421 lines
14 KiB
C++
421 lines
14 KiB
C++
// Copyright (c) 2012, 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/bootstrap_natives.h"
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#include "include/dart_api.h"
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#include "vm/dart_entry.h"
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#include "vm/dart_api_impl.h"
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#include "vm/exceptions.h"
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#include "vm/isolate.h"
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#include "vm/native_entry.h"
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#include "vm/object.h"
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#include "vm/object_store.h"
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#include "vm/symbols.h"
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namespace dart {
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DEFINE_FLAG(bool,
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trace_intrinsified_natives,
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false,
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"Report if any of the intrinsified natives are called");
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// Smi natives.
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// Returns false if integer is in wrong representation, e.g., as is a Bigint
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// when it could have been a Smi.
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static bool CheckInteger(const Integer& i) {
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if (i.IsBigint()) {
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const Bigint& bigint = Bigint::Cast(i);
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return !bigint.FitsIntoSmi() && !bigint.FitsIntoInt64();
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}
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if (i.IsMint()) {
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const Mint& mint = Mint::Cast(i);
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return !Smi::IsValid(mint.value());
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}
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return true;
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}
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DEFINE_NATIVE_ENTRY(Integer_bitAndFromInteger, 2) {
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const Integer& right = Integer::CheckedHandle(arguments->NativeArgAt(0));
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GET_NON_NULL_NATIVE_ARGUMENT(Integer, left, arguments->NativeArgAt(1));
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ASSERT(CheckInteger(right));
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ASSERT(CheckInteger(left));
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if (FLAG_trace_intrinsified_natives) {
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OS::Print("Integer_bitAndFromInteger %s & %s\n", right.ToCString(),
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left.ToCString());
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}
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const Integer& result = Integer::Handle(left.BitOp(Token::kBIT_AND, right));
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// A null result indicates that a bigint operation is required.
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return result.IsNull() ? result.raw() : result.AsValidInteger();
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}
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DEFINE_NATIVE_ENTRY(Integer_bitOrFromInteger, 2) {
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const Integer& right = Integer::CheckedHandle(arguments->NativeArgAt(0));
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GET_NON_NULL_NATIVE_ARGUMENT(Integer, left, arguments->NativeArgAt(1));
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ASSERT(CheckInteger(right));
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ASSERT(CheckInteger(left));
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if (FLAG_trace_intrinsified_natives) {
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OS::Print("Integer_bitOrFromInteger %s | %s\n", left.ToCString(),
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right.ToCString());
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}
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const Integer& result = Integer::Handle(left.BitOp(Token::kBIT_OR, right));
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// A null result indicates that a bigint operation is required.
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return result.IsNull() ? result.raw() : result.AsValidInteger();
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}
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DEFINE_NATIVE_ENTRY(Integer_bitXorFromInteger, 2) {
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const Integer& right = Integer::CheckedHandle(arguments->NativeArgAt(0));
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GET_NON_NULL_NATIVE_ARGUMENT(Integer, left, arguments->NativeArgAt(1));
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ASSERT(CheckInteger(right));
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ASSERT(CheckInteger(left));
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if (FLAG_trace_intrinsified_natives) {
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OS::Print("Integer_bitXorFromInteger %s ^ %s\n", left.ToCString(),
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right.ToCString());
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}
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const Integer& result = Integer::Handle(left.BitOp(Token::kBIT_XOR, right));
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// A null result indicates that a bigint operation is required.
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return result.IsNull() ? result.raw() : result.AsValidInteger();
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}
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DEFINE_NATIVE_ENTRY(Integer_addFromInteger, 2) {
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const Integer& right_int = Integer::CheckedHandle(arguments->NativeArgAt(0));
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GET_NON_NULL_NATIVE_ARGUMENT(Integer, left_int, arguments->NativeArgAt(1));
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ASSERT(CheckInteger(right_int));
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ASSERT(CheckInteger(left_int));
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if (FLAG_trace_intrinsified_natives) {
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OS::Print("Integer_addFromInteger %s + %s\n", left_int.ToCString(),
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right_int.ToCString());
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}
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const Integer& result =
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Integer::Handle(left_int.ArithmeticOp(Token::kADD, right_int));
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// A null result indicates that a bigint operation is required.
