mirror of
https://github.com/LadybirdBrowser/ladybird.git
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691 lines
24 KiB
C++
691 lines
24 KiB
C++
/*
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* Copyright (c) 2018-2020, Andreas Kling <kling@serenityos.org>
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* All rights reserved.
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*
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* Redistribution and use in source and binary forms, with or without
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* modification, are permitted provided that the following conditions are met:
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*
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* 1. Redistributions of source code must retain the above copyright notice, this
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* list of conditions and the following disclaimer.
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*
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* 2. Redistributions in binary form must reproduce the above copyright notice,
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* this list of conditions and the following disclaimer in the documentation
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* and/or other materials provided with the distribution.
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*
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* THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
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* AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
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* IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE
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* DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR CONTRIBUTORS BE LIABLE
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* FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
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* DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR
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* SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER
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* CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY,
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* OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
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* OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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*/
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#include "CMOS.h"
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#include "Process.h"
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#include <AK/Assertions.h>
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#include <Kernel/Arch/i386/CPU.h>
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#include <Kernel/FileSystem/Inode.h>
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#include <Kernel/Multiboot.h>
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#include <Kernel/VM/AnonymousVMObject.h>
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#include <Kernel/VM/InodeVMObject.h>
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#include <Kernel/VM/MemoryManager.h>
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#include <Kernel/VM/PageDirectory.h>
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#include <Kernel/VM/PhysicalRegion.h>
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#include <Kernel/VM/PurgeableVMObject.h>
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#include <LibBareMetal/StdLib.h>
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//#define MM_DEBUG
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//#define PAGE_FAULT_DEBUG
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extern uintptr_t start_of_kernel_text;
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extern uintptr_t start_of_kernel_data;
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extern uintptr_t end_of_kernel_bss;
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namespace Kernel {
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static MemoryManager* s_the;
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MemoryManager& MM
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{
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return *s_the;
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}
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MemoryManager::MemoryManager()
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{
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m_kernel_page_directory = PageDirectory::create_kernel_page_directory();
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parse_memory_map();
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write_cr3(kernel_page_directory().cr3());
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setup_low_identity_mapping();
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protect_kernel_image();
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m_shared_zero_page = allocate_user_physical_page();
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}
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MemoryManager::~MemoryManager()
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{
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}
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void MemoryManager::protect_kernel_image()
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{
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// Disable writing to the kernel text and rodata segments.
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for (size_t i = (uintptr_t)&start_of_kernel_text; i < (uintptr_t)&start_of_kernel_data; i += PAGE_SIZE) {
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auto& pte = ensure_pte(kernel_page_directory(), VirtualAddress(i));
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pte.set_writable(false);
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}
