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			392 lines
		
	
	
	
		
			14 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
			
		
		
	
	
			392 lines
		
	
	
	
		
			14 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
| /*
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|  * Copyright (c) 2018-2021, Andreas Kling <kling@serenityos.org>
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|  *
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|  * SPDX-License-Identifier: BSD-2-Clause
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|  */
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| 
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| #include <Kernel/Arch/x86/SmapDisabler.h>
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| #include <Kernel/Debug.h>
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| #include <Kernel/Memory/AnonymousVMObject.h>
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| #include <Kernel/Memory/MemoryManager.h>
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| #include <Kernel/Memory/PhysicalPage.h>
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| #include <Kernel/Process.h>
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| 
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| namespace Kernel::Memory {
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| 
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| KResultOr<NonnullRefPtr<VMObject>> AnonymousVMObject::try_clone()
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| {
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|     // We need to acquire our lock so we copy a sane state
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|     SpinlockLocker lock(m_lock);
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| 
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|     if (is_purgeable() && is_volatile()) {
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|         // If this object is purgeable+volatile, create a new zero-filled purgeable+volatile
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|         // object, effectively "pre-purging" it in the child process.
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|         auto maybe_clone = try_create_purgeable_with_size(size(), AllocationStrategy::None);
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|         if (maybe_clone.is_error())
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|             return maybe_clone.error();
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| 
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|         auto clone = maybe_clone.release_value();
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|         clone->m_volatile = true;
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|         return clone;
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|     }
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| 
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|     // We're the parent. Since we're about to become COW we need to
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|     // commit the number of pages that we need to potentially allocate
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|     // so that the parent is still guaranteed to be able to have all
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|     // non-volatile memory available.
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|     size_t new_cow_pages_needed = page_count();
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| 
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|     dbgln_if(COMMIT_DEBUG, "Cloning {:p}, need {} committed cow pages", this, new_cow_pages_needed);
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| 
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|     auto committed_pages = MM.commit_user_physical_pages(new_cow_pages_needed);
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|     if (!committed_pages.has_value())
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|         return ENOMEM;
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| 
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|     // Create or replace the committed cow pages. When cloning a previously
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|     // cloned vmobject, we want to essentially "fork", leaving us and the
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|     // new clone with one set of shared committed cow pages, and the original
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|     // one would keep the one it still has. This ensures that the original
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|     // one and this one, as well as the clone have sufficient resources
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|     // to cow all pages as needed
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|     auto new_shared_committed_cow_pages = try_create<SharedCommittedCowPages>(committed_pages.release_value());
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| 
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|     if (!new_shared_committed_cow_pages)
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|         return ENOMEM;
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| 
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|     auto maybe_clone = adopt_ref_if_nonnull(new (nothrow) AnonymousVMObject(*this, new_shared_committed_cow_pages.release_nonnull()));
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|     if (!maybe_clone)
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|         return ENOMEM;
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|     auto clone = maybe_clone.release_nonnull();
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| 
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|     m_shared_committed_cow_pages = move(new_shared_committed_cow_pages);
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| 
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|     // Both original and clone become COW. So create a COW map for ourselves
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|     // or reset all pages to be copied again if we were previously cloned
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|     ensure_or_reset_cow_map();
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| 
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|     if (m_unused_committed_pages.has_value() && !m_unused_committed_pages->is_empty()) {
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|         // The parent vmobject didn't use up all committed pages. When
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|         // cloning (fork) we will overcommit. For this purpose we drop all
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|         // lazy-commit references and replace them with shared zero pages.
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|         for (size_t i = 0; i < page_count(); i++) {
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|             auto& page = clone->m_physical_pages[i];
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|             if (page && page->is_lazy_committed_page()) {
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|                 page = MM.shared_zero_page();
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|             }
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|         }
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|     }
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| 
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|     return clone;
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| }
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| 
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| KResultOr<NonnullRefPtr<AnonymousVMObject>> AnonymousVMObject::try_create_with_size(size_t size, AllocationStrategy strategy)
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| {
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|     Optional<CommittedPhysicalPageSet> committed_pages;
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|     if (strategy == AllocationStrategy::Reserve || strategy == AllocationStrategy::AllocateNow) {
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|         committed_pages = MM.commit_user_physical_pages(ceil_div(size, static_cast<size_t>(PAGE_SIZE)));
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|         if (!committed_pages.has_value())
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|             return ENOMEM;
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|     }
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| 
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|     return adopt_nonnull_ref_or_enomem(new (nothrow) AnonymousVMObject(size, strategy, move(committed_pages)));
