1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 153 154 155 156 157 158 159 160 161 162 163 164 165 166 167 168 169 170 171 172 173 174 175 176 177 178 179 180 181 182 183 184 185 186 187 188 189 190 191 192 193 194 195 196 197 198 199 200 201 202 203 204 205 206 207 208 209 210 211 212 213 214 215 216 217 218 219 220 221 222 223 224 225 226 227 228 229 230 231 232 233 234 235 236 237 238 239 240 241 242 243 244 245 246 247 248 249 250 251 252 253 254 255 256 257 258 259 260 261 262 263 264 265 266 267 268 269 270 271 272 273 274 275 276 277 278 279 280 281 282 283 284 285 286 287 288
|
//===-- xray_allocator.h ---------------------------------------*- C++ -*-===//
//
// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
// See https://llvm.org/LICENSE.txt for license information.
// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
//
//===----------------------------------------------------------------------===//
//
// This file is a part of XRay, a dynamic runtime instrumentation system.
//
// Defines the allocator interface for an arena allocator, used primarily for
// the profiling runtime.
//
//===----------------------------------------------------------------------===//
#ifndef XRAY_ALLOCATOR_H
#define XRAY_ALLOCATOR_H
#include "sanitizer_common/sanitizer_common.h"
#include "sanitizer_common/sanitizer_internal_defs.h"
#include "sanitizer_common/sanitizer_mutex.h"
#if SANITIZER_FUCHSIA
#include <zircon/process.h>
#include <zircon/status.h>
#include <zircon/syscalls.h>
#else
#include "sanitizer_common/sanitizer_posix.h"
#endif
#include "xray_defs.h"
#include "xray_utils.h"
#include <cstddef>
#include <cstdint>
#include <sys/mman.h>
namespace __xray {
// We implement our own memory allocation routine which will bypass the
// internal allocator. This allows us to manage the memory directly, using
// mmap'ed memory to back the allocators.
template <class T> T *allocate() XRAY_NEVER_INSTRUMENT {
uptr RoundedSize = RoundUpTo(sizeof(T), GetPageSizeCached());
#if SANITIZER_FUCHSIA
zx_handle_t Vmo;
zx_status_t Status = _zx_vmo_create(RoundedSize, 0, &Vmo);
if (Status != ZX_OK) {
if (Verbosity())
Report("XRay Profiling: Failed to create VMO of size %zu: %s\n",
sizeof(T), _zx_status_get_string(Status));
return nullptr;
}
uintptr_t B;
Status =
_zx_vmar_map(_zx_vmar_root_self(), ZX_VM_PERM_READ | ZX_VM_PERM_WRITE, 0,
Vmo, 0, sizeof(T), &B);
_zx_handle_close(Vmo);
if (Status != ZX_OK) {
if (Verbosity())
Report("XRay Profiling: Failed to map VMAR of size %zu: %s\n", sizeof(T),
_zx_status_get_string(Status));
return nullptr;
}
return reinterpret_cast<T *>(B);
#else
uptr B = internal_mmap(NULL, RoundedSize, PROT_READ | PROT_WRITE,
MAP_PRIVATE | MAP_ANONYMOUS, -1, 0);
int ErrNo = 0;
if (UNLIKELY(internal_iserror(B, &ErrNo))) {
if (Verbosity())
Report("XRay Profiling: Failed to allocate memory of size %zu; Error = "
"%zu\n",
RoundedSize, B);
return nullptr;
}
#endif
return reinterpret_cast<T *>(B);
}
template <class T> void deallocate(T *B) XRAY_NEVER_INSTRUMENT {
if (B == nullptr)
return;
uptr RoundedSize = RoundUpTo(sizeof(T), GetPageSizeCached());
#if SANITIZER_FUCHSIA
_zx_vmar_unmap(_zx_vmar_root_self(), reinterpret_cast<uintptr_t>(B),
RoundedSize);
#else
internal_munmap(B, RoundedSize);
#endif
}
template <class T = unsigned char>