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if (g_cpu_supports_nx) {
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// Disable execution of the kernel data and bss segments.
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for (size_t i = (uintptr_t)&start_of_kernel_data; i < (uintptr_t)&end_of_kernel_bss; i += PAGE_SIZE) {
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auto& pte = ensure_pte(kernel_page_directory(), VirtualAddress(i));
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pte.set_execute_disabled(true);
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}
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}
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}
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void MemoryManager::setup_low_identity_mapping()
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{
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m_low_page_table = allocate_user_physical_page(ShouldZeroFill::Yes);
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auto* pd_zero = quickmap_pd(kernel_page_directory(), 0);
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pd_zero[1].set_present(false);
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pd_zero[2].set_present(false);
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pd_zero[3].set_present(false);
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auto& pde_zero = pd_zero[0];
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pde_zero.set_page_table_base(m_low_page_table->paddr().get());
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pde_zero.set_present(true);
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pde_zero.set_huge(false);
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pde_zero.set_writable(true);
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pde_zero.set_user_allowed(false);
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if (g_cpu_supports_nx)
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pde_zero.set_execute_disabled(true);
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for (uintptr_t offset = (1 * MB); offset < (2 * MB); offset += PAGE_SIZE) {
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auto& page_table_page = m_low_page_table;
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auto& pte = quickmap_pt(page_table_page->paddr())[offset / PAGE_SIZE];
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pte.set_physical_page_base(offset);
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pte.set_user_allowed(false);
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pte.set_present(offset != 0);
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pte.set_writable(offset < (1 * MB));
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}
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}
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void MemoryManager::parse_memory_map()
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{
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RefPtr<PhysicalRegion> region;
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bool region_is_super = false;
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auto* mmap = (multiboot_memory_map_t*)(low_physical_to_virtual(multiboot_info_ptr->mmap_addr));
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for (; (unsigned long)mmap < (low_physical_to_virtual(multiboot_info_ptr->mmap_addr)) + (multiboot_info_ptr->mmap_length); mmap = (multiboot_memory_map_t*)((unsigned long)mmap + mmap->size + sizeof(mmap->size))) {
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kprintf("MM: Multiboot mmap: base_addr = 0x%x%08x, length = 0x%x%08x, type = 0x%x\n",
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(uintptr_t)(mmap->addr >> 32),
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(uintptr_t)(mmap->addr & 0xffffffff),
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(uintptr_t)(mmap->len >> 32),
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(uintptr_t)(mmap->len & 0xffffffff),
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(uintptr_t)mmap->type);
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if (mmap->type != MULTIBOOT_MEMORY_AVAILABLE)
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continue;
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// FIXME: Maybe make use of stuff below the 1MB mark?
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if (mmap->addr < (1 * MB))
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continue;
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if ((mmap->addr + mmap->len) > 0xffffffff)
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continue;
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auto diff = (uintptr_t)mmap->addr % PAGE_SIZE;
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if (diff != 0) {
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kprintf("MM: got an unaligned region base from the bootloader; correcting %p by %d bytes\n", mmap->addr, diff);
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diff = PAGE_SIZE - diff;
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mmap->addr += diff;
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mmap->len -= diff;
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}
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if ((mmap->len % PAGE_SIZE) != 0) {
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kprintf("MM: got an unaligned region length from the bootloader; correcting %d by %d bytes\n", mmap->len, mmap->len % PAGE_SIZE);
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mmap->len -= mmap->len % PAGE_SIZE;
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}
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if (mmap->len < PAGE_SIZE) {
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kprintf("MM: memory region from bootloader is too small; we want >= %d bytes, but got %d bytes\n", PAGE_SIZE, mmap->len);
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continue;
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}
