object end address.
|
|
|
|
// Store the type argument field.
|
|
__ StoreIntoObjectNoBarrier(
|
|
R0,
|
|
FieldAddress(R0, Array::type_arguments_offset()),
|
|
R1);
|
|
|
|
// Set the length field.
|
|
__ StoreIntoObjectNoBarrier(
|
|
R0,
|
|
FieldAddress(R0, Array::length_offset()),
|
|
R2);
|
|
|
|
// Calculate the size tag.
|
|
// R0: new object start as a tagged pointer.
|
|
// R2: array length as Smi.
|
|
// R3: array size.
|
|
// R7: new object end address.
|
|
const intptr_t shift = RawObject::kSizeTagBit - kObjectAlignmentLog2;
|
|
__ CompareImmediate(R3, RawObject::SizeTag::kMaxSizeTag);
|
|
// If no size tag overflow, shift R1 left, else set R1 to zero.
|
|
__ mov(R1, ShifterOperand(R3, LSL, shift), LS);
|
|
__ mov(R1, ShifterOperand(0), HI);
|
|
|
|
// Get the class index and insert it into the tags.
|
|
__ LoadImmediate(IP, RawObject::ClassIdTag::encode(kArrayCid));
|
|
__ orr(R1, R1, ShifterOperand(IP));
|
|
__ str(R1, FieldAddress(R0, Array::tags_offset()));
|
|
|
|
// Initialize all array elements to raw_null.
|
|
// R0: new object start as a tagged pointer.
|
|
// R7: new object end address.
|
|
// R2: array length as Smi.
|
|
__ AddImmediate(R1, R0, Array::data_offset() - kHeapObjectTag);
|
|
// R1: iterator which initially points to the start of the variable
|
|
// data area to be initialized.
|
|
__ LoadImmediate(IP, reinterpret_cast<intptr_t>(Object::null()));
|
|
Label loop;
|
|
__ Bind(&loop);
|
|
// TODO(cshapiro): StoreIntoObjectNoBarrier
|
|
__ cmp(R1, ShifterOperand(R7));
|
|
__ str(IP, Address(R1, 0), CC); // Store if unsigned lower.
|
|
__ AddImmediate(R1, kWordSize, CC);
|
|
__ b(&loop, CC); // Loop until R1 == R7.
|
|
|
|
// Done allocating and initializing the array.
|
|
// R0: new object.
|
|
// R2: array length as Smi (preserved for the caller.)
|
|
__ Ret();
|
|
}
|
|
|
|
// Unable to allocate the array using the fast inline code, just call
|
|
// into the runtime.
|
|
__ Bind(&slow_case);
|
|
// Create a stub frame as we are pushing some objects on the stack before
|
|
// calling into the runtime.
|
|
__ EnterStubFrame();
|
|
__ LoadImmediate(IP, reinterpret_cast<intptr_t>(Object::null()));
|
|
// Setup space on stack for return value.
|
|
// Push array length as Smi and element type.
|
|
__ PushList((1 << R1) | (1 << R2) | (1 << IP));
|
|
__ CallRuntime(kAllocateArrayRuntimeEntry, 2);
|
|
// Pop arguments; result is popped in IP.
|
|
__ PopList((1 << R1) | (1 << R2) | (1 << IP)); // R2 is restored.
|
|
__ mov(R0, ShifterOperand(IP));
|
|
__ LeaveStubFrame();
|
|
__ Ret();
|
|
}
|
|
|
|
|
|
// Called when invoking Dart code from C++ (VM code).
|
|
// Input parameters:
|
|
// LR : points to return address.
|
|
// R0 : entrypoint of the Dart function to call.
|
|
// R1 : arguments descriptor array.
|
|
// R2 : arguments array.
|
|
// R3 : new context containing the current isolate pointer.
|
|
void StubCode::GenerateInvokeDartCodeStub(Assembler* assembler) {
|
|
// Save frame pointer coming in.
|
|
__ EnterFrame((1 << FP) | (1 << LR), 0);
|
|
|
|
// Save new context and C++ ABI callee-saved registers.
|
|
const intptr_t kNewContextOffsetFromFp =
|
|
-(1 + kAbiPreservedCpuRegCount) * kWordSize;
|
|
__ PushList((1 << R3) | kAbiPreservedCpuRegs);
|
|
|
|
const DRegister firstd = EvenDRegisterOf(kAbiFirstPreservedFpuReg);
|
|
ASSERT(2 * kAbiPreservedFpuRegCount < 16);
|
|
// Save FPU registers. 2 D registers per Q register.
|
|
__ vstmd(DB_W, SP, firstd, 2 * kAbiPreservedFpuRegCount);
|
|
|
|
// We now load the pool pointer(PP) as we are about to invoke dart code and we
|
|
// could potentially invoke some intrinsic functions which need the PP to be
|
|
// set up.
|
|
__ LoadPoolPointer();
|
|
|
|
// The new Context structure contains a pointer to the current Isolate
|
|
// structure. Cache the Context pointer in the CTX register so that it is
|
|
// available in generated code and calls to Isolate::Current() need not be
|
|
// done. The assumption is that this register will never be clobbered by
|
|
// compiled or runtime stub code.
|
|
|
|
// Cache the new Context pointer into CTX while executing Dart code.
|
|
__ ldr(CTX, Address(R3, VMHandles::kOffsetOfRawPtrInHandle));
|
|
|
|
// Load Isolate pointer from Context structure into temporary register R8.
|
|
__ ldr(R8, FieldAddress(CTX, Context::isolate_offset()));
|
|
|
|
// Save the current VMTag on the stack.
|
|
ASSERT(kSavedVMTagSlotFromEntryFp == -25);
|
|
__ LoadFromOffset(kWord, R5, R8, Isolate::vm_tag_offset());
|
|
__ Push(R5);
|
|
|
|
// Mark that the isolate is executing Dart code.
|
|
__ LoadImmediate(R5, VMTag::kScriptTagId);
|
|
__ StoreToOffset(kWord, R5, R8, Isolate::vm_tag_offset());
|
|
|
|
// Save the top exit frame info. Use R5 as a temporary register.
|
|
// StackFrameIterator reads the top exit frame info saved in this frame.
|
|
__ LoadFromOffset(kWord, R5, R8, Isolate::top_exit_frame_info_offset());
|
|
__ LoadImmediate(R6, 0);
|
|
__ StoreToOffset(kWord, R6, R8, Isolate::top_exit_frame_info_offset());
|
|
|
|
// Save the old Context pointer. Use R4 as a temporary register.
|
|
// Note that VisitObjectPointers will find this saved Context pointer during
|
|
// GC marking, since it traverses any information between SP and
|
|
// FP - kExitLinkSlotFromEntryFp.
|
|
// EntryFrame::SavedContext reads the context saved in this frame.
|
|
__ LoadFromOffset(kWord, R4, R8, Isolate::top_context_offset());
|
|
|
|
// The constants kSavedContextSlotFromEntryFp and
|
|
// kExitLinkSlotFromEntryFp must be kept in sync with the code below.
|
|
ASSERT(kExitLinkSlotFromEntryFp == -26);
|
|
ASSERT(kSavedContextSlotFromEntryFp == -27);
|
|
__ PushList((1 << R4) | (1 << R5));
|
|
|
|
// Load arguments descriptor array into R4, which is passed to Dart code.
|
|
__ ldr(R4, Address(R1, VMHandles::kOffsetOfRawPtrInHandle));
|
|
|
|
// Load number of arguments into R5.
|
|
__ ldr(R5, FieldAddress(R4, ArgumentsDescriptor::count_offset()));
|
|
__ SmiUntag(R5);
|
|
|
|
// Compute address of 'arguments array' data area into R2.
