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1 /*
2  * Copyright (C) 2017 The Android Open Source Project
3  *
4  * Licensed under the Apache License, Version 2.0 (the "License");
5  * you may not use this file except in compliance with the
6  * License. You may obtain a copy of the License at
7  *
8  *      http://www.apache.org/licenses/LICENSE-2.0
9  *
10  * Unless required by applicable law or agreed to in writing,
11  * software distributed under the License is distributed on an "AS
12  * IS" BASIS, WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either
13  * express or implied. See the License for the specific language
14  * governing permissions and limitations under the License.
15  */
16 #include "perfetto/ext/tracing/core/shared_memory_abi.h"
17 
18 #include "perfetto/base/build_config.h"
19 #include "perfetto/base/time.h"
20 
21 #if !PERFETTO_BUILDFLAG(PERFETTO_OS_WIN)
22 #include <sys/mman.h>
23 #endif
24 
25 #include "perfetto/ext/base/utils.h"
26 #include "perfetto/ext/tracing/core/basic_types.h"
27 
28 namespace perfetto {
29 
30 namespace {
31 
32 constexpr int kRetryAttempts = 64;
33 
WaitBeforeNextAttempt(int attempt)34 inline void WaitBeforeNextAttempt(int attempt) {
35   if (attempt < kRetryAttempts / 2) {
36     std::this_thread::yield();
37   } else {
38     base::SleepMicroseconds((unsigned(attempt) / 10) * 1000);
39   }
40 }
41 
42 // Returns the largest 4-bytes aligned chunk size <= |page_size| / |divider|
43 // for each divider in PageLayout.
GetChunkSize(size_t page_size,size_t divider)44 constexpr size_t GetChunkSize(size_t page_size, size_t divider) {
45   return ((page_size - sizeof(SharedMemoryABI::PageHeader)) / divider) & ~3UL;
46 }
47 
48 // Initializer for the const |chunk_sizes_| array.
InitChunkSizes(size_t page_size)49 std::array<uint16_t, SharedMemoryABI::kNumPageLayouts> InitChunkSizes(
50     size_t page_size) {
51   static_assert(SharedMemoryABI::kNumPageLayouts ==
52                     base::ArraySize(SharedMemoryABI::kNumChunksForLayout),
53                 "kNumPageLayouts out of date");
54   std::array<uint16_t, SharedMemoryABI::kNumPageLayouts> res = {};
55   for (size_t i = 0; i < SharedMemoryABI::kNumPageLayouts; i++) {
56     size_t num_chunks = SharedMemoryABI::kNumChunksForLayout[i];
57     size_t size = num_chunks == 0 ? 0 : GetChunkSize(page_size, num_chunks);
58     PERFETTO_CHECK(size <= std::numeric_limits<uint16_t>::max());
59     res[i] = static_cast<uint16_t>(size);
60   }
61   return res;
62 }
63 
ClearChunkHeader(SharedMemoryABI::ChunkHeader * header)64 inline void ClearChunkHeader(SharedMemoryABI::ChunkHeader* header) {
65   header->writer_id.store(0u, std::memory_order_relaxed);
66   header->chunk_id.store(0u, std::memory_order_relaxed);
67   header->packets.store({}, std::memory_order_release);
68 }
69 
70 }  // namespace
71 
72 SharedMemoryABI::SharedMemoryABI() = default;
73 
SharedMemoryABI(uint8_t * start,size_t size,size_t page_size,ShmemMode mode)74 SharedMemoryABI::SharedMemoryABI(uint8_t* start,
75                                  size_t size,
76                                  size_t page_size,
77                                  ShmemMode mode) {
78   Initialize(start, size, page_size, mode);
79 }
80 
Initialize(uint8_t * start,size_t size,size_t page_size,ShmemMode mode)81 void SharedMemoryABI::Initialize(uint8_t* start,
82                                  size_t size,
83                                  size_t page_size,
84                                  ShmemMode mode) {
85   start_ = start;
86   size_ = size;
87   page_size_ = page_size;
88   use_shmem_emulation_ = mode == ShmemMode::kShmemEmulation;
89   num_pages_ = size / page_size;
90   chunk_sizes_ = InitChunkSizes(page_size);
91   static_assert(sizeof(PageHeader) == 8, "PageHeader size");
92   static_assert(sizeof(ChunkHeader) == 8, "ChunkHeader size");
93   static_assert(sizeof(ChunkHeader::chunk_id) == sizeof(ChunkID),
94                 "ChunkID size");
95 
96   static_assert(sizeof(ChunkHeader::Packets) == 2, "ChunkHeader::Packets size");
97   static_assert(alignof(ChunkHeader) == kChunkAlignment,
98                 "ChunkHeader alignment");
99 
100   // In theory std::atomic does not guarantee that the underlying type
101   // consists only of the actual atomic word. Theoretically it could have
102   // locks or other state. In practice most implementations just implement
103   // them without extra state. The code below overlays the atomic into the
104   // SMB, hence relies on this implementation detail. This should be fine
105   // pragmatically (Chrome's base makes the same assumption), but let's have a
106   // check for this.