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#ifdef MM_DEBUG
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kprintf("MM: considering memory at %p - %p\n",
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(uintptr_t)mmap->addr, (uintptr_t)(mmap->addr + mmap->len));
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#endif
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for (size_t page_base = mmap->addr; page_base < (mmap->addr + mmap->len); page_base += PAGE_SIZE) {
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auto addr = PhysicalAddress(page_base);
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if (page_base < 7 * MB) {
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// nothing
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} else if (page_base >= 7 * MB && page_base < 8 * MB) {
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if (region.is_null() || !region_is_super || region->upper().offset(PAGE_SIZE) != addr) {
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m_super_physical_regions.append(PhysicalRegion::create(addr, addr));
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region = m_super_physical_regions.last();
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region_is_super = true;
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} else {
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region->expand(region->lower(), addr);
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}
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} else {
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if (region.is_null() || region_is_super || region->upper().offset(PAGE_SIZE) != addr) {
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m_user_physical_regions.append(PhysicalRegion::create(addr, addr));
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region = m_user_physical_regions.last();
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region_is_super = false;
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} else {
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region->expand(region->lower(), addr);
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}
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}
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}
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}
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for (auto& region : m_super_physical_regions)
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m_super_physical_pages += region.finalize_capacity();
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for (auto& region : m_user_physical_regions)
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m_user_physical_pages += region.finalize_capacity();
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}
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PageTableEntry& MemoryManager::ensure_pte(PageDirectory& page_directory, VirtualAddress vaddr)
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{
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ASSERT_INTERRUPTS_DISABLED();
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u32 page_directory_table_index = (vaddr.get() >> 30) & 0x3;
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u32 page_directory_index = (vaddr.get() >> 21) & 0x1ff;
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u32 page_table_index = (vaddr.get() >> 12) & 0x1ff;
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auto* pd = quickmap_pd(page_directory, page_directory_table_index);
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PageDirectoryEntry& pde = pd[page_directory_index];
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if (!pde.is_present()) {
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#ifdef MM_DEBUG
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dbgprintf("MM: PDE %u not present (requested for V%p), allocating\n", page_directory_index, vaddr.get());
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#endif
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auto page_table = allocate_user_physical_page(ShouldZeroFill::Yes);
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#ifdef MM_DEBUG
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dbgprintf("MM: PD K%p (%s) at P%p allocated page table #%u (for V%p) at P%p\n",
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&page_directory,
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&page_directory == m_kernel_page_directory ? "Kernel" : "User",
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page_directory.cr3(),
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page_directory_index,
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vaddr.get(),
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page_table->paddr().get());
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#endif
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pde.set_page_table_base(page_table->paddr().get());
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pde.set_user_allowed(true);
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pde.set_present(true);
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pde.set_writable(true);
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pde.set_global(&page_directory == m_kernel_page_directory.ptr());
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page_directory.m_physical_pages.set(page_directory_index, move(page_table));
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}
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return quickmap_pt(PhysicalAddress((uintptr_t)pde.page_table_base()))[page_table_index];
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}
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void MemoryManager::initialize()
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{
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s_the = new MemoryManager;
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}
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Region* MemoryManager::kernel_region_from_vaddr(VirtualAddress vaddr)
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{
