mirror of
https://github.com/LadybirdBrowser/ladybird.git
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f7a1f28d7f
This commit adds minimal support for compiler-instrumentation based memory access sanitization. Currently we only support detection of kmalloc redzone accesses, and kmalloc use-after-free accesses. Support for inline checks (for improved performance), and for stack use-after-return and use-after-return detection is left for future PRs.
431 lines
17 KiB
C++
431 lines
17 KiB
C++
/*
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* Copyright (c) 2021, Brian Gianforcaro <bgianf@serenityos.org>
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* Copyright (c) 2023, Idan Horowitz <idan.horowitz@serenityos.org>
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*
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* SPDX-License-Identifier: BSD-2-Clause
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*/
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#include <AK/Platform.h>
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#include <Kernel/Arch/Processor.h>
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#include <Kernel/Boot/BootInfo.h>
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#include <Kernel/KSyms.h>
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#include <Kernel/Library/StdLib.h>
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#include <Kernel/Security/AddressSanitizer.h>
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static constexpr size_t kasan_shadow_scale_offset = 3; // We map each 8 real bytes to 1 shadow byte
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static constexpr size_t kasan_shadow_scale = 1 << kasan_shadow_scale_offset;
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static constexpr size_t kasan_shadow_mask = kasan_shadow_scale - 1;
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// Defined in clang
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static constexpr size_t kasan_alloca_redzone_size = 32;
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namespace Kernel::AddressSanitizer {
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enum class AccessType {
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Load,
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Store
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};
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static constexpr StringView to_string(AccessType shadow_type)
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{
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switch (shadow_type) {
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case AccessType::Load:
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return "Load"sv;
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case AccessType::Store:
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return "Store"sv;
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default:
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return "Unknown"sv;
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}
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}
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static constexpr StringView to_string(ShadowType shadow_type)
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{
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switch (shadow_type) {
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case ShadowType::Unpoisoned8Bytes:
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return "8 Bytes Unpoisoned"sv;
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case ShadowType::Unpoisoned1Byte:
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return "1 Byte Unpoisoned | 7 Bytes Poisoned"sv;
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case ShadowType::Unpoisoned2Bytes:
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return "2 Bytes Unpoisoned | 6 Bytes Poisoned"sv;
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case ShadowType::Unpoisoned3Bytes:
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return "3 Bytes Unpoisoned | 5 Bytes Poisoned"sv;
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case ShadowType::Unpoisoned4Bytes:
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return "4 Bytes Unpoisoned | 4 Bytes Poisoned"sv;
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case ShadowType::Unpoisoned5Bytes:
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return "5 Bytes Unpoisoned | 3 Bytes Poisoned"sv;
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case ShadowType::Unpoisoned6Bytes:
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return "6 Bytes Unpoisoned | 2 Bytes Poisoned"sv;
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case ShadowType::Unpoisoned7Bytes:
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return "7 Bytes Unpoisoned | 1 Byte Poisoned"sv;
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case ShadowType::StackLeft:
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return "Stack Left Redzone"sv;
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case ShadowType::StackMiddle:
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return "Stack Middle Redzone"sv;
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case ShadowType::StackRight:
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return "Stack Right Redzone"sv;
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case ShadowType::UseAfterReturn:
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return "Use After Return"sv;
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case ShadowType::UseAfterScope:
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return "Use After Scope"sv;
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case ShadowType::Generic:
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return "Generic Redzone"sv;
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case ShadowType::Malloc:
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return "Malloc Redzone"sv;
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case ShadowType::Free:
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return "Freed Region"sv;
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default:
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return "Unknown"sv;
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}
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}
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Atomic<bool> g_kasan_is_deadly { true };
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static void print_violation(FlatPtr address, size_t size, AccessType access_type, ShadowType shadow_type, void* return_address)
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{
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critical_dmesgln("KASAN: Invalid {}-byte {} access to {}, which is marked as '{}' [at {:p}]", size, to_string(access_type), VirtualAddress(address), to_string(shadow_type), return_address);
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dump_backtrace(g_kasan_is_deadly ? PrintToScreen::Yes : PrintToScreen::No);
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if (g_kasan_is_deadly) {
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critical_dmesgln("KASAN is configured to be deadly, halting the system.");
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Processor::halt();
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}
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}
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static FlatPtr kasan_shadow_base;
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static FlatPtr kasan_shadow_offset;
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static bool kasan_initialized = false;
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void init(FlatPtr shadow_base)
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{
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kasan_shadow_base = shadow_base;
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kasan_shadow_offset = shadow_base - (kernel_mapping_base >> kasan_shadow_scale_offset);
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kasan_initialized = true;
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}
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static inline ShadowType* va_to_shadow(FlatPtr address)
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{
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return (ShadowType*)((address >> kasan_shadow_scale_offset) + kasan_shadow_offset);