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return result.IsNull() ? result.raw() : result.AsValidInteger();
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}
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DEFINE_NATIVE_ENTRY(Integer_subFromInteger, 2) {
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const Integer& right_int = Integer::CheckedHandle(arguments->NativeArgAt(0));
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GET_NON_NULL_NATIVE_ARGUMENT(Integer, left_int, arguments->NativeArgAt(1));
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ASSERT(CheckInteger(right_int));
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ASSERT(CheckInteger(left_int));
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if (FLAG_trace_intrinsified_natives) {
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OS::Print("Integer_subFromInteger %s - %s\n", left_int.ToCString(),
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right_int.ToCString());
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}
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const Integer& result =
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Integer::Handle(left_int.ArithmeticOp(Token::kSUB, right_int));
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// A null result indicates that a bigint operation is required.
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return result.IsNull() ? result.raw() : result.AsValidInteger();
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}
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DEFINE_NATIVE_ENTRY(Integer_mulFromInteger, 2) {
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const Integer& right_int = Integer::CheckedHandle(arguments->NativeArgAt(0));
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GET_NON_NULL_NATIVE_ARGUMENT(Integer, left_int, arguments->NativeArgAt(1));
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ASSERT(CheckInteger(right_int));
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ASSERT(CheckInteger(left_int));
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if (FLAG_trace_intrinsified_natives) {
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OS::Print("Integer_mulFromInteger %s * %s\n", left_int.ToCString(),
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right_int.ToCString());
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}
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const Integer& result =
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Integer::Handle(left_int.ArithmeticOp(Token::kMUL, right_int));
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// A null result indicates that a bigint operation is required.
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return result.IsNull() ? result.raw() : result.AsValidInteger();
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}
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DEFINE_NATIVE_ENTRY(Integer_truncDivFromInteger, 2) {
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const Integer& right_int = Integer::CheckedHandle(arguments->NativeArgAt(0));
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GET_NON_NULL_NATIVE_ARGUMENT(Integer, left_int, arguments->NativeArgAt(1));
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ASSERT(CheckInteger(right_int));
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ASSERT(CheckInteger(left_int));
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ASSERT(!right_int.IsZero());
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const Integer& result =
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Integer::Handle(left_int.ArithmeticOp(Token::kTRUNCDIV, right_int));
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// A null result indicates that a bigint operation is required.
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return result.IsNull() ? result.raw() : result.AsValidInteger();
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}
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DEFINE_NATIVE_ENTRY(Integer_moduloFromInteger, 2) {
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const Integer& right_int = Integer::CheckedHandle(arguments->NativeArgAt(0));
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GET_NON_NULL_NATIVE_ARGUMENT(Integer, left_int, arguments->NativeArgAt(1));
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ASSERT(CheckInteger(right_int));
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ASSERT(CheckInteger(left_int));
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if (FLAG_trace_intrinsified_natives) {
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OS::Print("Integer_moduloFromInteger %s mod %s\n", left_int.ToCString(),
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right_int.ToCString());
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}
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if (right_int.IsZero()) {
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// Should have been caught before calling into runtime.
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UNIMPLEMENTED();
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}
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const Integer& result =
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Integer::Handle(left_int.ArithmeticOp(Token::kMOD, right_int));
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// A null result indicates that a bigint operation is required.
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return result.IsNull() ? result.raw() : result.AsValidInteger();
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}
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DEFINE_NATIVE_ENTRY(Integer_greaterThanFromInteger, 2) {
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const Integer& right = Integer::CheckedHandle(arguments->NativeArgAt(0));
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GET_NON_NULL_NATIVE_ARGUMENT(Integer, left, arguments->NativeArgAt(1));
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ASSERT(CheckInteger(right));
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ASSERT(CheckInteger(left));
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if (FLAG_trace_intrinsified_natives) {
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OS::Print("Integer_greaterThanFromInteger %s > %s\n", left.ToCString(),
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right.ToCString());
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}
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return Bool::Get(left.CompareWith(right) == 1).raw();
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}
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DEFINE_NATIVE_ENTRY(Integer_equalToInteger, 2) {
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const Integer& left = Integer::CheckedHandle(arguments->NativeArgAt(0));
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GET_NON_NULL_NATIVE_ARGUMENT(Integer, right, arguments->NativeArgAt(1));
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ASSERT(CheckInteger(left));
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ASSERT(CheckInteger(right));
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if (FLAG_trace_intrinsified_natives) {
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OS::Print("Integer_equalToInteger %s == %s\n", left.ToCString(),
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right.ToCString());
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}
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return Bool::Get(left.CompareWith(right) == 0).raw();
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}
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static RawInteger* ParseInteger(const String& value) {
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// Used by both Integer_parse and Integer_fromEnvironment.