|
|
__ ldr(R2, Address(R2, VMHandles::kOffsetOfRawPtrInHandle));
|
|
__ AddImmediate(R2, R2, Array::data_offset() - kHeapObjectTag);
|
|
|
|
// Set up arguments for the Dart call.
|
|
Label push_arguments;
|
|
Label done_push_arguments;
|
|
__ CompareImmediate(R5, 0); // check if there are arguments.
|
|
__ b(&done_push_arguments, EQ);
|
|
__ LoadImmediate(R1, 0);
|
|
__ Bind(&push_arguments);
|
|
__ ldr(R3, Address(R2));
|
|
__ Push(R3);
|
|
__ AddImmediate(R2, kWordSize);
|
|
__ AddImmediate(R1, 1);
|
|
__ cmp(R1, ShifterOperand(R5));
|
|
__ b(&push_arguments, LT);
|
|
__ Bind(&done_push_arguments);
|
|
|
|
// Call the Dart code entrypoint.
|
|
__ blx(R0); // R4 is the arguments descriptor array.
|
|
|
|
// Read the saved new Context pointer.
|
|
__ ldr(CTX, Address(FP, kNewContextOffsetFromFp));
|
|
__ ldr(CTX, Address(CTX, VMHandles::kOffsetOfRawPtrInHandle));
|
|
|
|
// Get rid of arguments pushed on the stack.
|
|
__ AddImmediate(SP, FP, kSavedContextSlotFromEntryFp * kWordSize);
|
|
|
|
// Load Isolate pointer from Context structure into CTX. Drop Context.
|
|
__ ldr(CTX, FieldAddress(CTX, Context::isolate_offset()));
|
|
|
|
// Restore the saved Context pointer into the Isolate structure.
|
|
// Uses R4 as a temporary register for this.
|
|
// Restore the saved top exit frame info back into the Isolate structure.
|
|
// Uses R5 as a temporary register for this.
|
|
__ PopList((1 << R4) | (1 << R5));
|
|
__ StoreToOffset(kWord, R4, CTX, Isolate::top_context_offset());
|
|
__ StoreToOffset(kWord, R5, CTX, Isolate::top_exit_frame_info_offset());
|
|
|
|
// Restore the current VMTag from the stack.
|
|
__ Pop(R4);
|
|
__ StoreToOffset(kWord, R4, CTX, Isolate::vm_tag_offset());
|
|
|
|
// Restore C++ ABI callee-saved registers.
|
|
// Restore FPU registers. 2 D registers per Q register.
|
|
__ vldmd(IA_W, SP, firstd, 2 * kAbiPreservedFpuRegCount);
|
|
// Restore CPU registers.
|
|
__ PopList((1 << R3) | kAbiPreservedCpuRegs); // Ignore restored R3.
|
|
|
|
// Restore the frame pointer and return.
|
|
__ LeaveFrame((1 << FP) | (1 << LR));
|
|
__ Ret();
|
|
}
|
|
|
|
|
|
// Called for inline allocation of contexts.
|
|
// Input:
|
|
// R1: number of context variables.
|
|
// Output:
|
|
// R0: new allocated RawContext object.
|
|
void StubCode::GenerateAllocateContextStub(Assembler* assembler) {
|
|
if (FLAG_inline_alloc) {
|
|
const Class& context_class = Class::ZoneHandle(Object::context_class());
|
|
Label slow_case;
|
|
Heap* heap = Isolate::Current()->heap();
|
|
// First compute the rounded instance size.
|
|
// R1: number of context variables.
|
|
intptr_t fixed_size = sizeof(RawContext) + kObjectAlignment - 1;
|
|
__ LoadImmediate(R2, fixed_size);
|
|
__ add(R2, R2, ShifterOperand(R1, LSL, 2));
|
|
ASSERT(kSmiTagShift == 1);
|
|
__ bic(R2, R2, ShifterOperand(kObjectAlignment - 1));
|
|
|
|
// Now allocate the object.
|
|
// R1: number of context variables.
|
|
// R2: object size.
|
|
__ LoadImmediate(R5, heap->TopAddress());
|
|
__ ldr(R0, Address(R5, 0));
|
|
__ add(R3, R2, ShifterOperand(R0));
|
|
// Check if the allocation fits into the remaining space.
|
|
// R0: potential new object.
|
|
// R1: number of context variables.
|
|
// R2: object size.
|
|
// R3: potential next object start.
|
|
__ LoadImmediate(IP, heap->EndAddress());
|
|
__ ldr(IP, Address(IP, 0));
|
|
__ cmp(R3, ShifterOperand(IP));
|
|
if (FLAG_use_slow_path) {
|
|
__ b(&slow_case);
|
|
} else {
|
|
__ b(&slow_case, CS); // Branch if unsigned higher or equal.
|
|
}
|
|
|
|
// Successfully allocated the object, now update top to point to
|
|
// next object start and initialize the object.
|
|
// R0: new object.
|
|
// R1: number of context variables.
|
|
// R2: object size.
|
|
// R3: next object start.
|
|
__ str(R3, Address(R5, 0));
|
|
__ add(R0, R0, ShifterOperand(kHeapObjectTag));
|
|
__ UpdateAllocationStatsWithSize(context_class.id(), R2, R5);
|
|
|
|
// Calculate the size tag.
|
|
// R0: new object.
|
|
// R1: number of context variables.
|
|
// R2: object size.
|
|
const intptr_t shift = RawObject::kSizeTagBit - kObjectAlignmentLog2;
|
|
__ CompareImmediate(R2, RawObject::SizeTag::kMaxSizeTag);
|
|
// If no size tag overflow, shift R2 left, else set R2 to zero.
|
|
__ mov(R2, ShifterOperand(R2, LSL, shift), LS);
|
|
__ mov(R2, ShifterOperand(0), HI);
|
|
|
|
// Get the class index and insert it into the tags.
|
|
// R2: size and bit tags.
|
|
__ LoadImmediate(IP, RawObject::ClassIdTag::encode(context_class.id()));
|
|
__ orr(R2, R2, ShifterOperand(IP));
|
|
__ str(R2, FieldAddress(R0, Context::tags_offset()));
|
|
|
|
// Setup up number of context variables field.
|
|
// R0: new object.
|
|
// R1: number of context variables as integer value (not object).
|
|
__ str(R1, FieldAddress(R0, Context::num_variables_offset()));
|
|
|
|
// Setup isolate field.
|
|
// Load Isolate pointer from Context structure into R2.
|
|
// R0: new object.
|
|
// R1: number of context variables.
|
|
__ ldr(R2, FieldAddress(CTX, Context::isolate_offset()));
|
|
// R2: isolate, not an object.
|
|
__ str(R2, FieldAddress(R0, Context::isolate_offset()));
|
|
|
|
// Setup the parent field.
|
|
// R0: new object.
|
|
// R1: number of context variables.
|
|
__ LoadImmediate(R2, reinterpret_cast<intptr_t>(Object::null()));
|
|
__ str(R2, FieldAddress(R0, Context::parent_offset()));
|
|
|
|
// Initialize the context variables.
|
|
// R0: new object.
|
|
// R1: number of context variables.
|
|
// R2: raw null.
|
|
Label loop;
|
|
__ AddImmediate(R3, R0, Context::variable_offset(0) - kHeapObjectTag);
|
|
__ Bind(&loop);
|
|
__ subs(R1, R1, ShifterOperand(1));
|
|
__ str(R2, Address(R3, R1, LSL, 2), PL); // Store if R1 positive or zero.
|
|
__ b(&loop, NE); // Loop if R1 not zero.
|
|
|
|
// Done allocating and initializing the context.
