6a769ac1df
This enables linter checking for "readability/namespace" violations during presubmit and instead marks the few known exceptions that we allow explicitly. R=bmeurer@chromium.org Review URL: https://codereview.chromium.org/1371083003 Cr-Commit-Position: refs/heads/master@{#31019}
318 lines
8.7 KiB
C++
318 lines
8.7 KiB
C++
// Copyright 2012 the V8 project authors. All rights reserved.
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// Use of this source code is governed by a BSD-style license that can be
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// found in the LICENSE file.
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// This file is an internal atomic implementation, use atomicops.h instead.
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#ifndef V8_BASE_ATOMICOPS_INTERNALS_ARM_GCC_H_
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#define V8_BASE_ATOMICOPS_INTERNALS_ARM_GCC_H_
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namespace v8 {
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namespace base {
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inline void MemoryBarrier() {
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__asm__ __volatile__ ("dmb ish" ::: "memory"); // NOLINT
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}
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// NoBarrier versions of the operation include "memory" in the clobber list.
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// This is not required for direct usage of the NoBarrier versions of the
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// operations. However this is required for correctness when they are used as
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// part of the Acquire or Release versions, to ensure that nothing from outside
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// the call is reordered between the operation and the memory barrier. This does
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// not change the code generated, so has no or minimal impact on the
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// NoBarrier operations.
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inline Atomic32 NoBarrier_CompareAndSwap(volatile Atomic32* ptr,
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Atomic32 old_value,
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Atomic32 new_value) {
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Atomic32 prev;
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int32_t temp;
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__asm__ __volatile__ ( // NOLINT
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"0: \n\t"
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"ldxr %w[prev], %[ptr] \n\t" // Load the previous value.
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"cmp %w[prev], %w[old_value] \n\t"
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"bne 1f \n\t"
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"stxr %w[temp], %w[new_value], %[ptr] \n\t" // Try to store the new value.
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"cbnz %w[temp], 0b \n\t" // Retry if it did not work.
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"1: \n\t"
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: [prev]"=&r" (prev),
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[temp]"=&r" (temp),
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[ptr]"+Q" (*ptr)
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: [old_value]"IJr" (old_value),
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[new_value]"r" (new_value)
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: "cc", "memory"
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); // NOLINT
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return prev;
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}
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inline Atomic32 NoBarrier_AtomicExchange(volatile Atomic32* ptr,
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Atomic32 new_value) {
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Atomic32 result;
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int32_t temp;
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__asm__ __volatile__ ( // NOLINT
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"0: \n\t"
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"ldxr %w[result], %[ptr] \n\t" // Load the previous value.
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"stxr %w[temp], %w[new_value], %[ptr] \n\t" // Try to store the new value.
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"cbnz %w[temp], 0b \n\t" // Retry if it did not work.
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: [result]"=&r" (result),
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[temp]"=&r" (temp),
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[ptr]"+Q" (*ptr)
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: [new_value]"r" (new_value)
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: "memory"
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); // NOLINT
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return result;
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}
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inline Atomic32 NoBarrier_AtomicIncrement(volatile Atomic32* ptr,
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Atomic32 increment) {
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Atomic32 result;
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int32_t temp;
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__asm__ __volatile__ ( // NOLINT
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"0: \n\t"
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"ldxr %w[result], %[ptr] \n\t" // Load the previous value.
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"add %w[result], %w[result], %w[increment]\n\t"
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"stxr %w[temp], %w[result], %[ptr] \n\t" // Try to store the result.
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"cbnz %w[temp], 0b \n\t" // Retry on failure.
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: [result]"=&r" (result),
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[temp]"=&r" (temp),
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[ptr]"+Q" (*ptr)
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: [increment]"IJr" (increment)
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: "memory"
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); // NOLINT
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return result;
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}
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inline Atomic32 Barrier_AtomicIncrement(volatile Atomic32* ptr,
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Atomic32 increment) {
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Atomic32 result;
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MemoryBarrier();
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result = NoBarrier_AtomicIncrement(ptr, increment);
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MemoryBarrier();
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return result;
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}
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inline Atomic32 Acquire_CompareAndSwap(volatile Atomic32* ptr,
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Atomic32 old_value,
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Atomic32 new_value) {
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Atomic32 prev;
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prev = NoBarrier_CompareAndSwap(ptr, old_value, new_value);
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MemoryBarrier();
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return prev;
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}
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inline Atomic32 Release_CompareAndSwap(volatile Atomic32* ptr,
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Atomic32 old_value,
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Atomic32 new_value) {
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Atomic32 prev;
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MemoryBarrier();
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prev = NoBarrier_CompareAndSwap(ptr, old_value, new_value);
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return prev;
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}
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inline void NoBarrier_Store(volatile Atomic8* ptr, Atomic8 value) {
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*ptr = value;
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}
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inline void NoBarrier_Store(volatile Atomic32* ptr, Atomic32 value) {
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*ptr = value;
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}
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inline void Acquire_Store(volatile Atomic32* ptr, Atomic32 value) {
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*ptr = value;
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MemoryBarrier();
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}
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inline void Release_Store(volatile Atomic32* ptr, Atomic32 value) {
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__asm__ __volatile__ ( // NOLINT
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"stlr %w[value], %[ptr] \n\t"
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: [ptr]"=Q" (*ptr)
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: [value]"r" (value)
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: "memory"
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); // NOLINT
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}
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inline Atomic8 NoBarrier_Load(volatile const Atomic8* ptr) {
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return *ptr;
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}
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inline Atomic32 NoBarrier_Load(volatile const Atomic32* ptr) {
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return *ptr;
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}
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inline Atomic32 Acquire_Load(volatile const Atomic32* ptr) {
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Atomic32 value;
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__asm__ __volatile__ ( // NOLINT
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"ldar %w[value], %[ptr] \n\t"
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: [value]"=r" (value)
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: [ptr]"Q" (*ptr)
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: "memory"
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); // NOLINT
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return value;
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}
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inline Atomic32 Release_Load(volatile const Atomic32* ptr) {
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MemoryBarrier();
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return *ptr;
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}
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// 64-bit versions of the operations.