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if (value.IsOneByteString()) {
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// Quick conversion for unpadded integers in strings.
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const intptr_t len = value.Length();
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if (len > 0) {
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const char* cstr = value.ToCString();
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ASSERT(cstr != NULL);
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char* p_end = NULL;
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const int64_t int_value = strtoll(cstr, &p_end, 10);
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if (p_end == (cstr + len)) {
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if ((int_value != LLONG_MIN) && (int_value != LLONG_MAX)) {
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return Integer::New(int_value);
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}
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}
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}
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}
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const String* int_string;
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bool is_positive;
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if (Scanner::IsValidInteger(value, &is_positive, &int_string)) {
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if (is_positive) {
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return Integer::New(*int_string);
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}
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String& temp = String::Handle();
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temp = String::Concat(Symbols::Dash(), *int_string);
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return Integer::New(temp);
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}
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return Integer::null();
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}
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DEFINE_NATIVE_ENTRY(Integer_parse, 1) {
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GET_NON_NULL_NATIVE_ARGUMENT(String, value, arguments->NativeArgAt(0));
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return ParseInteger(value);
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}
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DEFINE_NATIVE_ENTRY(Integer_fromEnvironment, 3) {
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GET_NON_NULL_NATIVE_ARGUMENT(String, name, arguments->NativeArgAt(1));
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GET_NATIVE_ARGUMENT(Integer, default_value, arguments->NativeArgAt(2));
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// Call the embedder to supply us with the environment.
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const String& env_value =
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String::Handle(Api::GetEnvironmentValue(thread, name));
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if (!env_value.IsNull()) {
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const Integer& result = Integer::Handle(ParseInteger(env_value));
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if (!result.IsNull()) {
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if (result.IsSmi()) {
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return result.raw();
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}
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return result.CheckAndCanonicalize(thread, NULL);
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}
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}
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return default_value.raw();
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}
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static RawInteger* ShiftOperationHelper(Token::Kind kind,
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const Integer& value,
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const Smi& amount) {
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if (amount.Value() < 0) {
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Exceptions::ThrowArgumentError(amount);
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}
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if (value.IsSmi()) {
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const Smi& smi_value = Smi::Cast(value);
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return smi_value.ShiftOp(kind, amount, Heap::kNew);
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}
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if (value.IsMint()) {
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const int64_t mint_value = value.AsInt64Value();
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const int count = Utils::HighestBit(mint_value);
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intptr_t shift_count = amount.Value();
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if (kind == Token::kSHR) {
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shift_count = -shift_count;
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}
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if ((count + shift_count) < Mint::kBits) {
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switch (kind) {
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case Token::kSHL:
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return Integer::New(mint_value << shift_count, Heap::kNew);
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case Token::kSHR:
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shift_count =
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(-shift_count > Mint::kBits) ? Mint::kBits : -shift_count;
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return Integer::New(mint_value >> shift_count, Heap::kNew);
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default:
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UNIMPLEMENTED();
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}
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} else {
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// Overflow in shift, use Bigints
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return Integer::null();
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}
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} else {
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ASSERT(value.IsBigint());
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}
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return Integer::null();
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}
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DEFINE_NATIVE_ENTRY(Smi_bitAndFromSmi, 2) {
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const Smi& left = Smi::CheckedHandle(arguments->NativeArgAt(0));
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GET_NON_NULL_NATIVE_ARGUMENT(Smi, right, arguments->NativeArgAt(1));
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if (FLAG_trace_intrinsified_natives) {
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OS::Print("Smi_bitAndFromSmi %s & %s\n", left.ToCString(),
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right.ToCString());
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}
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const Smi& left_value = Smi::Cast(left);
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const Smi& right_value = Smi::Cast(right);
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return Smi::New(left_value.Value() & right_value.Value());
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}
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DEFINE_NATIVE_ENTRY(Smi_shrFromInt, 2) {
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const Smi& amount = Smi::CheckedHandle(arguments->NativeArgAt(0));
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GET_NON_NULL_NATIVE_ARGUMENT(Integer, value, arguments->NativeArgAt(1));
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ASSERT(CheckInteger(amount));
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ASSERT(CheckInteger(value));
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const Integer& result =
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Integer::Handle(ShiftOperationHelper(Token::kSHR, value, amount));
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// A null result indicates that a bigint operation is required.