|
|
// R0: new object.
|
|
__ Ret();
|
|
|
|
__ Bind(&slow_case);
|
|
}
|
|
// Create a stub frame as we are pushing some objects on the stack before
|
|
// calling into the runtime.
|
|
__ EnterStubFrame();
|
|
// Setup space on stack for return value.
|
|
__ LoadImmediate(R2, reinterpret_cast<intptr_t>(Object::null()));
|
|
__ SmiTag(R1);
|
|
__ PushList((1 << R1) | (1 << R2));
|
|
__ CallRuntime(kAllocateContextRuntimeEntry, 1); // Allocate context.
|
|
__ Drop(1); // Pop number of context variables argument.
|
|
__ Pop(R0); // Pop the new context object.
|
|
// R0: new object
|
|
// Restore the frame pointer.
|
|
__ LeaveStubFrame();
|
|
__ Ret();
|
|
}
|
|
|
|
|
|
DECLARE_LEAF_RUNTIME_ENTRY(void, StoreBufferBlockProcess, Isolate* isolate);
|
|
|
|
// Helper stub to implement Assembler::StoreIntoObject.
|
|
// Input parameters:
|
|
// R0: address (i.e. object) being stored into.
|
|
void StubCode::GenerateUpdateStoreBufferStub(Assembler* assembler) {
|
|
// Save values being destroyed.
|
|
__ PushList((1 << R1) | (1 << R2) | (1 << R3));
|
|
|
|
Label add_to_buffer;
|
|
// Check whether this object has already been remembered. Skip adding to the
|
|
// store buffer if the object is in the store buffer already.
|
|
// Spilled: R1, R2, R3
|
|
// R0: Address being stored
|
|
__ ldr(R2, FieldAddress(R0, Object::tags_offset()));
|
|
__ tst(R2, ShifterOperand(1 << RawObject::kRememberedBit));
|
|
__ b(&add_to_buffer, EQ);
|
|
__ PopList((1 << R1) | (1 << R2) | (1 << R3));
|
|
__ Ret();
|
|
|
|
__ Bind(&add_to_buffer);
|
|
__ orr(R2, R2, ShifterOperand(1 << RawObject::kRememberedBit));
|
|
__ str(R2, FieldAddress(R0, Object::tags_offset()));
|
|
|
|
// Load the isolate out of the context.
|
|
// Spilled: R1, R2, R3.
|
|
// R0: address being stored.
|
|
__ ldr(R1, FieldAddress(CTX, Context::isolate_offset()));
|
|
|
|
// Load the StoreBuffer block out of the isolate. Then load top_ out of the
|
|
// StoreBufferBlock and add the address to the pointers_.
|
|
// R1: isolate.
|
|
__ ldr(R1, Address(R1, Isolate::store_buffer_offset()));
|
|
__ ldr(R2, Address(R1, StoreBufferBlock::top_offset()));
|
|
__ add(R3, R1, ShifterOperand(R2, LSL, 2));
|
|
__ str(R0, Address(R3, StoreBufferBlock::pointers_offset()));
|
|
|
|
// Increment top_ and check for overflow.
|
|
// R2: top_.
|
|
// R1: StoreBufferBlock.
|
|
Label L;
|
|
__ add(R2, R2, ShifterOperand(1));
|
|
__ str(R2, Address(R1, StoreBufferBlock::top_offset()));
|
|
__ CompareImmediate(R2, StoreBufferBlock::kSize);
|
|
// Restore values.
|
|
__ PopList((1 << R1) | (1 << R2) | (1 << R3));
|
|
__ b(&L, EQ);
|
|
__ Ret();
|
|
|
|
// Handle overflow: Call the runtime leaf function.
|
|
__ Bind(&L);
|
|
// Setup frame, push callee-saved registers.
|
|
|
|
__ EnterCallRuntimeFrame(0 * kWordSize);
|
|
__ ldr(R0, FieldAddress(CTX, Context::isolate_offset()));
|
|
__ CallRuntime(kStoreBufferBlockProcessRuntimeEntry, 1);
|
|
// Restore callee-saved registers, tear down frame.
|
|
__ LeaveCallRuntimeFrame();
|
|
__ Ret();
|
|
}
|
|
|
|
|
|
// Called for inline allocation of objects.
|
|
// Input parameters:
|
|
// LR : return address.
|
|
// SP + 0 : type arguments object (only if class is parameterized).
|
|
void StubCode::GenerateAllocationStubForClass(Assembler* assembler,
|
|
const Class& cls) {
|
|
// The generated code is different if the class is parameterized.
|
|
const bool is_cls_parameterized = cls.NumTypeArguments() > 0;
|
|
ASSERT(!is_cls_parameterized ||
|
|
(cls.type_arguments_field_offset() != Class::kNoTypeArguments));
|
|
// kInlineInstanceSize is a constant used as a threshold for determining
|
|
// when the object initialization should be done as a loop or as
|
|
// straight line code.
|
|
const int kInlineInstanceSize = 12;
|
|
const intptr_t instance_size = cls.instance_size();
|
|
ASSERT(instance_size > 0);
|
|
if (is_cls_parameterized) {
|
|
__ ldr(R1, Address(SP, 0));
|
|
// R1: instantiated type arguments.
|
|
}
|
|
if (FLAG_inline_alloc && Heap::IsAllocatableInNewSpace(instance_size)) {
|
|
Label slow_case;
|
|
// Allocate the object and update top to point to
|
|
// next object start and initialize the allocated object.
|
|
// R1: instantiated type arguments (if is_cls_parameterized).
|
|
Heap* heap = Isolate::Current()->heap();
|
|
__ LoadImmediate(R5, heap->TopAddress());
|
|
__ ldr(R2, Address(R5, 0));
|
|
__ AddImmediate(R3, R2, instance_size);
|
|
// Check if the allocation fits into the remaining space.
|
|
// R2: potential new object start.
|
|
// R3: potential next object start.
|
|
__ LoadImmediate(IP, heap->EndAddress());
|
|
__ ldr(IP, Address(IP, 0));
|
|
__ cmp(R3, ShifterOperand(IP));
|
|
if (FLAG_use_slow_path) {
|
|
__ b(&slow_case);
|
|
} else {
|
|
__ b(&slow_case, CS); // Unsigned higher or equal.
|
|
}
|
|
__ str(R3, Address(R5, 0));
|
|
__ UpdateAllocationStats(cls.id(), R5);
|
|
|
|
// R2: new object start.
|
|
// R3: next object start.
|
|
// R1: new object type arguments (if is_cls_parameterized).
|
|
// Set the tags.
|
|
uword tags = 0;
|
|
tags = RawObject::SizeTag::update(instance_size, tags);
|
|
ASSERT(cls.id() != kIllegalCid);
|
|
tags = RawObject::ClassIdTag::update(cls.id(), tags);
|
|
__ LoadImmediate(R0, tags);
|
|
__ str(R0, Address(R2, Instance::tags_offset()));
|
|
|
|
// Initialize the remaining words of the object.
|
|
__ LoadImmediate(R0, reinterpret_cast<intptr_t>(Object::null()));
|
|
|
|
// R0: raw null.
|
|
// R2: new object start.
|
|
// R3: next object start.
|
|
// R1: new object type arguments (if is_cls_parameterized).
|
|
// First try inlining the initialization without a loop.
|
|
if (instance_size < (kInlineInstanceSize * kWordSize)) {
|
|
// Check if the object contains any non-header fields.
|
|
// Small objects are initialized using a consecutive set of writes.
