c18c1f4bfb
Cleanup from last CL. Change-Id: I08547b78641867de301d6657c7bc096e7480ad55 Reviewed-on: https://dart-review.googlesource.com/c/sdk/+/99243 Reviewed-by: Régis Crelier <regis@google.com> Commit-Queue: Zach Anderson <zra@google.com>
251 lines
8.5 KiB
C++
251 lines
8.5 KiB
C++
// Copyright (c) 2016, 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(HOST_OS_FUCHSIA)
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#include "vm/virtual_memory.h"
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#include <sys/mman.h>
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#include <unistd.h>
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#include <zircon/process.h>
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#include <zircon/status.h>
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#include <zircon/syscalls.h>
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#include "platform/assert.h"
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#include "vm/allocation.h"
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#include "vm/growable_array.h"
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#include "vm/isolate.h"
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#include "vm/lockers.h"
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#include "vm/memory_region.h"
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#include "vm/os.h"
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#include "vm/os_thread.h"
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// #define VIRTUAL_MEMORY_LOGGING 1
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#if defined(VIRTUAL_MEMORY_LOGGING)
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#define LOG_ERR(msg, ...) \
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OS::PrintErr("VMVM: %s:%d: " msg, __FILE__, __LINE__, ##__VA_ARGS__)
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#define LOG_INFO(msg, ...) \
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OS::PrintErr("VMVM: %s:%d: " msg, __FILE__, __LINE__, ##__VA_ARGS__)
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#else
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#define LOG_ERR(msg, ...)
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#define LOG_INFO(msg, ...)
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#endif // defined(VIRTUAL_MEMORY_LOGGING)
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namespace dart {
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DECLARE_FLAG(bool, dual_map_code);
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DECLARE_FLAG(bool, write_protect_code);
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uword VirtualMemory::page_size_ = 0;
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uword VirtualMemory::base_ = 0;
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void VirtualMemory::Init() {
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page_size_ = getpagesize();
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// Cache the base of zx_vmar_root_self() which is used to align mappings.
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zx_info_vmar_t buf[1];
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size_t actual;
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size_t avail;
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zx_status_t status =
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zx_object_get_info(zx_vmar_root_self(), ZX_INFO_VMAR, buf,
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sizeof(zx_info_vmar_t), &actual, &avail);
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if (status != ZX_OK) {
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FATAL1("zx_object_get_info failed: %s\n", zx_status_get_string(status));
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}
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base_ = buf[0].base;
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}
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static void Unmap(zx_handle_t vmar, uword start, uword end) {
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ASSERT(start <= end);
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const uword size = end - start;
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if (size == 0) {
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return;
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}
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zx_status_t status = zx_vmar_unmap(vmar, start, size);
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if (status != ZX_OK) {
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FATAL1("zx_vmar_unmap failed: %s\n", zx_status_get_string(status));
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}
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}
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static void* MapAligned(zx_handle_t vmar,
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zx_handle_t vmo,
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zx_vm_option_t options,
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uword size,
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uword alignment,
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uword vmar_base,
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uword padded_size) {
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// Allocate a larger mapping than needed in order to find a suitable aligned
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// mapping within it.
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uword base;
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zx_status_t status =
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zx_vmar_map(vmar, options, 0, vmo, 0u, padded_size, &base);
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LOG_INFO("zx_vmar_map(%u, 0x%lx, 0x%lx)\n", options, base, padded_size);
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if (status != ZX_OK) {
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LOG_ERR("zx_vmar_map(%u, 0x%lx, 0x%lx) failed: %s\n", options, base,
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padded_size, zx_status_get_string(status));
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return NULL;
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}
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// Allocate a smaller aligned mapping inside the larger mapping.
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const uword orig_base = base;
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const uword aligned_base = Utils::RoundUp(base, alignment);
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const zx_vm_option_t overwrite_options = options | ZX_VM_SPECIFIC_OVERWRITE;
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status = zx_vmar_map(vmar, overwrite_options, aligned_base - vmar_base, vmo,
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0u, size, &base);
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LOG_INFO("zx_vmar_map(%u, 0x%lx, 0x%lx)\n", overwrite_options,
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aligned_base - vmar_base, size);
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if (status != ZX_OK) {
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LOG_ERR("zx_vmar_map(%u, 0x%lx, 0x%lx) failed: %s\n", overwrite_options,
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aligned_base - vmar_base, size, zx_status_get_string(status));
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return NULL;
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}
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ASSERT(base == aligned_base);
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// Unmap the unused prefix and suffix.
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Unmap(vmar, orig_base, base);
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Unmap(vmar, base + size, orig_base + padded_size);
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return reinterpret_cast<void*>(base);
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}
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VirtualMemory* VirtualMemory::AllocateAligned(intptr_t size,
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intptr_t alignment,
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bool is_executable,
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const char* name) {
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// When FLAG_write_protect_code is active, code memory (indicated by
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// is_executable = true) is allocated as non-executable and later
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// changed to executable via VirtualMemory::Protect, which requires
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// ZX_RIGHT_EXECUTE on the underlying VMO.
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// In addition, dual mapping of the same underlying code memory is provided.