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}
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void fill_shadow(FlatPtr address, size_t size, ShadowType type)
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{
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if (!kasan_initialized) [[unlikely]]
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return;
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VERIFY((address % kasan_shadow_scale) == 0);
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VERIFY((size % kasan_shadow_scale) == 0);
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auto* shadow = va_to_shadow(address);
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auto shadow_size = size >> kasan_shadow_scale_offset;
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memset(shadow, to_underlying(type), shadow_size);
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}
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void mark_region(FlatPtr address, size_t valid_size, size_t total_size, ShadowType type)
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{
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if (!kasan_initialized) [[unlikely]]
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return;
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VERIFY((address % kasan_shadow_scale) == 0);
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VERIFY((total_size % kasan_shadow_scale) == 0);
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auto* shadow = va_to_shadow(address);
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auto valid_shadow_size = valid_size >> kasan_shadow_scale_offset;
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memset(shadow, to_underlying(ShadowType::Unpoisoned8Bytes), valid_shadow_size);
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auto unaligned_size = valid_size & kasan_shadow_mask;
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if (unaligned_size)
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*(shadow + valid_shadow_size) = static_cast<ShadowType>(unaligned_size);
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auto poisoned_shadow_size = (total_size - round_up_to_power_of_two(valid_size, kasan_shadow_scale)) >> kasan_shadow_scale_offset;
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memset(shadow + valid_shadow_size + (unaligned_size != 0), to_underlying(type), poisoned_shadow_size);
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}
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static bool shadow_va_check_1b(FlatPtr address, ShadowType& shadow_type)
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{
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auto const shadow = *va_to_shadow(address);
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i8 const minimal_valid_shadow = (address & kasan_shadow_mask) + 1;
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if (shadow == ShadowType::Unpoisoned8Bytes || (minimal_valid_shadow <= static_cast<i8>(shadow))) [[likely]]
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return true;
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shadow_type = shadow;
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return false;
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}
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static bool shadow_va_check_2b(FlatPtr address, ShadowType& shadow_type)
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{
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// Check for unaligned access
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if ((address >> kasan_shadow_scale_offset) != (address + 1) >> kasan_shadow_scale_offset) [[unlikely]]
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return shadow_va_check_1b(address, shadow_type) && shadow_va_check_1b(address + 1, shadow_type);
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auto const shadow = *va_to_shadow(address);
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i8 const minimal_valid_shadow = ((address + 1) & kasan_shadow_mask) + 1;
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if (shadow == ShadowType::Unpoisoned8Bytes || (minimal_valid_shadow <= static_cast<i8>(shadow))) [[likely]]
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return true;
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shadow_type = shadow;
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return false;
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}
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static bool shadow_va_check_4b(FlatPtr address, ShadowType& shadow_type)
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{
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// Check for unaligned access
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if ((address >> kasan_shadow_scale_offset) != (address + 3) >> kasan_shadow_scale_offset) [[unlikely]]
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return shadow_va_check_2b(address, shadow_type) && shadow_va_check_2b(address + 2, shadow_type);
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auto const shadow = *va_to_shadow(address);
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i8 const minimal_valid_shadow = ((address + 3) & kasan_shadow_mask) + 1;
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if (shadow == ShadowType::Unpoisoned8Bytes || (minimal_valid_shadow <= static_cast<i8>(shadow))) [[likely]]
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return true;
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shadow_type = shadow;
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return false;
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}
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static bool shadow_va_check_8b(FlatPtr address, ShadowType& shadow_type)
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{
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// Check for unaligned access
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if ((address >> kasan_shadow_scale_offset) != (address + 7) >> kasan_shadow_scale_offset) [[unlikely]]
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return shadow_va_check_4b(address, shadow_type) && shadow_va_check_4b(address + 4, shadow_type);
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auto const shadow = *va_to_shadow(address);
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i8 const minimal_valid_shadow = ((address + 7) & kasan_shadow_mask) + 1;
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if (shadow == ShadowType::Unpoisoned8Bytes || (minimal_valid_shadow <= static_cast<i8>(shadow))) [[likely]]
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return true;
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shadow_type = shadow;
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return false;
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}
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static bool shadow_va_check_Nb(FlatPtr address, size_t n, ShadowType& shadow_type)
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{
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while ((address % 8) && (n > 0)) {
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if (!shadow_va_check_1b(address, shadow_type)) [[unlikely]]
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return false;
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address++;
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n--;
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}
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while (n >= 8) {
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if (!shadow_va_check_8b(address, shadow_type))
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return false;
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address += 8;
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n -= 8;
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}
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while (n > 0) {
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if (!shadow_va_check_1b(address, shadow_type)) [[unlikely]]
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return false;
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address++;
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n--;
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}
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return true;