|
|
for (intptr_t current_offset = Instance::NextFieldOffset();
|
|
current_offset < instance_size;
|
|
current_offset += kWordSize) {
|
|
__ StoreToOffset(kWord, R0, R2, current_offset);
|
|
}
|
|
} else {
|
|
__ add(R4, R2, ShifterOperand(Instance::NextFieldOffset()));
|
|
// Loop until the whole object is initialized.
|
|
// R0: raw null.
|
|
// R2: new object.
|
|
// R3: next object start.
|
|
// R4: next word to be initialized.
|
|
// R1: new object type arguments (if is_cls_parameterized).
|
|
Label init_loop;
|
|
Label done;
|
|
__ Bind(&init_loop);
|
|
__ cmp(R4, ShifterOperand(R3));
|
|
__ b(&done, CS);
|
|
__ str(R0, Address(R4, 0));
|
|
__ AddImmediate(R4, kWordSize);
|
|
__ b(&init_loop);
|
|
__ Bind(&done);
|
|
}
|
|
if (is_cls_parameterized) {
|
|
// R1: new object type arguments.
|
|
// Set the type arguments in the new object.
|
|
__ StoreToOffset(kWord, R1, R2, cls.type_arguments_field_offset());
|
|
}
|
|
// Done allocating and initializing the instance.
|
|
// R2: new object still missing its heap tag.
|
|
__ add(R0, R2, ShifterOperand(kHeapObjectTag));
|
|
// R0: new object.
|
|
__ Ret();
|
|
|
|
__ Bind(&slow_case);
|
|
}
|
|
// If is_cls_parameterized:
|
|
// R1: new object type arguments.
|
|
// Create a stub frame as we are pushing some objects on the stack before
|
|
// calling into the runtime.
|
|
__ EnterStubFrame(true); // Uses pool pointer to pass cls to runtime.
|
|
__ LoadImmediate(R2, reinterpret_cast<intptr_t>(Object::null()));
|
|
__ Push(R2); // Setup space on stack for return value.
|
|
__ PushObject(cls); // Push class of object to be allocated.
|
|
if (is_cls_parameterized) {
|
|
// Push type arguments.
|
|
__ Push(R1);
|
|
} else {
|
|
// Push null type arguments.
|
|
__ Push(R2);
|
|
}
|
|
__ CallRuntime(kAllocateObjectRuntimeEntry, 2); // Allocate object.
|
|
__ Drop(2); // Pop arguments.
|
|
__ Pop(R0); // Pop result (newly allocated object).
|
|
// R0: new object
|
|
// Restore the frame pointer.
|
|
__ LeaveStubFrame();
|
|
__ Ret();
|
|
}
|
|
|
|
|
|
// Called for invoking "dynamic noSuchMethod(Invocation invocation)" function
|
|
// from the entry code of a dart function after an error in passed argument
|
|
// name or number is detected.
|
|
// Input parameters:
|
|
// LR : return address.
|
|
// SP : address of last argument.
|
|
// R5: inline cache data object.
|
|
// R4: arguments descriptor array.
|
|
void StubCode::GenerateCallNoSuchMethodFunctionStub(Assembler* assembler) {
|
|
__ EnterStubFrame();
|
|
|
|
// Load the receiver.
|
|
__ ldr(R2, FieldAddress(R4, ArgumentsDescriptor::count_offset()));
|
|
__ add(IP, FP, ShifterOperand(R2, LSL, 1)); // R2 is Smi.
|
|
__ ldr(R6, Address(IP, kParamEndSlotFromFp * kWordSize));
|
|
|
|
// Push space for the return value.
|
|
// Push the receiver.
|
|
// Push IC data object.
|
|
// Push arguments descriptor array.
|
|
__ LoadImmediate(IP, reinterpret_cast<intptr_t>(Object::null()));
|
|
__ PushList((1 << R4) | (1 << R5) | (1 << R6) | (1 << IP));
|
|
|
|
// R2: Smi-tagged arguments array length.
|
|
PushArgumentsArray(assembler);
|
|
|
|
__ CallRuntime(kInvokeNoSuchMethodFunctionRuntimeEntry, 4);
|
|
// Remove arguments.
|
|
__ Drop(4);
|
|
__ Pop(R0); // Get result into R0.
|
|
__ LeaveStubFrame();
|
|
__ Ret();
|
|
}
|
|
|
|
|
|
// R6: function object.
|
|
// R5: inline cache data object.
|
|
// Cannot use function object from ICData as it may be the inlined
|
|
// function and not the top-scope function.
|
|
void StubCode::GenerateOptimizedUsageCounterIncrement(Assembler* assembler) {
|
|
Register ic_reg = R5;
|
|
Register func_reg = R6;
|
|
if (FLAG_trace_optimized_ic_calls) {
|
|
__ EnterStubFrame();
|
|
__ PushList((1 << R5) | (1 << R6)); // Preserve.
|
|
__ Push(ic_reg); // Argument.
|
|
__ Push(func_reg); // Argument.
|
|
__ CallRuntime(kTraceICCallRuntimeEntry, 2);
|
|
__ Drop(2); // Discard argument;
|
|
__ PopList((1 << R5) | (1 << R6)); // Restore.
|
|
__ LeaveStubFrame();
|
|
}
|
|
__ ldr(R7, FieldAddress(func_reg, Function::usage_counter_offset()));
|
|
__ add(R7, R7, ShifterOperand(1));
|
|
__ str(R7, FieldAddress(func_reg, Function::usage_counter_offset()));
|
|
}
|
|
|
|
|
|
// Loads function into 'temp_reg'.
|
|
void StubCode::GenerateUsageCounterIncrement(Assembler* assembler,
|
|
Register temp_reg) {
|
|
Register ic_reg = R5;
|
|
Register func_reg = temp_reg;
|
|
ASSERT(temp_reg == R6);
|
|
__ ldr(func_reg, FieldAddress(ic_reg, ICData::owner_offset()));
|
|
__ ldr(R7, FieldAddress(func_reg, Function::usage_counter_offset()));
|
|
__ add(R7, R7, ShifterOperand(1));
|
|
__ str(R7, FieldAddress(func_reg, Function::usage_counter_offset()));
|
|
}
|
|
|
|
|
|
// Generate inline cache check for 'num_args'.
|
|
// LR: return address.
|
|
// R5: inline cache data object.
|
|
// Control flow:
|
|
// - If receiver is null -> jump to IC miss.
|
|
// - If receiver is Smi -> load Smi class.
|
|
// - If receiver is not-Smi -> load receiver's class.
|
|
// - Check if 'num_args' (including receiver) match any IC data group.
|
|
// - Match found -> jump to target.
|
|
// - Match not found -> jump to IC miss.
|
|
void StubCode::GenerateNArgsCheckInlineCacheStub(
|
|
Assembler* assembler,
|
|
intptr_t num_args,
|
|
const RuntimeEntry& handle_ic_miss) {
|
|
ASSERT(num_args > 0);
|
|
#if defined(DEBUG)
|
|
{ Label ok;
|
|
// Check that the IC data array has NumArgsTested() == num_args.
|
|
// 'NumArgsTested' is stored in the least significant bits of 'state_bits'.
|
|
__ ldr(R6, FieldAddress(R5, ICData::state_bits_offset()));
|
|
ASSERT(ICData::NumArgsTestedShift() == 0); // No shift needed.
|
|
__ and_(R6, R6, ShifterOperand(ICData::NumArgsTestedMask()));
|
|
__ CompareImmediate(R6, num_args);
|
|
__ b(&ok, EQ);
|
|
__ Stop("Incorrect stub for IC data");
|
|
__ Bind(&ok);
|
|
}
|
|
#endif // DEBUG
|
|
|
|
// Check single stepping.