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if (vaddr.get() < 0xc0000000)
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return nullptr;
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for (auto& region : MM.m_kernel_regions) {
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if (region.contains(vaddr))
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return ®ion;
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}
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return nullptr;
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}
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Region* MemoryManager::user_region_from_vaddr(Process& process, VirtualAddress vaddr)
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{
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// FIXME: Use a binary search tree (maybe red/black?) or some other more appropriate data structure!
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for (auto& region : process.m_regions) {
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if (region.contains(vaddr))
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return ®ion;
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}
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dbg() << process << " Couldn't find user region for " << vaddr;
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return nullptr;
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}
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Region* MemoryManager::region_from_vaddr(Process& process, VirtualAddress vaddr)
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{
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if (auto* region = kernel_region_from_vaddr(vaddr))
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return region;
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return user_region_from_vaddr(process, vaddr);
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}
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const Region* MemoryManager::region_from_vaddr(const Process& process, VirtualAddress vaddr)
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{
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if (auto* region = kernel_region_from_vaddr(vaddr))
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return region;
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return user_region_from_vaddr(const_cast<Process&>(process), vaddr);
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}
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Region* MemoryManager::region_from_vaddr(VirtualAddress vaddr)
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{
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if (auto* region = kernel_region_from_vaddr(vaddr))
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return region;
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auto page_directory = PageDirectory::find_by_cr3(read_cr3());
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if (!page_directory)
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return nullptr;
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ASSERT(page_directory->process());
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return user_region_from_vaddr(*page_directory->process(), vaddr);
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}
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PageFaultResponse MemoryManager::handle_page_fault(const PageFault& fault)
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{
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ASSERT_INTERRUPTS_DISABLED();
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ASSERT(current);
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#ifdef PAGE_FAULT_DEBUG
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dbgprintf("MM: handle_page_fault(%w) at V%p\n", fault.code(), fault.vaddr().get());
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#endif
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auto* region = region_from_vaddr(fault.vaddr());
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if (!region) {
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kprintf("NP(error) fault at invalid address V%p\n", fault.vaddr().get());
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return PageFaultResponse::ShouldCrash;
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}
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return region->handle_fault(fault);
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}
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OwnPtr<Region> MemoryManager::allocate_kernel_region(size_t size, const StringView& name, u8 access, bool user_accessible, bool should_commit, bool cacheable)
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{
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InterruptDisabler disabler;
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ASSERT(!(size % PAGE_SIZE));
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auto range = kernel_page_directory().range_allocator().allocate_anywhere(size);
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ASSERT(range.is_valid());
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OwnPtr<Region> region;
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if (user_accessible)
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region = Region::create_user_accessible(range, name, access, cacheable);
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else
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region = Region::create_kernel_only(range, name, access, cacheable);
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region->map(kernel_page_directory());
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if (should_commit)
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region->commit();
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return region;
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}
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OwnPtr<Region> MemoryManager::allocate_kernel_region(PhysicalAddress paddr, size_t size, const StringView& name, u8 access, bool user_accessible, bool cacheable)