T *allocateBuffer(size_t S) XRAY_NEVER_INSTRUMENT {
uptr RoundedSize = RoundUpTo(S * sizeof(T), GetPageSizeCached());
#if SANITIZER_FUCHSIA
zx_handle_t Vmo;
zx_status_t Status = _zx_vmo_create(RoundedSize, 0, &Vmo);
if (Status != ZX_OK) {
if (Verbosity())
Report("XRay Profiling: Failed to create VMO of size %zu: %s\n", S,
_zx_status_get_string(Status));
return nullptr;
}
uintptr_t B;
Status = _zx_vmar_map(_zx_vmar_root_self(),
ZX_VM_PERM_READ | ZX_VM_PERM_WRITE, 0, Vmo, 0, S, &B);
_zx_handle_close(Vmo);
if (Status != ZX_OK) {
if (Verbosity())
Report("XRay Profiling: Failed to map VMAR of size %zu: %s\n", S,
_zx_status_get_string(Status));
return nullptr;
}
#else
uptr B = internal_mmap(NULL, RoundedSize, PROT_READ | PROT_WRITE,
MAP_PRIVATE | MAP_ANONYMOUS, -1, 0);
int ErrNo = 0;
if (UNLIKELY(internal_iserror(B, &ErrNo))) {
if (Verbosity())
Report("XRay Profiling: Failed to allocate memory of size %zu; Error = "
"%zu\n",
RoundedSize, B);
return nullptr;
}
#endif
return reinterpret_cast<T *>(B);
}
template <class T> void deallocateBuffer(T *B, size_t S) XRAY_NEVER_INSTRUMENT {
if (B == nullptr)
return;
uptr RoundedSize = RoundUpTo(S * sizeof(T), GetPageSizeCached());
#if SANITIZER_FUCHSIA
_zx_vmar_unmap(_zx_vmar_root_self(), reinterpret_cast<uintptr_t>(B),
RoundedSize);
#else
internal_munmap(B, RoundedSize);
#endif
}
template <class T, class... U>
T *initArray(size_t N, U &&... Us) XRAY_NEVER_INSTRUMENT {
auto A = allocateBuffer<T>(N);
if (A != nullptr)
while (N > 0)
new (A + (--N)) T(std::forward<U>(Us)...);
return A;
}
/// The Allocator type hands out fixed-sized chunks of memory that are
/// cache-line aligned and sized. This is useful for placement of
/// performance-sensitive data in memory that's frequently accessed. The
/// allocator also self-limits the peak memory usage to a dynamically defined
/// maximum.
///
/// N is the lower-bound size of the block of memory to return from the
/// allocation function. N is used to compute the size of a block, which is
/// cache-line-size multiples worth of memory. We compute the size of a block by
/// determining how many cache lines worth of memory is required to subsume N.
///
/// The Allocator instance will manage its own memory acquired through mmap.
/// This severely constrains the platforms on which this can be used to POSIX
/// systems where mmap semantics are well-defined.
///
/// FIXME: Isolate the lower-level memory management to a different abstraction
/// that can be platform-specific.
template <size_t N> struct Allocator {
// The Allocator returns memory as Block instances.
struct Block {
/// Compute the minimum cache-line size multiple that is >= N.
static constexpr auto Size = nearest_boundary(N, kCacheLineSize);
void *Data;
};
private:
size_t MaxMemory{0};
unsigned char *BackingStore = nullptr;
unsigned char *AlignedNextBlock = nullptr;
size_t AllocatedBlocks = 0;
bool Owned;
SpinMutex Mutex{};
void *Alloc() XRAY_NEVER_INSTRUMENT {
SpinMutexLock Lock(&Mutex);
if (UNLIKELY(BackingStore == nullptr)) {
BackingStore = allocateBuffer(MaxMemory);
if (BackingStore == nullptr) {
if (Verbosity())
Report("XRay Profiling: Failed to allocate memory for allocator\n");
return nullptr;
}
AlignedNextBlock = BackingStore;
// Ensure that NextBlock is aligned appropriately.