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const bool dual_mapping =
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is_executable && FLAG_write_protect_code && FLAG_dual_map_code;
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ASSERT(Utils::IsAligned(size, page_size_));
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ASSERT(Utils::IsPowerOfTwo(alignment));
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ASSERT(Utils::IsAligned(alignment, page_size_));
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const intptr_t padded_size = size + alignment - page_size_;
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zx_handle_t vmar = zx_vmar_root_self();
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zx_handle_t vmo = ZX_HANDLE_INVALID;
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zx_status_t status = zx_vmo_create(size, 0u, &vmo);
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if (status != ZX_OK) {
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LOG_ERR("zx_vmo_create(0x%lx) failed: %s\n", size,
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zx_status_get_string(status));
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return NULL;
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}
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if (name != NULL) {
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zx_object_set_property(vmo, ZX_PROP_NAME, name, strlen(name));
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}
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if (is_executable) {
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// Add ZX_RIGHT_EXECUTE permission to VMO, so it can be mapped
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// into memory as executable (now or later).
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status = zx_vmo_replace_as_executable(vmo, ZX_HANDLE_INVALID, &vmo);
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if (status != ZX_OK) {
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LOG_ERR("zx_vmo_replace_as_executable() failed: %s\n",
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zx_status_get_string(status));
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return NULL;
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}
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}
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const zx_vm_option_t region_options =
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ZX_VM_PERM_READ | ZX_VM_PERM_WRITE |
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((is_executable && !FLAG_write_protect_code) ? ZX_VM_PERM_EXECUTE : 0);
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void* region_ptr = MapAligned(vmar, vmo, region_options, size, alignment,
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base_, padded_size);
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if (region_ptr == NULL) {
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return NULL;
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}
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MemoryRegion region(region_ptr, size);
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VirtualMemory* result;
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if (dual_mapping) {
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// ZX_VM_PERM_EXECUTE is added later via VirtualMemory::Protect.
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const zx_vm_option_t alias_options = ZX_VM_PERM_READ;
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void* alias_ptr = MapAligned(vmar, vmo, alias_options, size, alignment,
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base_, padded_size);
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if (alias_ptr == NULL) {
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const uword region_base = reinterpret_cast<uword>(region_ptr);
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Unmap(vmar, region_base, region_base + size);
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return NULL;
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}
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ASSERT(region_ptr != alias_ptr);
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MemoryRegion alias(alias_ptr, size);
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result = new VirtualMemory(region, alias, region);
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} else {
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result = new VirtualMemory(region, region, region);
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}
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zx_handle_close(vmo);
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return result;
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}
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VirtualMemory::~VirtualMemory() {
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// Reserved region may be empty due to VirtualMemory::Truncate.
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if (vm_owns_region() && reserved_.size() != 0) {
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Unmap(zx_vmar_root_self(), reserved_.start(), reserved_.end());
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LOG_INFO("zx_vmar_unmap(0x%lx, 0x%lx) success\n", reserved_.start(),
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reserved_.size());
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const intptr_t alias_offset = AliasOffset();
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if (alias_offset != 0) {
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Unmap(zx_vmar_root_self(), reserved_.start() + alias_offset,
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reserved_.end() + alias_offset);
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LOG_INFO("zx_vmar_unmap(0x%lx, 0x%lx) success\n",
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reserved_.start() + alias_offset, reserved_.size());
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}
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}
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}
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void VirtualMemory::FreeSubSegment(void* address, intptr_t size) {
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const uword start = reinterpret_cast<uword>(address);
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Unmap(zx_vmar_root_self(), start, start + size);
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LOG_INFO("zx_vmar_unmap(0x%p, 0x%lx) success\n", address, size);
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}
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void VirtualMemory::Protect(void* address, intptr_t size, Protection mode) {
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#if defined(DEBUG)
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Thread* thread = Thread::Current();
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ASSERT((thread == nullptr) || thread->IsMutatorThread() ||
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thread->isolate()->mutator_thread()->IsAtSafepoint());
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#endif
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const uword start_address = reinterpret_cast<uword>(address);
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const uword end_address = start_address + size;
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const uword page_address = Utils::RoundDown(start_address, PageSize());
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uint32_t prot = 0;
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switch (mode) {
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case kNoAccess:
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prot = 0;
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break;
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case kReadOnly:
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prot = ZX_VM_PERM_READ;
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break;
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case kReadWrite:
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prot = ZX_VM_PERM_READ | ZX_VM_PERM_WRITE;
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break;
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case kReadExecute:
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prot = ZX_VM_PERM_READ | ZX_VM_PERM_EXECUTE;
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break;
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case kReadWriteExecute:
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prot = ZX_VM_PERM_READ | ZX_VM_PERM_WRITE | ZX_VM_PERM_EXECUTE;
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break;
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}
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zx_status_t status = zx_vmar_protect(zx_vmar_root_self(), prot, page_address,
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end_address - page_address);
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LOG_INFO("zx_vmar_protect(%u, 0x%lx, 0x%lx)\n", prot, page_address,
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end_address - page_address);
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if (status != ZX_OK) {
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FATAL3("zx_vmar_protect(0x%lx, 0x%lx) failed: %s\n", page_address,
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end_address - page_address, zx_status_get_string(status));
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}
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}
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} // namespace dart
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#endif // defined(HOST_OS_FUCHSIA)
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