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| }
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| 
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| KResultOr<NonnullRefPtr<AnonymousVMObject>> AnonymousVMObject::try_create_physically_contiguous_with_size(size_t size)
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| {
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|     auto contiguous_physical_pages = MM.allocate_contiguous_supervisor_physical_pages(size);
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|     if (contiguous_physical_pages.is_empty())
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|         return ENOMEM;
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| 
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|     return adopt_nonnull_ref_or_enomem(new (nothrow) AnonymousVMObject(contiguous_physical_pages.span()));
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| }
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| 
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| KResultOr<NonnullRefPtr<AnonymousVMObject>> AnonymousVMObject::try_create_purgeable_with_size(size_t size, AllocationStrategy strategy)
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| {
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|     Optional<CommittedPhysicalPageSet> committed_pages;
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|     if (strategy == AllocationStrategy::Reserve || strategy == AllocationStrategy::AllocateNow) {
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|         committed_pages = MM.commit_user_physical_pages(ceil_div(size, static_cast<size_t>(PAGE_SIZE)));
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|         if (!committed_pages.has_value())
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|             return ENOMEM;
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|     }
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| 
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|     auto vmobject = adopt_ref_if_nonnull(new (nothrow) AnonymousVMObject(size, strategy, move(committed_pages)));
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|     if (!vmobject)
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|         return ENOMEM;
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| 
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|     vmobject->m_purgeable = true;
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|     return vmobject.release_nonnull();
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| }
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| 
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| KResultOr<NonnullRefPtr<AnonymousVMObject>> AnonymousVMObject::try_create_with_physical_pages(Span<NonnullRefPtr<PhysicalPage>> physical_pages)
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| {
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|     return adopt_nonnull_ref_or_enomem(new (nothrow) AnonymousVMObject(physical_pages));
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| }
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| 
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| KResultOr<NonnullRefPtr<AnonymousVMObject>> AnonymousVMObject::try_create_for_physical_range(PhysicalAddress paddr, size_t size)
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| {
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|     if (paddr.offset(size) < paddr) {
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|         dbgln("Shenanigans! try_create_for_physical_range({}, {}) would wrap around", paddr, size);
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|         // Since we can't wrap around yet, let's pretend to OOM.
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|         return ENOMEM;
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|     }
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| 
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|     return adopt_nonnull_ref_or_enomem(new (nothrow) AnonymousVMObject(paddr, size));
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| }
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| 
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| AnonymousVMObject::AnonymousVMObject(size_t size, AllocationStrategy strategy, Optional<CommittedPhysicalPageSet> committed_pages)
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|     : VMObject(size)
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|     , m_unused_committed_pages(move(committed_pages))
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| {
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|     if (strategy == AllocationStrategy::AllocateNow) {
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|         // Allocate all pages right now. We know we can get all because we committed the amount needed
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|         for (size_t i = 0; i < page_count(); ++i)
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|             physical_pages()[i] = m_unused_committed_pages->take_one();
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|     } else {
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|         auto& initial_page = (strategy == AllocationStrategy::Reserve) ? MM.lazy_committed_page() : MM.shared_zero_page();
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|         for (size_t i = 0; i < page_count(); ++i)
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|             physical_pages()[i] = initial_page;
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|     }
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| }
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| 
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| AnonymousVMObject::AnonymousVMObject(PhysicalAddress paddr, size_t size)
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|     : VMObject(size)
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| {
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|     VERIFY(paddr.page_base() == paddr);
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|     for (size_t i = 0; i < page_count(); ++i)
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|         physical_pages()[i] = PhysicalPage::create(paddr.offset(i * PAGE_SIZE), MayReturnToFreeList::No);
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| }
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| 
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| AnonymousVMObject::AnonymousVMObject(Span<NonnullRefPtr<PhysicalPage>> physical_pages)
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|     : VMObject(physical_pages.size() * PAGE_SIZE)
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| {
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|     for (size_t i = 0; i < physical_pages.size(); ++i) {
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|         m_physical_pages[i] = physical_pages[i];
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|     }
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| }
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| 
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| AnonymousVMObject::AnonymousVMObject(AnonymousVMObject const& other, NonnullRefPtr<SharedCommittedCowPages> shared_committed_cow_pages)
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|     : VMObject(other)
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|     , m_shared_committed_cow_pages(move(shared_committed_cow_pages))
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|     , m_purgeable(other.m_purgeable)
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| {
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|     ensure_cow_map();
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| }
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| 
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| AnonymousVMObject::~AnonymousVMObject()
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| {
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| }
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| 
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| size_t AnonymousVMObject::purge()
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| {
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|     SpinlockLocker lock(m_lock);
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| 
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|     if (!is_purgeable() || !is_volatile())
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|         return 0;
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| 
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|     size_t total_pages_purged = 0;
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| 
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|     for (auto& page : m_physical_pages) {