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{
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InterruptDisabler disabler;
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ASSERT(!(size % PAGE_SIZE));
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auto range = kernel_page_directory().range_allocator().allocate_anywhere(size);
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ASSERT(range.is_valid());
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auto vmobject = AnonymousVMObject::create_for_physical_range(paddr, size);
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if (!vmobject)
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return nullptr;
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OwnPtr<Region> region;
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if (user_accessible)
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region = Region::create_user_accessible(range, vmobject.release_nonnull(), 0, name, access, cacheable);
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else
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region = Region::create_kernel_only(range, vmobject.release_nonnull(), 0, name, access, cacheable);
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region->map(kernel_page_directory());
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return region;
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}
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OwnPtr<Region> MemoryManager::allocate_user_accessible_kernel_region(size_t size, const StringView& name, u8 access, bool cacheable)
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{
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return allocate_kernel_region(size, name, access, true, true, cacheable);
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}
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OwnPtr<Region> MemoryManager::allocate_kernel_region_with_vmobject(VMObject& vmobject, size_t size, const StringView& name, u8 access, bool user_accessible, bool cacheable)
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{
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InterruptDisabler disabler;
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ASSERT(!(size % PAGE_SIZE));
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auto range = kernel_page_directory().range_allocator().allocate_anywhere(size);
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ASSERT(range.is_valid());
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OwnPtr<Region> region;
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if (user_accessible)
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region = Region::create_user_accessible(range, vmobject, 0, name, access, cacheable);
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else
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region = Region::create_kernel_only(range, vmobject, 0, name, access, cacheable);
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region->map(kernel_page_directory());
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return region;
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}
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void MemoryManager::deallocate_user_physical_page(PhysicalPage&& page)
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{
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for (auto& region : m_user_physical_regions) {
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if (!region.contains(page)) {
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kprintf(
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"MM: deallocate_user_physical_page: %p not in %p -> %p\n",
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page.paddr().get(), region.lower().get(), region.upper().get());
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continue;
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}
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region.return_page(move(page));
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--m_user_physical_pages_used;
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return;
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}
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kprintf("MM: deallocate_user_physical_page couldn't figure out region for user page @ %p\n", page.paddr().get());
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ASSERT_NOT_REACHED();
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}
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RefPtr<PhysicalPage> MemoryManager::find_free_user_physical_page()
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{
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RefPtr<PhysicalPage> page;
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for (auto& region : m_user_physical_regions) {
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page = region.take_free_page(false);
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if (!page.is_null())
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break;
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}
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return page;
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}
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RefPtr<PhysicalPage> MemoryManager::allocate_user_physical_page(ShouldZeroFill should_zero_fill)
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{
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InterruptDisabler disabler;
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RefPtr<PhysicalPage> page = find_free_user_physical_page();
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if (!page) {
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if (m_user_physical_regions.is_empty()) {
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kprintf("MM: no user physical regions available (?)\n");
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}