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return result.IsNull() ? result.raw() : result.AsValidInteger();
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}
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DEFINE_NATIVE_ENTRY(Smi_shlFromInt, 2) {
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const Smi& amount = Smi::CheckedHandle(arguments->NativeArgAt(0));
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GET_NON_NULL_NATIVE_ARGUMENT(Integer, value, arguments->NativeArgAt(1));
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ASSERT(CheckInteger(amount));
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ASSERT(CheckInteger(value));
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if (FLAG_trace_intrinsified_natives) {
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OS::Print("Smi_shlFromInt: %s << %s\n", value.ToCString(),
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amount.ToCString());
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}
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const Integer& result =
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Integer::Handle(ShiftOperationHelper(Token::kSHL, value, amount));
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// A null result indicates that a bigint operation is required.
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return result.IsNull() ? result.raw() : result.AsValidInteger();
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}
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DEFINE_NATIVE_ENTRY(Smi_bitNegate, 1) {
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const Smi& operand = Smi::CheckedHandle(arguments->NativeArgAt(0));
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if (FLAG_trace_intrinsified_natives) {
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OS::Print("Smi_bitNegate: %s\n", operand.ToCString());
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}
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intptr_t result = ~operand.Value();
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ASSERT(Smi::IsValid(result));
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return Smi::New(result);
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}
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DEFINE_NATIVE_ENTRY(Smi_bitLength, 1) {
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const Smi& operand = Smi::CheckedHandle(arguments->NativeArgAt(0));
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if (FLAG_trace_intrinsified_natives) {
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OS::Print("Smi_bitLength: %s\n", operand.ToCString());
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}
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int64_t value = operand.AsInt64Value();
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intptr_t result = Utils::BitLength(value);
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ASSERT(Smi::IsValid(result));
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return Smi::New(result);
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}
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// Mint natives.
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DEFINE_NATIVE_ENTRY(Mint_bitNegate, 1) {
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const Mint& operand = Mint::CheckedHandle(arguments->NativeArgAt(0));
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ASSERT(CheckInteger(operand));
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if (FLAG_trace_intrinsified_natives) {
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OS::Print("Mint_bitNegate: %s\n", operand.ToCString());
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}
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int64_t result = ~operand.value();
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return Integer::New(result);
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}
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DEFINE_NATIVE_ENTRY(Mint_bitLength, 1) {
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const Mint& operand = Mint::CheckedHandle(arguments->NativeArgAt(0));
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ASSERT(CheckInteger(operand));
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if (FLAG_trace_intrinsified_natives) {
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OS::Print("Mint_bitLength: %s\n", operand.ToCString());
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}
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int64_t value = operand.AsInt64Value();
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intptr_t result = Utils::BitLength(value);
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ASSERT(Smi::IsValid(result));
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return Smi::New(result);
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}
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DEFINE_NATIVE_ENTRY(Mint_shlFromInt, 2) {
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// Use the preallocated out of memory exception to avoid calling
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// into dart code or allocating any code.
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const Instance& exception =
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Instance::Handle(isolate->object_store()->out_of_memory());
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Exceptions::Throw(thread, exception);
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UNREACHABLE();
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return 0;
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}
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// Bigint natives.
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DEFINE_NATIVE_ENTRY(Bigint_getNeg, 1) {
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const Bigint& bigint = Bigint::CheckedHandle(arguments->NativeArgAt(0));
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return bigint.neg();
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}
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DEFINE_NATIVE_ENTRY(Bigint_getUsed, 1) {
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const Bigint& bigint = Bigint::CheckedHandle(arguments->NativeArgAt(0));
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return bigint.used();
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}
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DEFINE_NATIVE_ENTRY(Bigint_getDigits, 1) {
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const Bigint& bigint = Bigint::CheckedHandle(arguments->NativeArgAt(0));
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return bigint.digits();
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}
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DEFINE_NATIVE_ENTRY(Bigint_allocate, 4) {
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// First arg is null type arguments, since class Bigint is not parameterized.
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const Bool& neg = Bool::CheckedHandle(arguments->NativeArgAt(1));
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const Smi& used = Smi::CheckedHandle(arguments->NativeArgAt(2));
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const TypedData& digits = TypedData::CheckedHandle(arguments->NativeArgAt(3));
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ASSERT(!digits.IsNull());
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return Bigint::New(neg.value(), used.Value(), digits);
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}
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} // namespace dart
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