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|         VERIFY(page);
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|         if (page->is_shared_zero_page())
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|             continue;
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|         page = MM.shared_zero_page();
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|         ++total_pages_purged;
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|     }
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| 
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|     m_was_purged = true;
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| 
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|     for_each_region([](Region& region) {
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|         region.remap();
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|     });
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| 
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|     return total_pages_purged;
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| }
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| 
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| KResult AnonymousVMObject::set_volatile(bool is_volatile, bool& was_purged)
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| {
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|     VERIFY(is_purgeable());
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| 
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|     SpinlockLocker locker(m_lock);
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| 
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|     was_purged = m_was_purged;
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|     if (m_volatile == is_volatile)
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|         return KSuccess;
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| 
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|     if (is_volatile) {
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|         // When a VMObject is made volatile, it gives up all of its committed memory.
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|         // Any physical pages already allocated remain in the VMObject for now, but the kernel is free to take them at any moment.
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|         for (auto& page : m_physical_pages) {
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|             if (page && page->is_lazy_committed_page())
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|                 page = MM.shared_zero_page();
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|         }
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| 
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|         m_unused_committed_pages = {};
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|         m_shared_committed_cow_pages = nullptr;
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| 
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|         if (!m_cow_map.is_null())
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|             m_cow_map = {};
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| 
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|         m_volatile = true;
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|         m_was_purged = false;
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| 
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|         for_each_region([&](auto& region) { region.remap(); });
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|         return KSuccess;
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|     }
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|     // When a VMObject is made non-volatile, we try to commit however many pages are not currently available.
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|     // If that fails, we return false to indicate that memory allocation failed.
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|     size_t committed_pages_needed = 0;
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|     for (auto& page : m_physical_pages) {
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|         VERIFY(page);
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|         if (page->is_shared_zero_page())
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|             ++committed_pages_needed;
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|     }
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| 
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|     if (!committed_pages_needed) {
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|         m_volatile = false;
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|         return KSuccess;
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|     }
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| 
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|     m_unused_committed_pages = MM.commit_user_physical_pages(committed_pages_needed);
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|     if (!m_unused_committed_pages.has_value())
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|         return ENOMEM;
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| 
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|     for (auto& page : m_physical_pages) {
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|         if (page->is_shared_zero_page())
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|             page = MM.lazy_committed_page();
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|     }
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| 
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|     m_volatile = false;
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|     m_was_purged = false;
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|     for_each_region([&](auto& region) { region.remap(); });
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|     return KSuccess;
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| }
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| 
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| NonnullRefPtr<PhysicalPage> AnonymousVMObject::allocate_committed_page(Badge<Region>)
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| {
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|     return m_unused_committed_pages->take_one();
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| }
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| 
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| Bitmap& AnonymousVMObject::ensure_cow_map()
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| {
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|     if (m_cow_map.is_null())
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|         m_cow_map = Bitmap { page_count(), true };
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|     return m_cow_map;
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| }
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| 
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| void AnonymousVMObject::ensure_or_reset_cow_map()
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| {
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|     if (m_cow_map.is_null())
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|         ensure_cow_map();
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|     else
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|         m_cow_map.fill(true);
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| }
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| 
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| bool AnonymousVMObject::should_cow(size_t page_index, bool is_shared) const
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| {
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|     auto& page = physical_pages()[page_index];
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|     if (page && (page->is_shared_zero_page() || page->is_lazy_committed_page()))
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|         return true;
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|     if (is_shared)
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|         return false;
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|     return !m_cow_map.is_null() && m_cow_map.get(page_index);
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| }
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| 
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| void AnonymousVMObject::set_should_cow(size_t page_index, bool cow)
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| {
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|     ensure_cow_map().set(page_index, cow);