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// See the 32-bit versions for comments.
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inline Atomic64 NoBarrier_CompareAndSwap(volatile Atomic64* ptr,
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Atomic64 old_value,
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Atomic64 new_value) {
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Atomic64 prev;
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int32_t temp;
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__asm__ __volatile__ ( // NOLINT
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"0: \n\t"
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"ldxr %[prev], %[ptr] \n\t"
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"cmp %[prev], %[old_value] \n\t"
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"bne 1f \n\t"
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"stxr %w[temp], %[new_value], %[ptr] \n\t"
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"cbnz %w[temp], 0b \n\t"
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"1: \n\t"
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: [prev]"=&r" (prev),
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[temp]"=&r" (temp),
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[ptr]"+Q" (*ptr)
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: [old_value]"IJr" (old_value),
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[new_value]"r" (new_value)
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: "cc", "memory"
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); // NOLINT
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return prev;
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}
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inline Atomic64 NoBarrier_AtomicExchange(volatile Atomic64* ptr,
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Atomic64 new_value) {
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Atomic64 result;
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int32_t temp;
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__asm__ __volatile__ ( // NOLINT
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"0: \n\t"
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"ldxr %[result], %[ptr] \n\t"
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"stxr %w[temp], %[new_value], %[ptr] \n\t"
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"cbnz %w[temp], 0b \n\t"
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: [result]"=&r" (result),
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[temp]"=&r" (temp),
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[ptr]"+Q" (*ptr)
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: [new_value]"r" (new_value)
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: "memory"
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); // NOLINT
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return result;
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}
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inline Atomic64 NoBarrier_AtomicIncrement(volatile Atomic64* ptr,
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Atomic64 increment) {
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Atomic64 result;
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int32_t temp;
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__asm__ __volatile__ ( // NOLINT
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"0: \n\t"
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"ldxr %[result], %[ptr] \n\t"
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"add %[result], %[result], %[increment] \n\t"
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"stxr %w[temp], %[result], %[ptr] \n\t"
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"cbnz %w[temp], 0b \n\t"
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: [result]"=&r" (result),
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[temp]"=&r" (temp),
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[ptr]"+Q" (*ptr)
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: [increment]"IJr" (increment)
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: "memory"
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); // NOLINT
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return result;
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}
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inline Atomic64 Barrier_AtomicIncrement(volatile Atomic64* ptr,
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Atomic64 increment) {
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Atomic64 result;
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MemoryBarrier();
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result = NoBarrier_AtomicIncrement(ptr, increment);
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MemoryBarrier();
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return result;
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}
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inline Atomic64 Acquire_CompareAndSwap(volatile Atomic64* ptr,
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Atomic64 old_value,
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Atomic64 new_value) {
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Atomic64 prev;
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prev = NoBarrier_CompareAndSwap(ptr, old_value, new_value);
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MemoryBarrier();
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return prev;
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}
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inline Atomic64 Release_CompareAndSwap(volatile Atomic64* ptr,
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Atomic64 old_value,
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Atomic64 new_value) {
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Atomic64 prev;
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MemoryBarrier();
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prev = NoBarrier_CompareAndSwap(ptr, old_value, new_value);
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return prev;
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}
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inline void NoBarrier_Store(volatile Atomic64* ptr, Atomic64 value) {
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*ptr = value;
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}
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inline void Acquire_Store(volatile Atomic64* ptr, Atomic64 value) {
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*ptr = value;
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MemoryBarrier();
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}
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inline void Release_Store(volatile Atomic64* ptr, Atomic64 value) {
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__asm__ __volatile__ ( // NOLINT
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"stlr %x[value], %[ptr] \n\t"
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: [ptr]"=Q" (*ptr)
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: [value]"r" (value)
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: "memory"
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); // NOLINT
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}
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inline Atomic64 NoBarrier_Load(volatile const Atomic64* ptr) {
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return *ptr;
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}
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inline Atomic64 Acquire_Load(volatile const Atomic64* ptr) {
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Atomic64 value;
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__asm__ __volatile__ ( // NOLINT
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"ldar %x[value], %[ptr] \n\t"
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: [value]"=r" (value)
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: [ptr]"Q" (*ptr)
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: "memory"
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); // NOLINT
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return value;
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}
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inline Atomic64 Release_Load(volatile const Atomic64* ptr) {
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MemoryBarrier();
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return *ptr;
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}
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} // namespace base
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} // namespace v8
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#endif // V8_BASE_ATOMICOPS_INTERNALS_ARM_GCC_H_
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