|
|
Label not_stepping;
|
|
__ ldr(R6, FieldAddress(CTX, Context::isolate_offset()));
|
|
__ ldrb(R6, Address(R6, Isolate::single_step_offset()));
|
|
__ CompareImmediate(R6, 0);
|
|
__ b(¬_stepping, EQ);
|
|
__ EnterStubFrame();
|
|
__ Push(R5); // Preserve IC data.
|
|
__ CallRuntime(kSingleStepHandlerRuntimeEntry, 0);
|
|
__ Pop(R5);
|
|
__ LeaveStubFrame();
|
|
__ Bind(¬_stepping);
|
|
|
|
// Load arguments descriptor into R4.
|
|
__ ldr(R4, FieldAddress(R5, ICData::arguments_descriptor_offset()));
|
|
// Preserve return address, since LR is needed for subroutine call.
|
|
__ mov(R8, ShifterOperand(LR));
|
|
// Loop that checks if there is an IC data match.
|
|
Label loop, update, test, found, get_class_id_as_smi;
|
|
// R5: IC data object (preserved).
|
|
__ ldr(R6, FieldAddress(R5, ICData::ic_data_offset()));
|
|
// R6: ic_data_array with check entries: classes and target functions.
|
|
__ AddImmediate(R6, R6, Array::data_offset() - kHeapObjectTag);
|
|
// R6: points directly to the first ic data array element.
|
|
|
|
// Get the receiver's class ID (first read number of arguments from
|
|
// arguments descriptor array and then access the receiver from the stack).
|
|
__ ldr(R7, FieldAddress(R4, ArgumentsDescriptor::count_offset()));
|
|
__ sub(R7, R7, ShifterOperand(Smi::RawValue(1)));
|
|
__ ldr(R0, Address(SP, R7, LSL, 1)); // R7 (argument_count - 1) is smi.
|
|
__ bl(&get_class_id_as_smi);
|
|
// R7: argument_count - 1 (smi).
|
|
// R0: receiver's class ID (smi).
|
|
__ ldr(R1, Address(R6, 0)); // First class id (smi) to check.
|
|
__ b(&test);
|
|
|
|
__ Bind(&loop);
|
|
for (int i = 0; i < num_args; i++) {
|
|
if (i > 0) {
|
|
// If not the first, load the next argument's class ID.
|
|
__ AddImmediate(R0, R7, Smi::RawValue(-i));
|
|
__ ldr(R0, Address(SP, R0, LSL, 1));
|
|
__ bl(&get_class_id_as_smi);
|
|
// R0: next argument class ID (smi).
|
|
__ LoadFromOffset(kWord, R1, R6, i * kWordSize);
|
|
// R1: next class ID to check (smi).
|
|
}
|
|
__ cmp(R0, ShifterOperand(R1)); // Class id match?
|
|
if (i < (num_args - 1)) {
|
|
__ b(&update, NE); // Continue.
|
|
} else {
|
|
// Last check, all checks before matched.
|
|
__ mov(LR, ShifterOperand(R8), EQ); // Restore return address if found.
|
|
__ b(&found, EQ); // Break.
|
|
}
|
|
}
|
|
__ Bind(&update);
|
|
// Reload receiver class ID. It has not been destroyed when num_args == 1.
|
|
if (num_args > 1) {
|
|
__ ldr(R0, Address(SP, R7, LSL, 1));
|
|
__ bl(&get_class_id_as_smi);
|
|
}
|
|
|
|
const intptr_t entry_size = ICData::TestEntryLengthFor(num_args) * kWordSize;
|
|
__ AddImmediate(R6, entry_size); // Next entry.
|
|
__ ldr(R1, Address(R6, 0)); // Next class ID.
|
|
|
|
__ Bind(&test);
|
|
__ CompareImmediate(R1, Smi::RawValue(kIllegalCid)); // Done?
|
|
__ b(&loop, NE);
|
|
|
|
// IC miss.
|
|
// Restore return address.
|
|
__ mov(LR, ShifterOperand(R8));
|
|
|
|
// Compute address of arguments.
|
|
// R7: argument_count - 1 (smi).
|
|
__ add(R7, SP, ShifterOperand(R7, LSL, 1)); // R7 is Smi.
|
|
// R7: address of receiver.
|
|
// Create a stub frame as we are pushing some objects on the stack before
|
|
// calling into the runtime.
|
|
__ EnterStubFrame();
|
|
__ LoadImmediate(R0, reinterpret_cast<intptr_t>(Object::null()));
|
|
// Preserve IC data object and arguments descriptor array and
|
|
// setup space on stack for result (target code object).
|
|
__ PushList((1 << R0) | (1 << R4) | (1 << R5));
|
|
// Push call arguments.
|
|
for (intptr_t i = 0; i < num_args; i++) {
|
|
__ LoadFromOffset(kWord, IP, R7, -i * kWordSize);
|
|
__ Push(IP);
|
|
}
|
|
// Pass IC data object.
|
|
__ Push(R5);
|
|
__ CallRuntime(handle_ic_miss, num_args + 1);
|
|
// Remove the call arguments pushed earlier, including the IC data object.
|
|
__ Drop(num_args + 1);
|
|
// Pop returned function object into R0.
|
|
// Restore arguments descriptor array and IC data array.
|
|
__ PopList((1 << R0) | (1 << R4) | (1 << R5));
|
|
__ LeaveStubFrame();
|
|
Label call_target_function;
|
|
__ b(&call_target_function);
|
|
|
|
__ Bind(&found);
|
|
// R6: pointer to an IC data check group.
|
|
const intptr_t target_offset = ICData::TargetIndexFor(num_args) * kWordSize;
|
|
const intptr_t count_offset = ICData::CountIndexFor(num_args) * kWordSize;
|
|
__ LoadFromOffset(kWord, R0, R6, target_offset);
|
|
__ LoadFromOffset(kWord, R1, R6, count_offset);
|
|
__ adds(R1, R1, ShifterOperand(Smi::RawValue(1)));
|
|
__ StoreToOffset(kWord, R1, R6, count_offset);
|
|
__ b(&call_target_function, VC); // No overflow.
|
|
__ LoadImmediate(R1, Smi::RawValue(Smi::kMaxValue));
|
|
__ StoreToOffset(kWord, R1, R6, count_offset);
|
|
|
|
__ Bind(&call_target_function);
|
|
// R0: target function.
|
|
__ ldr(R2, FieldAddress(R0, Function::code_offset()));
|
|
__ ldr(R2, FieldAddress(R2, Code::instructions_offset()));
|
|
__ AddImmediate(R2, Instructions::HeaderSize() - kHeapObjectTag);
|
|
__ bx(R2);
|
|
|
|
// Instance in R0, return its class-id in R0 as Smi.
|
|
__ Bind(&get_class_id_as_smi);
|
|
|
|
// Test if Smi -> load Smi class for comparison.
|
|
__ tst(R0, ShifterOperand(kSmiTagMask));
|
|
__ mov(R0, ShifterOperand(Smi::RawValue(kSmiCid)), EQ);
|
|
__ bx(LR, EQ);
|
|
__ LoadClassId(R0, R0);
|
|
__ SmiTag(R0);
|
|
__ bx(LR);
|
|
}
|
|
|
|
|
|
// Use inline cache data array to invoke the target or continue in inline
|
|
// cache miss handler. Stub for 1-argument check (receiver class).
|
|
// LR: return address.
|
|
// R5: inline cache data object.
|
|
// Inline cache data object structure:
|
|
// 0: function-name
|
|
// 1: N, number of arguments checked.
|
|
// 2 .. (length - 1): group of checks, each check containing:
|
|
// - N classes.