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}
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static void shadow_va_check(FlatPtr address, size_t size, AccessType access_type, void* return_address)
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{
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if (size == 0) [[unlikely]]
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return;
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if (!kasan_initialized) [[unlikely]]
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return;
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if (address < kernel_mapping_base || address >= kasan_shadow_base) [[unlikely]]
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return;
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bool valid = false;
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ShadowType shadow_type = ShadowType::Unpoisoned8Bytes;
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switch (size) {
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case 1:
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valid = shadow_va_check_1b(address, shadow_type);
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break;
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case 2:
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valid = shadow_va_check_2b(address, shadow_type);
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break;
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case 4:
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valid = shadow_va_check_4b(address, shadow_type);
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break;
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case 8:
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valid = shadow_va_check_8b(address, shadow_type);
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break;
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default:
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valid = shadow_va_check_Nb(address, size, shadow_type);
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break;
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}
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if (valid) [[likely]]
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return;
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print_violation(address, size, access_type, shadow_type, return_address);
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}
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}
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using namespace Kernel;
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using namespace Kernel::AddressSanitizer;
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extern "C" {
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// Define a macro to easily declare the KASAN load and store callbacks for
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// the various sizes of data type.
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//
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#define ADDRESS_SANITIZER_LOAD_STORE(size) \
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void __asan_load##size(FlatPtr); \
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void __asan_load##size(FlatPtr address) \
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{ \
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shadow_va_check(address, size, AccessType::Load, __builtin_return_address(0)); \
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} \
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void __asan_load##size##_noabort(FlatPtr); \
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void __asan_load##size##_noabort(FlatPtr address) \
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{ \
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shadow_va_check(address, size, AccessType::Load, __builtin_return_address(0)); \
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} \
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void __asan_store##size(FlatPtr); \
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void __asan_store##size(FlatPtr address) \
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{ \
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shadow_va_check(address, size, AccessType::Store, __builtin_return_address(0)); \
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} \
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void __asan_store##size##_noabort(FlatPtr); \
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void __asan_store##size##_noabort(FlatPtr address) \
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{ \
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shadow_va_check(address, size, AccessType::Store, __builtin_return_address(0)); \
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} \
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void __asan_report_load##size(FlatPtr); \
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void __asan_report_load##size(FlatPtr address) \
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{ \
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print_violation(address, size, AccessType::Load, ShadowType::Generic, __builtin_return_address(0)); \
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} \
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void __asan_report_load##size##_noabort(FlatPtr); \
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void __asan_report_load##size##_noabort(FlatPtr address) \
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{ \
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print_violation(address, size, AccessType::Load, ShadowType::Generic, __builtin_return_address(0)); \
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} \
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void __asan_report_store##size(FlatPtr); \
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void __asan_report_store##size(FlatPtr address) \
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{ \
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print_violation(address, size, AccessType::Store, ShadowType::Generic, __builtin_return_address(0)); \
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} \
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void __asan_report_store##size##_noabort(FlatPtr); \
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void __asan_report_store##size##_noabort(FlatPtr address) \
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{ \
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print_violation(address, size, AccessType::Store, ShadowType::Generic, __builtin_return_address(0)); \
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}
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ADDRESS_SANITIZER_LOAD_STORE(1);
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ADDRESS_SANITIZER_LOAD_STORE(2);
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ADDRESS_SANITIZER_LOAD_STORE(4);
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ADDRESS_SANITIZER_LOAD_STORE(8);
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ADDRESS_SANITIZER_LOAD_STORE(16);
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#undef ADDRESS_SANITIZER_LOAD_STORE
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void __asan_loadN(FlatPtr, size_t);
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void __asan_loadN(FlatPtr address, size_t size)
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{
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shadow_va_check(address, size, AccessType::Load, __builtin_return_address(0));
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}
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void __asan_loadN_noabort(FlatPtr, size_t);
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void __asan_loadN_noabort(FlatPtr address, size_t size)
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{
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shadow_va_check(address, size, AccessType::Load, __builtin_return_address(0));
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}
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void __asan_storeN(FlatPtr, size_t);
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void __asan_storeN(FlatPtr address, size_t size)
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{
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shadow_va_check(address, size, AccessType::Store, __builtin_return_address(0));