107   static_assert(sizeof(std::atomic<uint32_t>) == sizeof(uint32_t) &&
108                     sizeof(std::atomic<uint16_t>) == sizeof(uint16_t),
109                 "Incompatible STL <atomic> implementation");
110 
111   // Chec that the kAllChunks(Complete,Free) are consistent with the
112   // ChunkState enum values.
113 
114   // These must be zero because rely on zero-initialized memory being
115   // interpreted as "free".
116   static_assert(kChunkFree == 0 && kAllChunksFree == 0,
117                 "kChunkFree/kAllChunksFree and must be 0");
118 
119   static_assert((kAllChunksComplete & kChunkMask) == kChunkComplete,
120                 "kAllChunksComplete out of sync with kChunkComplete");
121 
122   // Check the consistency of the kMax... constants.
123   static_assert(sizeof(ChunkHeader::writer_id) == sizeof(WriterID),
124                 "WriterID size");
125   ChunkHeader chunk_header{};
126   chunk_header.chunk_id.store(static_cast<uint32_t>(-1));
127   PERFETTO_CHECK(chunk_header.chunk_id.load() == kMaxChunkID);
128 
129   chunk_header.writer_id.store(static_cast<uint16_t>(-1));
130   PERFETTO_CHECK(kMaxWriterID <= chunk_header.writer_id.load());
131 
132   PERFETTO_CHECK(page_size >= kMinPageSize);
133   PERFETTO_CHECK(page_size <= kMaxPageSize);
134   PERFETTO_CHECK(page_size % kMinPageSize == 0);
135   PERFETTO_CHECK(reinterpret_cast<uintptr_t>(start) % kMinPageSize == 0);
136   PERFETTO_CHECK(size % page_size == 0);
137 }
138 
GetChunkUnchecked(size_t page_idx,uint32_t page_layout,size_t chunk_idx)139 SharedMemoryABI::Chunk SharedMemoryABI::GetChunkUnchecked(size_t page_idx,
140                                                           uint32_t page_layout,
141                                                           size_t chunk_idx) {
142   const size_t num_chunks = GetNumChunksForLayout(page_layout);
143   PERFETTO_DCHECK(chunk_idx < num_chunks);
144   // Compute the chunk virtual address and write it into |chunk|.
145   const uint16_t chunk_size = GetChunkSizeForLayout(page_layout);
146   size_t chunk_offset_in_page = sizeof(PageHeader) + chunk_idx * chunk_size;
147 
148   Chunk chunk(page_start(page_idx) + chunk_offset_in_page, chunk_size,
149               static_cast<uint8_t>(chunk_idx));
150   PERFETTO_DCHECK(chunk.end() <= end());
151   return chunk;
152 }
153 
TryAcquireChunk(size_t page_idx,size_t chunk_idx,ChunkState desired_chunk_state,const ChunkHeader * header)154 SharedMemoryABI::Chunk SharedMemoryABI::TryAcquireChunk(
155     size_t page_idx,
156     size_t chunk_idx,
157     ChunkState desired_chunk_state,
158     const ChunkHeader* header) {
159   PERFETTO_DCHECK(desired_chunk_state == kChunkBeingRead ||
160                   desired_chunk_state == kChunkBeingWritten);
161   PageHeader* phdr = page_header(page_idx);
162   for (int attempt = 0; attempt < kRetryAttempts; attempt++) {
163     uint32_t layout = phdr->layout.load(std::memory_order_acquire);
164     const size_t num_chunks = GetNumChunksForLayout(layout);
165 
166     // The page layout has changed (or the page is free).