|
|
// - 1 target function.
|
|
void StubCode::GenerateOneArgCheckInlineCacheStub(Assembler* assembler) {
|
|
GenerateUsageCounterIncrement(assembler, R6);
|
|
GenerateNArgsCheckInlineCacheStub(
|
|
assembler, 1, kInlineCacheMissHandlerOneArgRuntimeEntry);
|
|
}
|
|
|
|
|
|
void StubCode::GenerateTwoArgsCheckInlineCacheStub(Assembler* assembler) {
|
|
GenerateUsageCounterIncrement(assembler, R6);
|
|
GenerateNArgsCheckInlineCacheStub(
|
|
assembler, 2, kInlineCacheMissHandlerTwoArgsRuntimeEntry);
|
|
}
|
|
|
|
|
|
void StubCode::GenerateThreeArgsCheckInlineCacheStub(Assembler* assembler) {
|
|
GenerateUsageCounterIncrement(assembler, R6);
|
|
GenerateNArgsCheckInlineCacheStub(
|
|
assembler, 3, kInlineCacheMissHandlerThreeArgsRuntimeEntry);
|
|
}
|
|
|
|
|
|
void StubCode::GenerateOneArgOptimizedCheckInlineCacheStub(
|
|
Assembler* assembler) {
|
|
GenerateOptimizedUsageCounterIncrement(assembler);
|
|
GenerateNArgsCheckInlineCacheStub(
|
|
assembler, 1, kInlineCacheMissHandlerOneArgRuntimeEntry);
|
|
}
|
|
|
|
|
|
void StubCode::GenerateTwoArgsOptimizedCheckInlineCacheStub(
|
|
Assembler* assembler) {
|
|
GenerateOptimizedUsageCounterIncrement(assembler);
|
|
GenerateNArgsCheckInlineCacheStub(
|
|
assembler, 2, kInlineCacheMissHandlerTwoArgsRuntimeEntry);
|
|
}
|
|
|
|
|
|
void StubCode::GenerateThreeArgsOptimizedCheckInlineCacheStub(
|
|
Assembler* assembler) {
|
|
GenerateOptimizedUsageCounterIncrement(assembler);
|
|
GenerateNArgsCheckInlineCacheStub(
|
|
assembler, 3, kInlineCacheMissHandlerThreeArgsRuntimeEntry);
|
|
}
|
|
|
|
|
|
void StubCode::GenerateClosureCallInlineCacheStub(Assembler* assembler) {
|
|
GenerateNArgsCheckInlineCacheStub(
|
|
assembler, 1, kInlineCacheMissHandlerOneArgRuntimeEntry);
|
|
}
|
|
|
|
|
|
void StubCode::GenerateMegamorphicCallStub(Assembler* assembler) {
|
|
GenerateNArgsCheckInlineCacheStub(
|
|
assembler, 1, kInlineCacheMissHandlerOneArgRuntimeEntry);
|
|
}
|
|
|
|
|
|
// Intermediary stub between a static call and its target. ICData contains
|
|
// the target function and the call count.
|
|
// R5: ICData
|
|
void StubCode::GenerateZeroArgsUnoptimizedStaticCallStub(Assembler* assembler) {
|
|
GenerateUsageCounterIncrement(assembler, R6);
|
|
#if defined(DEBUG)
|
|
{ Label ok;
|
|
// Check that the IC data array has NumArgsTested() == 0.
|
|
// 'NumArgsTested' is stored in the least significant bits of 'state_bits'.
|
|
__ ldr(R6, FieldAddress(R5, ICData::state_bits_offset()));
|
|
ASSERT(ICData::NumArgsTestedShift() == 0); // No shift needed.
|
|
__ and_(R6, R6, ShifterOperand(ICData::NumArgsTestedMask()));
|
|
__ CompareImmediate(R6, 0);
|
|
__ b(&ok, EQ);
|
|
__ Stop("Incorrect IC data for unoptimized static call");
|
|
__ Bind(&ok);
|
|
}
|
|
#endif // DEBUG
|
|
|
|
// Check single stepping.
|
|
Label not_stepping;
|
|
__ ldr(R6, FieldAddress(CTX, Context::isolate_offset()));
|
|
__ ldrb(R6, Address(R6, Isolate::single_step_offset()));
|
|
__ CompareImmediate(R6, 0);
|
|
__ b(¬_stepping, EQ);
|
|
__ EnterStubFrame();
|
|
__ Push(R5); // Preserve IC data.
|
|
__ CallRuntime(kSingleStepHandlerRuntimeEntry, 0);
|
|
__ Pop(R5);
|
|
__ LeaveStubFrame();
|
|
__ Bind(¬_stepping);
|
|
|
|
// R5: IC data object (preserved).
|
|
__ ldr(R6, FieldAddress(R5, ICData::ic_data_offset()));
|
|
// R6: ic_data_array with entries: target functions and count.
|
|
__ AddImmediate(R6, R6, Array::data_offset() - kHeapObjectTag);
|
|
// R6: points directly to the first ic data array element.
|
|
const intptr_t target_offset = ICData::TargetIndexFor(0) * kWordSize;
|
|
const intptr_t count_offset = ICData::CountIndexFor(0) * kWordSize;
|
|
|
|
// Increment count for this call.
|
|
Label increment_done;
|
|
__ LoadFromOffset(kWord, R1, R6, count_offset);
|
|
__ adds(R1, R1, ShifterOperand(Smi::RawValue(1)));
|
|
__ StoreToOffset(kWord, R1, R6, count_offset);
|
|
__ b(&increment_done, VC); // No overflow.
|
|
__ LoadImmediate(R1, Smi::RawValue(Smi::kMaxValue));
|
|
__ StoreToOffset(kWord, R1, R6, count_offset);
|
|
__ Bind(&increment_done);
|
|
|
|
// Load arguments descriptor into R4.
|
|
__ ldr(R4, FieldAddress(R5, ICData::arguments_descriptor_offset()));
|
|
|
|
// Get function and call it, if possible.
|
|
__ LoadFromOffset(kWord, R0, R6, target_offset);
|
|
__ ldr(R2, FieldAddress(R0, Function::code_offset()));
|
|
|
|
// R0: function.
|
|
// R2: target code.
|
|
__ ldr(R2, FieldAddress(R2, Code::instructions_offset()));
|
|
__ AddImmediate(R2, Instructions::HeaderSize() - kHeapObjectTag);
|
|
__ bx(R2);
|
|
}
|
|
|
|
|
|
void StubCode::GenerateTwoArgsUnoptimizedStaticCallStub(Assembler* assembler) {
|
|
GenerateUsageCounterIncrement(assembler, R6);
|
|
GenerateNArgsCheckInlineCacheStub(
|
|
assembler, 2, kStaticCallMissHandlerTwoArgsRuntimeEntry);
|
|
}
|
|
|
|
|
|
// Stub for compiling a function and jumping to the compiled code.
|
|
// R5: IC-Data (for methods).
|
|
// R4: Arguments descriptor.
|
|
// R0: Function.
|
|
void StubCode::GenerateLazyCompileStub(Assembler* assembler) {
|
|
// Preserve arg desc. and IC data object.