auto BackingStoreNum = reinterpret_cast<uintptr_t>(BackingStore);
auto AlignedNextBlockNum = nearest_boundary(
reinterpret_cast<uintptr_t>(AlignedNextBlock), kCacheLineSize);
if (diff(AlignedNextBlockNum, BackingStoreNum) > ptrdiff_t(MaxMemory)) {
deallocateBuffer(BackingStore, MaxMemory);
AlignedNextBlock = BackingStore = nullptr;
if (Verbosity())
Report("XRay Profiling: Cannot obtain enough memory from "
"preallocated region\n");
return nullptr;
}
AlignedNextBlock = reinterpret_cast<unsigned char *>(AlignedNextBlockNum);
// Assert that AlignedNextBlock is cache-line aligned.
DCHECK_EQ(reinterpret_cast<uintptr_t>(AlignedNextBlock) % kCacheLineSize,
0);
}
if (((AllocatedBlocks + 1) * Block::Size) > MaxMemory)
return nullptr;
// Align the pointer we'd like to return to an appropriate alignment, then
// advance the pointer from where to start allocations.
void *Result = AlignedNextBlock;
AlignedNextBlock =
reinterpret_cast<unsigned char *>(AlignedNextBlock) + Block::Size;
++AllocatedBlocks;
return Result;
}
public:
explicit Allocator(size_t M) XRAY_NEVER_INSTRUMENT
: MaxMemory(RoundUpTo(M, kCacheLineSize)),
BackingStore(nullptr),
AlignedNextBlock(nullptr),
AllocatedBlocks(0),
Owned(true),
Mutex() {}
explicit Allocator(void *P, size_t M) XRAY_NEVER_INSTRUMENT
: MaxMemory(M),
BackingStore(reinterpret_cast<unsigned char *>(P)),
AlignedNextBlock(reinterpret_cast<unsigned char *>(P)),
AllocatedBlocks(0),
Owned(false),
Mutex() {}
Allocator(const Allocator &) = delete;
Allocator &operator=(const Allocator &) = delete;
Allocator(Allocator &&O) XRAY_NEVER_INSTRUMENT {
SpinMutexLock L0(&Mutex);
SpinMutexLock L1(&O.Mutex);
MaxMemory = O.MaxMemory;
O.MaxMemory = 0;
BackingStore = O.BackingStore;
O.BackingStore = nullptr;
AlignedNextBlock = O.AlignedNextBlock;
O.AlignedNextBlock = nullptr;
AllocatedBlocks = O.AllocatedBlocks;
O.AllocatedBlocks = 0;
Owned = O.Owned;
O.Owned = false;
}
Allocator &operator=(Allocator &&O) XRAY_NEVER_INSTRUMENT {
SpinMutexLock L0(&Mutex);
SpinMutexLock L1(&O.Mutex);
MaxMemory = O.MaxMemory;
O.MaxMemory = 0;
if (BackingStore != nullptr)
deallocateBuffer(BackingStore, MaxMemory);
BackingStore = O.BackingStore;
O.BackingStore = nullptr;
AlignedNextBlock = O.AlignedNextBlock;
O.AlignedNextBlock = nullptr;
AllocatedBlocks = O.AllocatedBlocks;
O.AllocatedBlocks = 0;
Owned = O.Owned;
O.Owned = false;
return *this;
}
Block Allocate() XRAY_NEVER_INSTRUMENT { return {Alloc()}; }
~Allocator() NOEXCEPT XRAY_NEVER_INSTRUMENT {
if (Owned && BackingStore != nullptr) {
deallocateBuffer(BackingStore, MaxMemory);
}
}
};
} // namespace __xray
#endif // XRAY_ALLOCATOR_H
|