167     if (chunk_idx >= num_chunks)
168       return Chunk();
169 
170     // Verify that the chunk is still in a state that allows the transition to
171     // |desired_chunk_state|. The only allowed transitions are:
172     // 1. kChunkFree -> kChunkBeingWritten (Producer).
173     // 2. kChunkComplete -> kChunkBeingRead (Service).
174     ChunkState expected_chunk_state =
175         desired_chunk_state == kChunkBeingWritten ? kChunkFree : kChunkComplete;
176     auto cur_chunk_state = (layout >> (chunk_idx * kChunkShift)) & kChunkMask;
177     if (cur_chunk_state != expected_chunk_state)
178       return Chunk();
179 
180     uint32_t next_layout = layout;
181     next_layout &= ~(kChunkMask << (chunk_idx * kChunkShift));
182     next_layout |= (desired_chunk_state << (chunk_idx * kChunkShift));
183     if (phdr->layout.compare_exchange_strong(layout, next_layout,
184                                              std::memory_order_acq_rel)) {
185       // Compute the chunk virtual address and write it into |chunk|.
186       Chunk chunk = GetChunkUnchecked(page_idx, layout, chunk_idx);
187       if (desired_chunk_state == kChunkBeingWritten) {
188         PERFETTO_DCHECK(header);
189         ChunkHeader* new_header = chunk.header();
190         new_header->writer_id.store(header->writer_id,
191                                     std::memory_order_relaxed);
192         new_header->chunk_id.store(header->chunk_id, std::memory_order_relaxed);
193         new_header->packets.store(header->packets, std::memory_order_release);
194       }
195       return chunk;
196     }
197     WaitBeforeNextAttempt(attempt);
198   }
199   return Chunk();  // All our attempts failed.
200 }
201 
TryPartitionPage(size_t page_idx,PageLayout layout)202 bool SharedMemoryABI::TryPartitionPage(size_t page_idx, PageLayout layout) {
203   PERFETTO_DCHECK(layout >= kPageDiv1 && layout <= kPageDiv14);
204   uint32_t expected_layout = 0;  // Free page.
205   uint32_t next_layout = (layout << kLayoutShift) & kLayoutMask;
206   PageHeader* phdr = page_header(page_idx);
207   if (!phdr->layout.compare_exchange_strong(expected_layout, next_layout,
208                                             std::memory_order_acq_rel)) {
209     return false;
210   }
211   return true;
212 }
213 
GetFreeChunks(size_t page_idx)214 uint32_t SharedMemoryABI::GetFreeChunks(size_t page_idx) {
215   uint32_t layout =
216       page_header(page_idx)->layout.load(std::memory_order_relaxed);
217   const uint32_t num_chunks = GetNumChunksForLayout(layout);
218   uint32_t res = 0;
219   for (uint32_t i = 0; i < num_chunks; i++) {
220     res |= ((layout & kChunkMask) == kChunkFree) ? (1 << i) : 0;
221     layout >>= kChunkShift;
222   }
223   return res;
224 }
225 
ReleaseChunk(Chunk chunk,ChunkState desired_chunk_state)226 size_t SharedMemoryABI::ReleaseChunk(Chunk chunk,
227                                      ChunkState desired_chunk_state) {
228   PERFETTO_DCHECK(desired_chunk_state == kChunkComplete ||
229                   desired_chunk_state == kChunkFree);
230 
231   size_t page_idx;
232   size_t chunk_idx;
233   std::tie(page_idx, chunk_idx) = GetPageAndChunkIndex(chunk);
234 
235   // Reset header fields, so that the service can identify when the chunk's
236   // header has been initialized by the producer.
237   if (desired_chunk_state == kChunkFree)
238     ClearChunkHeader(chunk.header());
239 
240   for (int attempt = 0; attempt < kRetryAttempts; attempt++) {
241     PageHeader* phdr = page_header(page_idx);
242     uint32_t layout = phdr->layout.load(std::memory_order_relaxed);
243     const size_t page_chunk_size = GetChunkSizeForLayout(layout);
244 
245     // TODO(primiano): this should not be a CHECK, because a malicious producer
246     // could crash us by putting the chunk in an invalid state. This should
247     // gracefully fail. Keep a CHECK until then.