|
|
__ EnterStubFrame();
|
|
__ PushList((1 << R4) | (1 << R5));
|
|
__ Push(R0); // Pass function.
|
|
__ CallRuntime(kCompileFunctionRuntimeEntry, 1);
|
|
__ Pop(R0); // Restore argument.
|
|
__ PopList((1 << R4) | (1 << R5)); // Restore arg desc. and IC data.
|
|
__ LeaveStubFrame();
|
|
|
|
__ ldr(R2, FieldAddress(R0, Function::code_offset()));
|
|
__ ldr(R2, FieldAddress(R2, Code::instructions_offset()));
|
|
__ AddImmediate(R2, Instructions::HeaderSize() - kHeapObjectTag);
|
|
__ bx(R2);
|
|
}
|
|
|
|
|
|
void StubCode::GenerateBreakpointRuntimeStub(Assembler* assembler) {
|
|
__ EnterStubFrame();
|
|
__ LoadImmediate(R0, reinterpret_cast<intptr_t>(Object::null()));
|
|
// Preserve arguments descriptor and make room for result.
|
|
__ PushList((1 << R0) | (1 << R4) | (1 << R5));
|
|
__ CallRuntime(kBreakpointRuntimeHandlerRuntimeEntry, 0);
|
|
__ PopList((1 << R0) | (1 << R4) | (1 << R5));
|
|
__ LeaveStubFrame();
|
|
__ bx(R0);
|
|
}
|
|
|
|
|
|
// Called only from unoptimized code. All relevant registers have been saved.
|
|
void StubCode::GenerateDebugStepCheckStub(
|
|
Assembler* assembler) {
|
|
// Check single stepping.
|
|
Label not_stepping;
|
|
__ ldr(R1, FieldAddress(CTX, Context::isolate_offset()));
|
|
__ ldrb(R1, Address(R1, Isolate::single_step_offset()));
|
|
__ CompareImmediate(R1, 0);
|
|
__ b(¬_stepping, EQ);
|
|
__ EnterStubFrame();
|
|
__ CallRuntime(kSingleStepHandlerRuntimeEntry, 0);
|
|
__ LeaveStubFrame();
|
|
__ Bind(¬_stepping);
|
|
__ Ret();
|
|
}
|
|
|
|
|
|
// Used to check class and type arguments. Arguments passed in registers:
|
|
// LR: return address.
|
|
// R0: instance (must be preserved).
|
|
// R1: instantiator type arguments or NULL.
|
|
// R2: cache array.
|
|
// Result in R1: null -> not found, otherwise result (true or false).
|
|
static void GenerateSubtypeNTestCacheStub(Assembler* assembler, int n) {
|
|
ASSERT((1 <= n) && (n <= 3));
|
|
if (n > 1) {
|
|
// Get instance type arguments.
|
|
__ LoadClass(R3, R0, R4);
|
|
// Compute instance type arguments into R4.
|
|
Label has_no_type_arguments;
|
|
__ LoadImmediate(R4, reinterpret_cast<intptr_t>(Object::null()));
|
|
__ ldr(R5, FieldAddress(R3,
|
|
Class::type_arguments_field_offset_in_words_offset()));
|
|
__ CompareImmediate(R5, Class::kNoTypeArguments);
|
|
__ b(&has_no_type_arguments, EQ);
|
|
__ add(R5, R0, ShifterOperand(R5, LSL, 2));
|
|
__ ldr(R4, FieldAddress(R5, 0));
|
|
__ Bind(&has_no_type_arguments);
|
|
}
|
|
__ LoadClassId(R3, R0);
|
|
// R0: instance.
|
|
// R1: instantiator type arguments or NULL.
|
|
// R2: SubtypeTestCache.
|
|
// R3: instance class id.
|
|
// R4: instance type arguments (null if none), used only if n > 1.
|
|
__ ldr(R2, FieldAddress(R2, SubtypeTestCache::cache_offset()));
|
|
__ AddImmediate(R2, Array::data_offset() - kHeapObjectTag);
|
|
|
|
Label loop, found, not_found, next_iteration;
|
|
// R2: entry start.
|
|
// R3: instance class id.
|
|
// R4: instance type arguments.
|
|
__ SmiTag(R3);
|
|
__ Bind(&loop);
|
|
__ ldr(R5, Address(R2, kWordSize * SubtypeTestCache::kInstanceClassId));
|
|
__ CompareImmediate(R5, reinterpret_cast<intptr_t>(Object::null()));
|
|
__ b(¬_found, EQ);
|
|
__ cmp(R5, ShifterOperand(R3));
|
|
if (n == 1) {
|
|
__ b(&found, EQ);
|
|
} else {
|
|
__ b(&next_iteration, NE);
|
|
__ ldr(R5,
|
|
Address(R2, kWordSize * SubtypeTestCache::kInstanceTypeArguments));
|
|
__ cmp(R5, ShifterOperand(R4));
|
|
if (n == 2) {
|
|
__ b(&found, EQ);
|
|
} else {
|
|
__ b(&next_iteration, NE);
|
|
__ ldr(R5, Address(R2, kWordSize *
|
|
SubtypeTestCache::kInstantiatorTypeArguments));
|
|
__ cmp(R5, ShifterOperand(R1));
|
|
__ b(&found, EQ);
|
|
}
|
|
}
|
|
__ Bind(&next_iteration);
|
|
__ AddImmediate(R2, kWordSize * SubtypeTestCache::kTestEntryLength);
|
|
__ b(&loop);
|
|
// Fall through to not found.
|
|
__ Bind(¬_found);
|
|
__ LoadImmediate(R1, reinterpret_cast<intptr_t>(Object::null()));
|
|
__ Ret();
|
|
|
|
__ Bind(&found);
|
|
__ ldr(R1, Address(R2, kWordSize * SubtypeTestCache::kTestResult));
|
|
__ Ret();
|
|
}
|
|
|
|
|
|
// Used to check class and type arguments. Arguments passed in registers:
|
|
// LR: return address.
|
|
// R0: instance (must be preserved).
|
|
// R1: instantiator type arguments or NULL.
|
|
// R2: cache array.
|
|
// Result in R1: null -> not found, otherwise result (true or false).
|
|
void StubCode::GenerateSubtype1TestCacheStub(Assembler* assembler) {
|
|
GenerateSubtypeNTestCacheStub(assembler, 1);
|
|
}
|
|
|
|
|
|
// Used to check class and type arguments. Arguments passed in registers:
|
|
// LR: return address.
|
|
// R0: instance (must be preserved).
|
|
// R1: instantiator type arguments or NULL.
|
|
// R2: cache array.
|
|
// Result in R1: null -> not found, otherwise result (true or false).
|
|
void StubCode::GenerateSubtype2TestCacheStub(Assembler* assembler) {
|
|
GenerateSubtypeNTestCacheStub(assembler, 2);
|
|
}
|
|
|
|
|
|
// Used to check class and type arguments. Arguments passed in registers:
|
|
// LR: return address.
|
|
// R0: instance (must be preserved).
|
|
// R1: instantiator type arguments or NULL.
|
|
// R2: cache array.
|
|
// Result in R1: null -> not found, otherwise result (true or false).
|
|
void StubCode::GenerateSubtype3TestCacheStub(Assembler* assembler) {
|
|
GenerateSubtypeNTestCacheStub(assembler, 3);
|
|
}
|
|
|
|
|
|
// Return the current stack pointer address, used to do stack alignment checks.
|
|
void StubCode::GenerateGetStackPointerStub(Assembler* assembler) {
|
|
__ mov(R0, ShifterOperand(SP));
|
|
__ Ret();
|
|
}
|
|
|
|
|
|
// Jump to the exception or error handler.
|
|
// LR: return address.
|
|
// R0: program_counter.
|
|
// R1: stack_pointer.
|
|
// R2: frame_pointer.
|
|
// R3: error object.
|
|
// SP: address of stacktrace object.
|
|
// Does not return.
