Files
sdk/runtime/vm/virtual_memory_win.cc
T
Martin Kustermann dae308461c [vm/concurrency] Share [Heap] and [SharedClassTable] between all isolates within one isolate group
This CL:

  * Moves [Heap]/[SharedClassTable] from [Isolate] to [IsolateGroup], which
    will make all isolates in the group use the same heap. The GC will use
    the shared class table for object size information.

  * Adds support for entering/leaving an isolate group as a helper thread
    (e.g. via [Thread::EnterIsolateGroupAsHelper]). The current active
    isolate group can be accessed via TLS `IsolateGroup::Current()` or
    `Thread::isolate_group_`. When entering as a helper thread there will be
    no current isolate.

  * Changes the GC to use the above mechanism and ensures GC works without
    a currently active isolate. The GC will use information purely available via
    [IsolateGroup]. The GC will iterate all isolates within an isolate
    group e.g. for scanning roots.

  * Makes spawning of new isolates start in their own isolate group.
    Once the isolate is fully functional it's heap will be merged into
    the original isolate group

  * Moves ApiState, containing persistent and weak persistent handles,
    from [Isolate] to [IsolateGroup], plus adds appropriate locking.

Issue https://github.com/dart-lang/sdk/issues/36097

Change-Id: Ia8e1d8aa78750e8400864200f4825395a182c004
Reviewed-on: https://dart-review.googlesource.com/c/sdk/+/126646
Commit-Queue: Martin Kustermann <kustermann@google.com>
Reviewed-by: Ryan Macnak <rmacnak@google.com>
2020-02-20 21:08:35 +00:00

128 lines
3.9 KiB
C++

// Copyright (c) 2012, the Dart project authors. Please see the AUTHORS file
// for details. All rights reserved. Use of this source code is governed by a
// BSD-style license that can be found in the LICENSE file.
#include "vm/globals.h"
#if defined(HOST_OS_WINDOWS)
#include "vm/virtual_memory.h"
#include "platform/assert.h"
#include "vm/os.h"
#include "vm/isolate.h"
namespace dart {
DECLARE_FLAG(bool, write_protect_code);
uword VirtualMemory::page_size_ = 0;
intptr_t VirtualMemory::CalculatePageSize() {
SYSTEM_INFO info;
GetSystemInfo(&info);
const intptr_t page_size = info.dwPageSize;
ASSERT(page_size != 0);
ASSERT(Utils::IsPowerOfTwo(page_size));
return page_size;
}
void VirtualMemory::Init() {
page_size_ = CalculatePageSize();
}
bool VirtualMemory::DualMappingEnabled() {
return false;
}
VirtualMemory* VirtualMemory::AllocateAligned(intptr_t size,
intptr_t alignment,
bool is_executable,
const char* name) {
// When FLAG_write_protect_code is active, code memory (indicated by
// is_executable = true) is allocated as non-executable and later
// changed to executable via VirtualMemory::Protect.
ASSERT(Utils::IsAligned(size, PageSize()));
ASSERT(Utils::IsPowerOfTwo(alignment));
ASSERT(Utils::IsAligned(alignment, PageSize()));
intptr_t reserved_size = size + alignment - PageSize();
int prot = (is_executable && !FLAG_write_protect_code)
? PAGE_EXECUTE_READWRITE
: PAGE_READWRITE;
void* address = VirtualAlloc(NULL, reserved_size, MEM_RESERVE, prot);
if (address == NULL) {
return NULL;
}
void* aligned_address = reinterpret_cast<void*>(
Utils::RoundUp(reinterpret_cast<uword>(address), alignment));
if (VirtualAlloc(aligned_address, size, MEM_COMMIT, prot) !=
aligned_address) {
VirtualFree(address, reserved_size, MEM_RELEASE);
return NULL;
}
MemoryRegion region(aligned_address, size);
MemoryRegion reserved(address, reserved_size);
return new VirtualMemory(region, reserved);
}
VirtualMemory::~VirtualMemory() {
// Note that the size of the reserved region might be set to 0 by
// Truncate(0, true) but that does not actually release the mapping
// itself. The only way to release the mapping is to invoke VirtualFree
// with original base pointer and MEM_RELEASE.
if (!vm_owns_region()) {
return;
}
if (VirtualFree(reserved_.pointer(), 0, MEM_RELEASE) == 0) {
FATAL1("VirtualFree failed: Error code %d\n", GetLastError());
}
}
void VirtualMemory::FreeSubSegment(void* address,
intptr_t size) {
if (VirtualFree(address, size, MEM_DECOMMIT) == 0) {
FATAL1("VirtualFree failed: Error code %d\n", GetLastError());
}
}
void VirtualMemory::Protect(void* address, intptr_t size, Protection mode) {
#if defined(DEBUG)
Thread* thread = Thread::Current();
ASSERT(thread == nullptr || thread->IsMutatorThread() ||
thread->isolate() == nullptr ||
thread->isolate()->mutator_thread()->IsAtSafepoint());
#endif
uword start_address = reinterpret_cast<uword>(address);
uword end_address = start_address + size;
uword page_address = Utils::RoundDown(start_address, PageSize());
DWORD prot = 0;
switch (mode) {
case kNoAccess:
prot = PAGE_NOACCESS;
break;
case kReadOnly:
prot = PAGE_READONLY;
break;
case kReadWrite:
prot = PAGE_READWRITE;
break;
case kReadExecute:
prot = PAGE_EXECUTE_READ;
break;
case kReadWriteExecute:
prot = PAGE_EXECUTE_READWRITE;
break;
}
DWORD old_prot = 0;
if (VirtualProtect(reinterpret_cast<void*>(page_address),
end_address - page_address, prot, &old_prot) == 0) {
FATAL1("VirtualProtect failed %d\n", GetLastError());
}
}
} // namespace dart
#endif // defined(HOST_OS_WINDOWS)