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for_each_vmobject([&](auto& vmobject) {
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if (vmobject.is_purgeable()) {
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auto& purgeable_vmobject = static_cast<PurgeableVMObject&>(vmobject);
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int purged_page_count = purgeable_vmobject.purge_with_interrupts_disabled({});
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if (purged_page_count) {
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kprintf("MM: Purge saved the day! Purged %d pages from PurgeableVMObject{%p}\n", purged_page_count, &purgeable_vmobject);
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page = find_free_user_physical_page();
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ASSERT(page);
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return IterationDecision::Break;
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}
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}
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return IterationDecision::Continue;
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});
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if (!page) {
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kprintf("MM: no user physical pages available\n");
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ASSERT_NOT_REACHED();
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return {};
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}
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}
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#ifdef MM_DEBUG
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dbgprintf("MM: allocate_user_physical_page vending P%p\n", page->paddr().get());
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#endif
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if (should_zero_fill == ShouldZeroFill::Yes) {
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auto* ptr = quickmap_page(*page);
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memset(ptr, 0, PAGE_SIZE);
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unquickmap_page();
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}
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++m_user_physical_pages_used;
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return page;
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}
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void MemoryManager::deallocate_supervisor_physical_page(PhysicalPage&& page)
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{
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for (auto& region : m_super_physical_regions) {
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if (!region.contains(page)) {
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kprintf(
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"MM: deallocate_supervisor_physical_page: %p not in %p -> %p\n",
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page.paddr().get(), region.lower().get(), region.upper().get());
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continue;
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}
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region.return_page(move(page));
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--m_super_physical_pages_used;
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return;
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}
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kprintf("MM: deallocate_supervisor_physical_page couldn't figure out region for super page @ %p\n", page.paddr().get());
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ASSERT_NOT_REACHED();
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}
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RefPtr<PhysicalPage> MemoryManager::allocate_supervisor_physical_page()
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{
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InterruptDisabler disabler;
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RefPtr<PhysicalPage> page;
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for (auto& region : m_super_physical_regions) {
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page = region.take_free_page(true);
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if (page.is_null())
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continue;
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}
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if (!page) {
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if (m_super_physical_regions.is_empty()) {
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kprintf("MM: no super physical regions available (?)\n");
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}
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kprintf("MM: no super physical pages available\n");
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ASSERT_NOT_REACHED();
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return {};
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}
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#ifdef MM_DEBUG
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dbgprintf("MM: allocate_supervisor_physical_page vending P%p\n", page->paddr().get());
|
|
#endif
|
|
|
|
fast_u32_fill((u32*)page->paddr().offset(0xc0000000).as_ptr(), 0, PAGE_SIZE / sizeof(u32));
|
|
++m_super_physical_pages_used;
|
|
return page;
|
|
}
|
|
|
|
void MemoryManager::enter_process_paging_scope(Process& process)
|
|
{
|
|
ASSERT(current);
|
|
InterruptDisabler disabler;
|
|
|
|
current->tss().cr3 = process.page_directory().cr3();
|
|
write_cr3(process.page_directory().cr3());
|
|
}
|
|
|
|
void MemoryManager::flush_entire_tlb()
|
|
{
|
|
write_cr3(read_cr3());
|
|
}
|
|
|
|
void MemoryManager::flush_tlb(VirtualAddress vaddr)
|
|
{
|
|
#ifdef MM_DEBUG
|
|
dbgprintf("MM: Flush page V%p\n", vaddr.get());
|
|
#endif
|
|
asm volatile("invlpg %0"
|
|
:
|
|
: "m"(*(char*)vaddr.get())
|
|
: "memory");
|
|
}
|
|
|
|
extern "C" PageTableEntry boot_pd3_pde1023_pt[1024];
|
|
|
|