248     PERFETTO_CHECK(chunk.size() == page_chunk_size);
249     const uint32_t chunk_state = GetChunkStateFromLayout(layout, chunk_idx);
250 
251     // Verify that the chunk is still in a state that allows the transition to
252     // |desired_chunk_state|. The only allowed transitions are:
253     // 1. kChunkBeingWritten -> kChunkComplete (Producer).
254     // 2. kChunkBeingRead -> kChunkFree (Service).
255     // Or in the emulation mode, the allowed transitions are:
256     // 1. kChunkBeingWritten -> kChunkComplete (Producer).
257     // 2. kChunkComplete -> kChunkFree (Producer).
258     ChunkState expected_chunk_state;
259     if (desired_chunk_state == kChunkComplete) {
260       expected_chunk_state = kChunkBeingWritten;
261     } else {
262       expected_chunk_state =
263           use_shmem_emulation_ ? kChunkComplete : kChunkBeingRead;
264     }
265 
266     // TODO(primiano): should not be a CHECK (same rationale of comment above).
267     PERFETTO_CHECK(chunk_state == expected_chunk_state);
268     uint32_t next_layout = layout;
269     next_layout &= ~(kChunkMask << (chunk_idx * kChunkShift));
270     next_layout |= (desired_chunk_state << (chunk_idx * kChunkShift));
271 
272     // If we are freeing a chunk and all the other chunks in the page are free
273     // we should de-partition the page and mark it as clear.
274     if ((next_layout & kAllChunksMask) == kAllChunksFree)
275       next_layout = 0;
276 
277     if (phdr->layout.compare_exchange_strong(layout, next_layout,
278                                              std::memory_order_acq_rel)) {
279       return page_idx;
280     }
281     WaitBeforeNextAttempt(attempt);
282   }
283   // Too much contention on this page. Give up. This page will be left pending
284   // forever but there isn't much more we can do at this point.
285   PERFETTO_DFATAL("Too much contention on page.");
286   return kInvalidPageIdx;
287 }
288 
289 SharedMemoryABI::Chunk::Chunk() = default;
290 
Chunk(uint8_t * begin,uint16_t size,uint8_t chunk_idx)291 SharedMemoryABI::Chunk::Chunk(uint8_t* begin, uint16_t size, uint8_t chunk_idx)
292     : begin_(begin), size_(size), chunk_idx_(chunk_idx) {
293   PERFETTO_CHECK(reinterpret_cast<uintptr_t>(begin) % kChunkAlignment == 0);
294   PERFETTO_CHECK(size > 0);
295 }
296 
Chunk(Chunk && o)297 SharedMemoryABI::Chunk::Chunk(Chunk&& o) noexcept {
298   *this = std::move(o);
299 }
300 
operator =(Chunk && o)301 SharedMemoryABI::Chunk& SharedMemoryABI::Chunk::operator=(Chunk&& o) {
302   begin_ = o.begin_;
303   size_ = o.size_;
304   chunk_idx_ = o.chunk_idx_;
305   o.begin_ = nullptr;
306   o.size_ = 0;
307   o.chunk_idx_ = 0;
308   return *this;
309 }
310 
GetPageAndChunkIndex(const Chunk & chunk)311 std::pair<size_t, size_t> SharedMemoryABI::GetPageAndChunkIndex(
312     const Chunk& chunk) {
313   PERFETTO_DCHECK(chunk.is_valid());
314   PERFETTO_DCHECK(chunk.begin() >= start_);
315   PERFETTO_DCHECK(chunk.end() <= start_ + size_);
316 
317   // TODO(primiano): The divisions below could be avoided if we cached
318   // |page_shift_|.
319   const uintptr_t rel_addr = static_cast<uintptr_t>(chunk.begin() - start_);
320   const size_t page_idx = rel_addr / page_size_;
321   const size_t offset = rel_addr % page_size_;
322   PERFETTO_DCHECK(offset >= sizeof(PageHeader));
323   PERFETTO_DCHECK(offset % kChunkAlignment == 0);
324   PERFETTO_DCHECK((offset - sizeof(PageHeader)) % chunk.size() == 0);
325   const size_t chunk_idx = (offset - sizeof(PageHeader)) / chunk.size();
326   PERFETTO_DCHECK(chunk_idx < kMaxChunksPerPage);
327   PERFETTO_DCHECK(chunk_idx < GetNumChunksForLayout(GetPageLayout(page_idx)));
328   return std::make_pair(page_idx, chunk_idx);
329 }
330 
331 }  // namespace perfetto
332