|
|
void StubCode::GenerateJumpToExceptionHandlerStub(Assembler* assembler) {
|
|
ASSERT(kExceptionObjectReg == R0);
|
|
ASSERT(kStackTraceObjectReg == R1);
|
|
__ mov(IP, ShifterOperand(R1)); // Stack pointer.
|
|
__ mov(LR, ShifterOperand(R0)); // Program counter.
|
|
__ mov(R0, ShifterOperand(R3)); // Exception object.
|
|
__ ldr(R1, Address(SP, 0)); // StackTrace object.
|
|
__ mov(FP, ShifterOperand(R2)); // Frame_pointer.
|
|
__ mov(SP, ShifterOperand(IP)); // Stack pointer.
|
|
__ bx(LR); // Jump to the exception handler code.
|
|
}
|
|
|
|
|
|
// Calls to the runtime to optimize the given function.
|
|
// R6: function to be reoptimized.
|
|
// R4: argument descriptor (preserved).
|
|
void StubCode::GenerateOptimizeFunctionStub(Assembler* assembler) {
|
|
__ EnterStubFrame();
|
|
__ Push(R4);
|
|
__ LoadImmediate(IP, reinterpret_cast<intptr_t>(Object::null()));
|
|
__ Push(IP); // Setup space on stack for return value.
|
|
__ Push(R6);
|
|
__ CallRuntime(kOptimizeInvokedFunctionRuntimeEntry, 1);
|
|
__ Pop(R0); // Discard argument.
|
|
__ Pop(R0); // Get Code object
|
|
__ Pop(R4); // Restore argument descriptor.
|
|
__ ldr(R0, FieldAddress(R0, Code::instructions_offset()));
|
|
__ AddImmediate(R0, Instructions::HeaderSize() - kHeapObjectTag);
|
|
__ LeaveStubFrame();
|
|
__ bx(R0);
|
|
__ bkpt(0);
|
|
}
|
|
|
|
|
|
DECLARE_LEAF_RUNTIME_ENTRY(intptr_t,
|
|
BigintCompare,
|
|
RawBigint* left,
|
|
RawBigint* right);
|
|
|
|
|
|
// Does identical check (object references are equal or not equal) with special
|
|
// checks for boxed numbers.
|
|
// LR: return address.
|
|
// Return Zero condition flag set if equal.
|
|
// Note: A Mint cannot contain a value that would fit in Smi, a Bigint
|
|
// cannot contain a value that fits in Mint or Smi.
|
|
void StubCode::GenerateIdenticalWithNumberCheckStub(Assembler* assembler,
|
|
const Register left,
|
|
const Register right,
|
|
const Register temp,
|
|
const Register unused) {
|
|
Label reference_compare, done, check_mint, check_bigint;
|
|
// If any of the arguments is Smi do reference compare.
|
|
__ tst(left, ShifterOperand(kSmiTagMask));
|
|
__ b(&reference_compare, EQ);
|
|
__ tst(right, ShifterOperand(kSmiTagMask));
|
|
__ b(&reference_compare, EQ);
|
|
|
|
// Value compare for two doubles.
|
|
__ CompareClassId(left, kDoubleCid, temp);
|
|
__ b(&check_mint, NE);
|
|
__ CompareClassId(right, kDoubleCid, temp);
|
|
__ b(&done, NE);
|
|
|
|
// Double values bitwise compare.
|
|
__ ldr(temp, FieldAddress(left, Double::value_offset() + 0 * kWordSize));
|
|
__ ldr(IP, FieldAddress(right, Double::value_offset() + 0 * kWordSize));
|
|
__ cmp(temp, ShifterOperand(IP));
|
|
__ b(&done, NE);
|
|
__ ldr(temp, FieldAddress(left, Double::value_offset() + 1 * kWordSize));
|
|
__ ldr(IP, FieldAddress(right, Double::value_offset() + 1 * kWordSize));
|
|
__ cmp(temp, ShifterOperand(IP));
|
|
__ b(&done);
|
|
|
|
__ Bind(&check_mint);
|
|
__ CompareClassId(left, kMintCid, temp);
|
|
__ b(&check_bigint, NE);
|
|
__ CompareClassId(right, kMintCid, temp);
|
|
__ b(&done, NE);
|
|
__ ldr(temp, FieldAddress(left, Mint::value_offset() + 0 * kWordSize));
|
|
__ ldr(IP, FieldAddress(right, Mint::value_offset() + 0 * kWordSize));
|
|
__ cmp(temp, ShifterOperand(IP));
|
|
__ b(&done, NE);
|
|
__ ldr(temp, FieldAddress(left, Mint::value_offset() + 1 * kWordSize));
|
|
__ ldr(IP, FieldAddress(right, Mint::value_offset() + 1 * kWordSize));
|
|
__ cmp(temp, ShifterOperand(IP));
|
|
__ b(&done);
|
|
|
|
__ Bind(&check_bigint);
|
|
__ CompareClassId(left, kBigintCid, temp);
|
|
__ b(&reference_compare, NE);
|
|
__ CompareClassId(right, kBigintCid, temp);
|
|
__ b(&done, NE);
|
|
__ EnterStubFrame();
|
|
__ ReserveAlignedFrameSpace(2 * kWordSize);
|
|
__ stm(IA, SP, (1 << R0) | (1 << R1));
|
|
__ CallRuntime(kBigintCompareRuntimeEntry, 2);
|
|
// Result in R0, 0 means equal.
|
|
__ LeaveStubFrame();
|
|
__ cmp(R0, ShifterOperand(0));
|
|
__ b(&done);
|
|
|
|
__ Bind(&reference_compare);
|
|
__ cmp(left, ShifterOperand(right));
|
|
__ Bind(&done);
|
|
}
|
|
|
|
|
|
// Called only from unoptimized code. All relevant registers have been saved.
|
|
// LR: return address.
|
|
// SP + 4: left operand.
|
|
// SP + 0: right operand.
|
|
// Return Zero condition flag set if equal.
|
|
void StubCode::GenerateUnoptimizedIdenticalWithNumberCheckStub(
|
|
Assembler* assembler) {
|
|
// Check single stepping.
|
|
Label not_stepping;
|
|
__ ldr(R1, FieldAddress(CTX, Context::isolate_offset()));
|
|
__ ldrb(R1, Address(R1, Isolate::single_step_offset()));
|
|
__ CompareImmediate(R1, 0);
|
|
__ b(¬_stepping, EQ);
|
|
__ EnterStubFrame();
|
|
__ CallRuntime(kSingleStepHandlerRuntimeEntry, 0);
|
|
__ LeaveStubFrame();
|
|
__ Bind(¬_stepping);
|
|
|
|
const Register temp = R2;
|
|
const Register left = R1;
|
|
const Register right = R0;
|
|
__ ldr(left, Address(SP, 1 * kWordSize));
|
|
__ ldr(right, Address(SP, 0 * kWordSize));
|
|
GenerateIdenticalWithNumberCheckStub(assembler, left, right, temp);
|
|
__ Ret();
|
|
}
|
|
|
|
|
|
// Called from optimized code only.
|
|
// LR: return address.
|
|
// SP + 4: left operand.
|
|
// SP + 0: right operand.
|
|
// Return Zero condition flag set if equal.
|
|
void StubCode::GenerateOptimizedIdenticalWithNumberCheckStub(
|
|
Assembler* assembler) {
|
|
const Register temp = R2;
|
|
const Register left = R1;
|
|
const Register right = R0;
|
|
__ ldr(left, Address(SP, 1 * kWordSize));
|
|
__ ldr(right, Address(SP, 0 * kWordSize));
|
|
GenerateIdenticalWithNumberCheckStub(assembler, left, right, temp);
|
|
__ Ret();
|
|
}
|
|
|
|
} // namespace dart
|
|
|
|
#endif // defined TARGET_ARCH_ARM
|