PageDirectoryEntry* MemoryManager::quickmap_pd(PageDirectory& directory, size_t pdpt_index)
|
|
{
|
|
auto& pte = boot_pd3_pde1023_pt[4];
|
|
auto pd_paddr = directory.m_directory_pages[pdpt_index]->paddr();
|
|
if (pte.physical_page_base() != pd_paddr.as_ptr()) {
|
|
#ifdef MM_DEBUG
|
|
dbgprintf("quickmap_pd: Mapping P%p at 0xffe04000 in pte @ %p\n", directory.m_directory_pages[pdpt_index]->paddr().as_ptr(), &pte);
|
|
#endif
|
|
pte.set_physical_page_base(pd_paddr.get());
|
|
pte.set_present(true);
|
|
pte.set_writable(true);
|
|
pte.set_user_allowed(false);
|
|
flush_tlb(VirtualAddress(0xffe04000));
|
|
}
|
|
return (PageDirectoryEntry*)0xffe04000;
|
|
}
|
|
|
|
PageTableEntry* MemoryManager::quickmap_pt(PhysicalAddress pt_paddr)
|
|
{
|
|
auto& pte = boot_pd3_pde1023_pt[8];
|
|
if (pte.physical_page_base() != pt_paddr.as_ptr()) {
|
|
#ifdef MM_DEBUG
|
|
dbgprintf("quickmap_pt: Mapping P%p at 0xffe08000 in pte @ %p\n", pt_paddr.as_ptr(), &pte);
|
|
#endif
|
|
pte.set_physical_page_base(pt_paddr.get());
|
|
pte.set_present(true);
|
|
pte.set_writable(true);
|
|
pte.set_user_allowed(false);
|
|
flush_tlb(VirtualAddress(0xffe08000));
|
|
}
|
|
return (PageTableEntry*)0xffe08000;
|
|
}
|
|
|
|
u8* MemoryManager::quickmap_page(PhysicalPage& physical_page)
|
|
{
|
|
ASSERT_INTERRUPTS_DISABLED();
|
|
ASSERT(!m_quickmap_in_use);
|
|
m_quickmap_in_use = true;
|
|
|
|
auto& pte = boot_pd3_pde1023_pt[0];
|
|
if (pte.physical_page_base() != physical_page.paddr().as_ptr()) {
|
|
#ifdef MM_DEBUG
|
|
dbgprintf("quickmap_page: Mapping P%p at 0xffe00000 in pte @ %p\n", physical_page.paddr().as_ptr(), &pte);
|
|
#endif
|
|
pte.set_physical_page_base(physical_page.paddr().get());
|
|
pte.set_present(true);
|
|
pte.set_writable(true);
|
|
pte.set_user_allowed(false);
|
|
flush_tlb(VirtualAddress(0xffe00000));
|
|
}
|
|
return (u8*)0xffe00000;
|
|
}
|
|
|
|
void MemoryManager::unquickmap_page()
|
|
{
|
|
ASSERT_INTERRUPTS_DISABLED();
|
|
ASSERT(m_quickmap_in_use);
|
|
auto& pte = boot_pd3_pde1023_pt[0];
|
|
pte.clear();
|
|
flush_tlb(VirtualAddress(0xffe00000));
|
|
m_quickmap_in_use = false;
|
|
}
|
|
|
|
template<MemoryManager::AccessSpace space, MemoryManager::AccessType access_type>
|
|
bool MemoryManager::validate_range(const Process& process, VirtualAddress base_vaddr, size_t size) const
|
|
{
|
|
ASSERT(size);
|
|
if (base_vaddr > base_vaddr.offset(size)) {
|
|
dbg() << "Shenanigans! Asked to validate wrappy " << base_vaddr << " size=" << size;
|
|
return false;
|
|
}
|
|
|
|
VirtualAddress vaddr = base_vaddr.page_base();
|
|
VirtualAddress end_vaddr = base_vaddr.offset(size - 1).page_base();
|
|
if (end_vaddr < vaddr) {
|
|
dbg() << "Shenanigans! Asked to validate " << base_vaddr << " size=" << size;
|
|
return false;
|
|
}
|
|
const Region* region = nullptr;
|
|
while (vaddr <= end_vaddr) {
|
|
if (!region || !region->contains(vaddr)) {
|
|
if (space == AccessSpace::Kernel)
|
|
region = kernel_region_from_vaddr(vaddr);
|
|
if (!region || !region->contains(vaddr))
|
|
region = user_region_from_vaddr(const_cast<Process&>(process), vaddr);
|
|
if (!region
|
|
|| (space == AccessSpace::User && !region->is_user_accessible())
|
|
|| (access_type == AccessType::Read && !region->is_readable())
|
|
|| (access_type == AccessType::Write && !region->is_writable())) {
|
|
return false;
|
|
}
|
|
}
|
|
vaddr = vaddr.offset(PAGE_SIZE);
|
|
}
|
|
return true;
|
|
}
|
|
|
|
bool MemoryManager::validate_user_stack(const Process& process, VirtualAddress vaddr) const
|
|
{
|
|
if (!is_user_address(vaddr))
|
|
return false;
|
|
auto* region = user_region_from_vaddr(const_cast<Process&>(process), vaddr);
|
|
return region && region->is_user_accessible() && region->is_stack();
|
|
}
|
|
|
|
bool MemoryManager::validate_kernel_read(const Process& process, VirtualAddress vaddr, size_t size) const
|
|
{
|
|
return validate_range<AccessSpace::Kernel, AccessType::Read>(process, vaddr, size);
|
|
}
|
|
|
|
bool MemoryManager::validate_user_read(const Process& process, VirtualAddress vaddr, size_t size) const
|
|
{
|
|
if (!is_user_address(vaddr))
|
|
return false;
|
|
return validate_range<AccessSpace::User, AccessType::Read>(process, vaddr, size);
|
|
}
|
|
|
|
bool MemoryManager::validate_user_write(const Process& process, VirtualAddress vaddr, size_t size) const
|
|
{
|
|
if (!is_user_address(vaddr))
|
|
return false;
|
|
return validate_range<AccessSpace::User, AccessType::Write>(process, vaddr, size);
|
|
}
|
|
|
|
void MemoryManager::register_vmobject(VMObject& vmobject)
|
|
{
|
|
InterruptDisabler disabler;
|
|
m_vmobjects.append(&vmobject);
|
|
}
|
|
|
|
void MemoryManager::unregister_vmobject(VMObject& vmobject)
|
|
{
|
|
InterruptDisabler disabler;
|
|
m_vmobjects.remove(&vmobject);
|
|
}
|
|
|
|
void MemoryManager::register_region(Region& region)
|
|
{
|
|
InterruptDisabler disabler;
|
|
if (region.vaddr().get() >= 0xc0000000)
|
|
m_kernel_regions.append(®ion);
|
|
else
|
|
m_user_regions.append(®ion);
|
|
}
|
|
|
|
void MemoryManager::unregister_region(Region& region)
|
|
{
|
|
InterruptDisabler disabler;
|
|
if (region.vaddr().get() >= 0xc0000000)
|
|
m_kernel_regions.remove(®ion);
|
|
else
|
|
m_user_regions.remove(®ion);
|
|
}
|
|
|
|
void MemoryManager::dump_kernel_regions()
|
|
{
|
|
kprintf("Kernel regions:\n");
|
|
kprintf("BEGIN END SIZE ACCESS NAME\n");
|
|
for (auto& region : MM.m_kernel_regions) {
|
|
kprintf("%08x -- %08x %08x %c%c%c%c%c%c %s\n",
|
|
region.vaddr().get(),
|
|
region.vaddr().offset(region.size() - 1).get(),
|
|
region.size(),
|
|
region.is_readable() ? 'R' : ' ',
|
|
region.is_writable() ? 'W' : ' ',
|
|
region.is_executable() ? 'X' : ' ',
|
|
region.is_shared() ? 'S' : ' ',
|
|
region.is_stack() ? 'T' : ' ',
|
|
region.vmobject().is_purgeable() ? 'P' : ' ',
|
|
region.name().characters());
|
|
}
|
|
}
|
|
|
|
ProcessPagingScope::ProcessPagingScope(Process& process)
|
|
{
|
|
ASSERT(current);
|
|
m_previous_cr3 = read_cr3();
|
|
MM.enter_process_paging_scope(process);
|
|
}
|
|
|
|
ProcessPagingScope::~ProcessPagingScope()
|
|
{
|
|
InterruptDisabler disabler;
|
|
current->tss().cr3 = m_previous_cr3;
|
|
write_cr3(m_previous_cr3);
|
|
}
|
|
|
|
}
|