forked from OSchip/llvm-project
177 lines
4.9 KiB
C++
177 lines
4.9 KiB
C++
//===-- common.h ------------------------------------------------*- C++ -*-===//
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//
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// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
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// See https://llvm.org/LICENSE.txt for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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//
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//===----------------------------------------------------------------------===//
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#ifndef SCUDO_COMMON_H_
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#define SCUDO_COMMON_H_
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#include "internal_defs.h"
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#include "fuchsia.h"
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#include "linux.h"
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#include <stddef.h>
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#include <string.h>
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namespace scudo {
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template <class Dest, class Source> INLINE Dest bit_cast(const Source &S) {
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COMPILER_CHECK(sizeof(Dest) == sizeof(Source));
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Dest D;
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memcpy(&D, &S, sizeof(D));
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return D;
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}
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INLINE constexpr uptr roundUpTo(uptr X, uptr Boundary) {
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return (X + Boundary - 1) & ~(Boundary - 1);
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}
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INLINE constexpr uptr roundDownTo(uptr X, uptr Boundary) {
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return X & ~(Boundary - 1);
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}
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INLINE constexpr bool isAligned(uptr X, uptr Alignment) {
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return (X & (Alignment - 1)) == 0;
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}
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template <class T> constexpr T Min(T A, T B) { return A < B ? A : B; }
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template <class T> constexpr T Max(T A, T B) { return A > B ? A : B; }
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template <class T> void Swap(T &A, T &B) {
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T Tmp = A;
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A = B;
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B = Tmp;
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}
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INLINE bool isPowerOfTwo(uptr X) { return (X & (X - 1)) == 0; }
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INLINE uptr getMostSignificantSetBitIndex(uptr X) {
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DCHECK_NE(X, 0U);
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return SCUDO_WORDSIZE - 1U - static_cast<uptr>(__builtin_clzl(X));
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}
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INLINE uptr roundUpToPowerOfTwo(uptr Size) {
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DCHECK(Size);
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if (isPowerOfTwo(Size))
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return Size;
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const uptr Up = getMostSignificantSetBitIndex(Size);
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DCHECK_LT(Size, (1UL << (Up + 1)));
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DCHECK_GT(Size, (1UL << Up));
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return 1UL << (Up + 1);
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}
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INLINE uptr getLeastSignificantSetBitIndex(uptr X) {
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DCHECK_NE(X, 0U);
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return static_cast<uptr>(__builtin_ctzl(X));
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}
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INLINE uptr getLog2(uptr X) {
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DCHECK(isPowerOfTwo(X));
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return getLeastSignificantSetBitIndex(X);
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}
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INLINE u32 getRandomU32(u32 *State) {
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// ANSI C linear congruential PRNG (16-bit output).
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// return (*State = *State * 1103515245 + 12345) >> 16;
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// XorShift (32-bit output).
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*State ^= *State << 13;
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*State ^= *State >> 17;
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*State ^= *State << 5;
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return *State;
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}
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INLINE u32 getRandomModN(u32 *State, u32 N) {
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return getRandomU32(State) % N; // [0, N)
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}
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template <typename T> INLINE void shuffle(T *A, u32 N, u32 *RandState) {
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if (N <= 1)
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return;
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u32 State = *RandState;
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for (u32 I = N - 1; I > 0; I--)
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Swap(A[I], A[getRandomModN(&State, I + 1)]);
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*RandState = State;
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}
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// Hardware specific inlinable functions.
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INLINE void yieldProcessor(u8 Count) {
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#if defined(__i386__) || defined(__x86_64__)
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__asm__ __volatile__("" ::: "memory");
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for (u8 I = 0; I < Count; I++)
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__asm__ __volatile__("pause");
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#elif defined(__aarch64__) || defined(__arm__)
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__asm__ __volatile__("" ::: "memory");
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for (u8 I = 0; I < Count; I++)
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__asm__ __volatile__("yield");
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#endif
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__asm__ __volatile__("" ::: "memory");
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}
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// Platform specific functions.
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extern uptr PageSizeCached;
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uptr getPageSizeSlow();
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INLINE uptr getPageSizeCached() {
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// Bionic uses a hardcoded value.
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if (SCUDO_ANDROID)
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return 4096U;
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if (LIKELY(PageSizeCached))
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return PageSizeCached;
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return getPageSizeSlow();
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}
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u32 getNumberOfCPUs();
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const char *getEnv(const char *Name);
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u64 getMonotonicTime();
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// Our randomness gathering function is limited to 256 bytes to ensure we get
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// as many bytes as requested, and avoid interruptions (on Linux).
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constexpr uptr MaxRandomLength = 256U;
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bool getRandom(void *Buffer, uptr Length, bool Blocking = false);
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// Platform memory mapping functions.
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#define MAP_ALLOWNOMEM (1U << 0)
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#define MAP_NOACCESS (1U << 1)
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#define MAP_RESIZABLE (1U << 2)
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// Our platform memory mapping use is restricted to 3 scenarios:
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// - reserve memory at a random address (MAP_NOACCESS);
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// - commit memory in a previously reserved space;
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// - commit memory at a random address.
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// As such, only a subset of parameters combinations is valid, which is checked
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// by the function implementation. The Data parameter allows to pass opaque
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// platform specific data to the function.
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// Returns nullptr on error or dies if MAP_ALLOWNOMEM is not specified.
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void *map(void *Addr, uptr Size, const char *Name, uptr Flags = 0,
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MapPlatformData *Data = nullptr);
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// Indicates that we are getting rid of the whole mapping, which might have
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// further consequences on Data, depending on the platform.
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#define UNMAP_ALL (1U << 0)
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void unmap(void *Addr, uptr Size, uptr Flags = 0,
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MapPlatformData *Data = nullptr);
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void releasePagesToOS(uptr BaseAddress, uptr Offset, uptr Size,
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MapPlatformData *Data = nullptr);
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// Internal map & unmap fatal error. This must not call map().
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void NORETURN dieOnMapUnmapError(bool OutOfMemory = false);
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// Logging related functions.
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void setAbortMessage(const char *Message);
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} // namespace scudo
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#endif // SCUDO_COMMON_H_
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