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}
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void __asan_storeN_noabort(FlatPtr, size_t);
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void __asan_storeN_noabort(FlatPtr address, size_t size)
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{
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shadow_va_check(address, size, AccessType::Store, __builtin_return_address(0));
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}
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void __asan_report_load_n(FlatPtr, size_t);
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void __asan_report_load_n(FlatPtr address, size_t size)
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{
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print_violation(address, size, AccessType::Load, ShadowType::Generic, __builtin_return_address(0));
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}
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void __asan_report_load_n_noabort(FlatPtr, size_t);
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void __asan_report_load_n_noabort(FlatPtr address, size_t size)
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{
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print_violation(address, size, AccessType::Load, ShadowType::Generic, __builtin_return_address(0));
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}
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void __asan_report_store_n(FlatPtr, size_t);
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void __asan_report_store_n(FlatPtr address, size_t size)
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{
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print_violation(address, size, AccessType::Store, ShadowType::Generic, __builtin_return_address(0));
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}
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void __asan_report_store_n_noabort(FlatPtr, size_t);
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void __asan_report_store_n_noabort(FlatPtr address, size_t size)
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{
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print_violation(address, size, AccessType::Store, ShadowType::Generic, __builtin_return_address(0));
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}
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// As defined in the compiler
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struct __asan_global_source_location {
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char const* filename;
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int line_number;
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int column_number;
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};
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struct __asan_global {
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uintptr_t address;
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size_t valid_size;
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size_t total_size;
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char const* name;
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char const* module_name;
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size_t has_dynamic_init;
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struct __asan_global_source_location* location;
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size_t odr_indicator;
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};
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void __asan_register_globals(struct __asan_global*, size_t);
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void __asan_register_globals(struct __asan_global* globals, size_t count)
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{
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for (auto i = 0u; i < count; ++i)
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mark_region(globals[i].address, globals[i].valid_size, globals[i].total_size, ShadowType::Generic);
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}
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void __asan_unregister_globals(struct __asan_global*, size_t);
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void __asan_unregister_globals(struct __asan_global* globals, size_t count)
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{
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for (auto i = 0u; i < count; ++i)
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mark_region(globals[i].address, globals[i].total_size, globals[i].total_size, ShadowType::Unpoisoned8Bytes);
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}
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void __asan_alloca_poison(FlatPtr, size_t);
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void __asan_alloca_poison(FlatPtr address, size_t size)
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{
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VERIFY(address % kasan_alloca_redzone_size == 0);
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auto rounded_size = round_up_to_power_of_two(size, kasan_alloca_redzone_size);
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fill_shadow(address - kasan_alloca_redzone_size, kasan_alloca_redzone_size, ShadowType::StackLeft);
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mark_region(address, size, rounded_size, Kernel::AddressSanitizer::ShadowType::StackMiddle);
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fill_shadow(address + rounded_size, kasan_alloca_redzone_size, Kernel::AddressSanitizer::ShadowType::StackRight);
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}
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void __asan_allocas_unpoison(FlatPtr, size_t);
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void __asan_allocas_unpoison(FlatPtr start, size_t end)
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{
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VERIFY(start >= end);
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auto size = end - start;
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VERIFY(size % kasan_shadow_scale == 0);
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fill_shadow(start, size, Kernel::AddressSanitizer::ShadowType::Unpoisoned8Bytes);
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}
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void __asan_poison_stack_memory(FlatPtr, size_t);
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void __asan_poison_stack_memory(FlatPtr address, size_t size)
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{
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fill_shadow(address, round_up_to_power_of_two(size, kasan_shadow_scale), Kernel::AddressSanitizer::ShadowType::UseAfterScope);
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}
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void __asan_unpoison_stack_memory(FlatPtr, size_t);
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void __asan_unpoison_stack_memory(FlatPtr address, size_t size)
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{
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fill_shadow(address, round_up_to_power_of_two(size, kasan_shadow_scale), Kernel::AddressSanitizer::ShadowType::Unpoisoned8Bytes);
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}
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void __asan_handle_no_return(void);
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void __asan_handle_no_return(void)
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{
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}
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void __asan_before_dynamic_init(char const*);
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void __asan_before_dynamic_init(char const*)
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{
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}
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void __asan_after_dynamic_init();
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void __asan_after_dynamic_init()
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{
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}
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}
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