| Index: src/platform.h
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| diff --git a/src/platform.h b/src/platform.h
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| index 428ba55b2eef763e129082475d776fd452d9efce..46bc2de5a81974a2ac93670eea452b3173860bb0 100644
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| --- a/src/platform.h
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| +++ b/src/platform.h
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| @@ -219,30 +219,6 @@ class OS {
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|    static void PrintError(const char* format, ...);
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|    static void VPrintError(const char* format, va_list args);
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|  
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| -  // Allocate/Free memory used by JS heap. Pages are readable/writable, but
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| -  // they are not guaranteed to be executable unless 'executable' is true.
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| -  // Returns the address of allocated memory, or NULL if failed.
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| -  static void* Allocate(const size_t requested,
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| -                        size_t* allocated,
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| -                        bool is_executable);
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| -  static void Free(void* address, const size_t size);
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| -
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| -  // This is the granularity at which the ProtectCode(...) call can set page
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| -  // permissions.
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| -  static intptr_t CommitPageSize();
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| -
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| -  // Mark code segments non-writable.
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| -  static void ProtectCode(void* address, const size_t size);
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| -
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| -  // Assign memory as a guard page so that access will cause an exception.
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| -  static void Guard(void* address, const size_t size);
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| -
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| -  // Generate a random address to be used for hinting mmap().
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| -  static void* GetRandomMmapAddr();
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| -
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| -  // Get the Alignment guaranteed by Allocate().
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| -  static size_t AllocateAlignment();
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| -
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|    // Sleep for a number of milliseconds.
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|    static void Sleep(const int milliseconds);
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|  
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| @@ -303,10 +279,6 @@ class OS {
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|    // positions indicated by the members of the CpuFeature enum from globals.h
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|    static uint64_t CpuFeaturesImpliedByPlatform();
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|  
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| -  // Maximum size of the virtual memory.  0 means there is no artificial
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| -  // limit.
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| -  static intptr_t MaxVirtualMemory();
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| -
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|    // Returns the double constant NAN
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|    static double nan_value();
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|  
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| @@ -386,99 +358,6 @@ class OS {
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|    DISALLOW_IMPLICIT_CONSTRUCTORS(OS);
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|  };
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|  
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| -// Represents and controls an area of reserved memory.
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| -// Control of the reserved memory can be assigned to another VirtualMemory
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| -// object by assignment or copy-contructing. This removes the reserved memory
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| -// from the original object.
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| -class VirtualMemory {
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| - public:
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| -  // Empty VirtualMemory object, controlling no reserved memory.
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| -  VirtualMemory();
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| -
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| -  // Reserves virtual memory with size.
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| -  explicit VirtualMemory(size_t size);
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| -
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| -  // Reserves virtual memory containing an area of the given size that
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| -  // is aligned per alignment. This may not be at the position returned
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| -  // by address().
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| -  VirtualMemory(size_t size, size_t alignment);
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| -
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| -  // Releases the reserved memory, if any, controlled by this VirtualMemory
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| -  // object.
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| -  ~VirtualMemory();
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| -
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| -  // Returns whether the memory has been reserved.
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| -  bool IsReserved();
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| -
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| -  // Initialize or resets an embedded VirtualMemory object.
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| -  void Reset();
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| -
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| -  // Returns the start address of the reserved memory.
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| -  // If the memory was reserved with an alignment, this address is not
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| -  // necessarily aligned. The user might need to round it up to a multiple of
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| -  // the alignment to get the start of the aligned block.
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| -  void* address() {
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| -    ASSERT(IsReserved());
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| -    return address_;
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| -  }
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| -
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| -  // Returns the size of the reserved memory. The returned value is only
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| -  // meaningful when IsReserved() returns true.
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| -  // If the memory was reserved with an alignment, this size may be larger
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| -  // than the requested size.
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| -  size_t size() { return size_; }
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| -
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| -  // Commits real memory. Returns whether the operation succeeded.
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| -  bool Commit(void* address, size_t size, bool is_executable);
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| -
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| -  // Uncommit real memory.  Returns whether the operation succeeded.
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| -  bool Uncommit(void* address, size_t size);
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| -
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| -  // Creates a single guard page at the given address.
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| -  bool Guard(void* address);
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| -
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| -  void Release() {
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| -    ASSERT(IsReserved());
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| -    // Notice: Order is important here. The VirtualMemory object might live
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| -    // inside the allocated region.
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| -    void* address = address_;
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| -    size_t size = size_;
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| -    Reset();
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| -    bool result = ReleaseRegion(address, size);
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| -    USE(result);
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| -    ASSERT(result);
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| -  }
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| -
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| -  // Assign control of the reserved region to a different VirtualMemory object.
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| -  // The old object is no longer functional (IsReserved() returns false).
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| -  void TakeControl(VirtualMemory* from) {
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| -    ASSERT(!IsReserved());
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| -    address_ = from->address_;
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| -    size_ = from->size_;
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| -    from->Reset();
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| -  }
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| -
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| -  static void* ReserveRegion(size_t size);
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| -
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| -  static bool CommitRegion(void* base, size_t size, bool is_executable);
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| -
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| -  static bool UncommitRegion(void* base, size_t size);
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| -
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| -  // Must be called with a base pointer that has been returned by ReserveRegion
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| -  // and the same size it was reserved with.
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| -  static bool ReleaseRegion(void* base, size_t size);
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| -
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| -  // Returns true if OS performs lazy commits, i.e. the memory allocation call
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| -  // defers actual physical memory allocation till the first memory access.
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| -  // Otherwise returns false.
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| -  static bool HasLazyCommits();
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| -
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| - private:
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| -  void* address_;  // Start address of the virtual memory.
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| -  size_t size_;  // Size of the virtual memory.
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| -};
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| -
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| -
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|  // ----------------------------------------------------------------------------
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|  // Thread
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|  //
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| 
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