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| }
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| 
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| size_t AnonymousVMObject::cow_pages() const
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| {
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|     if (m_cow_map.is_null())
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|         return 0;
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|     return m_cow_map.count_slow(true);
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| }
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| 
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| PageFaultResponse AnonymousVMObject::handle_cow_fault(size_t page_index, VirtualAddress vaddr)
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| {
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|     VERIFY_INTERRUPTS_DISABLED();
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|     SpinlockLocker lock(m_lock);
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| 
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|     if (is_volatile()) {
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|         // A COW fault in a volatile region? Userspace is writing to volatile memory, this is a bug. Crash.
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|         dbgln("COW fault in volatile region, will crash.");
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|         return PageFaultResponse::ShouldCrash;
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|     }
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| 
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|     auto& page_slot = physical_pages()[page_index];
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| 
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|     // If we were sharing committed COW pages with another process, and the other process
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|     // has exhausted the supply, we can stop counting the shared pages.
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|     if (m_shared_committed_cow_pages && m_shared_committed_cow_pages->is_empty())
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|         m_shared_committed_cow_pages = nullptr;
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| 
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|     if (page_slot->ref_count() == 1) {
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|         dbgln_if(PAGE_FAULT_DEBUG, "    >> It's a COW page but nobody is sharing it anymore. Remap r/w");
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|         set_should_cow(page_index, false);
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| 
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|         if (m_shared_committed_cow_pages) {
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|             m_shared_committed_cow_pages->uncommit_one();
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|             if (m_shared_committed_cow_pages->is_empty())
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|                 m_shared_committed_cow_pages = nullptr;
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|         }
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|         return PageFaultResponse::Continue;
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|     }
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| 
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|     RefPtr<PhysicalPage> page;
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|     if (m_shared_committed_cow_pages) {
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|         dbgln_if(PAGE_FAULT_DEBUG, "    >> It's a committed COW page and it's time to COW!");
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|         page = m_shared_committed_cow_pages->take_one();
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|     } else {
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|         dbgln_if(PAGE_FAULT_DEBUG, "    >> It's a COW page and it's time to COW!");
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|         page = MM.allocate_user_physical_page(MemoryManager::ShouldZeroFill::No);
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|         if (page.is_null()) {
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|             dmesgln("MM: handle_cow_fault was unable to allocate a physical page");
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|             return PageFaultResponse::OutOfMemory;
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|         }
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|     }
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| 
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|     u8* dest_ptr = MM.quickmap_page(*page);
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|     dbgln_if(PAGE_FAULT_DEBUG, "      >> COW {} <- {}", page->paddr(), page_slot->paddr());
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|     {
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|         SmapDisabler disabler;
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|         void* fault_at;
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|         if (!safe_memcpy(dest_ptr, vaddr.as_ptr(), PAGE_SIZE, fault_at)) {
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|             if ((u8*)fault_at >= dest_ptr && (u8*)fault_at <= dest_ptr + PAGE_SIZE)
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|                 dbgln("      >> COW: error copying page {}/{} to {}/{}: failed to write to page at {}",
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|                     page_slot->paddr(), vaddr, page->paddr(), VirtualAddress(dest_ptr), VirtualAddress(fault_at));
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|             else if ((u8*)fault_at >= vaddr.as_ptr() && (u8*)fault_at <= vaddr.as_ptr() + PAGE_SIZE)
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|                 dbgln("      >> COW: error copying page {}/{} to {}/{}: failed to read from page at {}",
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|                     page_slot->paddr(), vaddr, page->paddr(), VirtualAddress(dest_ptr), VirtualAddress(fault_at));
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|             else
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|                 VERIFY_NOT_REACHED();
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|         }
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|     }
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|     page_slot = move(page);
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|     MM.unquickmap_page();
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|     set_should_cow(page_index, false);
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|     return PageFaultResponse::Continue;
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| }
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| 
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| AnonymousVMObject::SharedCommittedCowPages::SharedCommittedCowPages(CommittedPhysicalPageSet&& committed_pages)
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|     : m_committed_pages(move(committed_pages))
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| {
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| }
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| 
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| AnonymousVMObject::SharedCommittedCowPages::~SharedCommittedCowPages()
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| {
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| }
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| 
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| NonnullRefPtr<PhysicalPage> AnonymousVMObject::SharedCommittedCowPages::take_one()
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| {
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|     SpinlockLocker locker(m_lock);
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|     return m_committed_pages.take_one();
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| }
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| 
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| void AnonymousVMObject::SharedCommittedCowPages::uncommit_one()
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| {
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|     SpinlockLocker locker(m_lock);
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|     m_committed_pages.uncommit_one();
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| }
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| 
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| }
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