blob: f008ac6eac32cf08eabaadeabf17fbeefed032fe [file] [log] [blame]
Austin Schuha36c8902019-12-30 18:07:15 -08001#include "aos/events/logging/logfile_utils.h"
2
3#include <fcntl.h>
Austin Schuha36c8902019-12-30 18:07:15 -08004#include <sys/stat.h>
5#include <sys/types.h>
6#include <sys/uio.h>
7
Brian Silvermanf51499a2020-09-21 12:49:08 -07008#include <algorithm>
9#include <climits>
Austin Schuha36c8902019-12-30 18:07:15 -080010
Austin Schuhe4fca832020-03-07 16:58:53 -080011#include "absl/strings/escaping.h"
Austin Schuh05b70472020-01-01 17:11:17 -080012#include "aos/configuration.h"
Austin Schuhfa895892020-01-07 20:07:41 -080013#include "aos/flatbuffer_merge.h"
Austin Schuh6f3babe2020-01-26 20:34:50 -080014#include "aos/util/file.h"
Austin Schuha36c8902019-12-30 18:07:15 -080015#include "flatbuffers/flatbuffers.h"
Austin Schuh05b70472020-01-01 17:11:17 -080016#include "gflags/gflags.h"
17#include "glog/logging.h"
Austin Schuha36c8902019-12-30 18:07:15 -080018
Brian Silvermanf59fe3f2020-09-22 21:04:09 -070019#if defined(__x86_64__)
20#define ENABLE_LZMA 1
21#elif defined(__aarch64__)
22#define ENABLE_LZMA 1
23#else
24#define ENABLE_LZMA 0
25#endif
26
27#if ENABLE_LZMA
28#include "aos/events/logging/lzma_encoder.h"
29#endif
30
Austin Schuh7fbf5a72020-09-21 16:28:13 -070031DEFINE_int32(flush_size, 128000,
Austin Schuha36c8902019-12-30 18:07:15 -080032 "Number of outstanding bytes to allow before flushing to disk.");
Austin Schuhbd06ae42021-03-31 22:48:21 -070033DEFINE_double(
34 flush_period, 5.0,
35 "Max time to let data sit in the queue before flushing in seconds.");
Austin Schuha36c8902019-12-30 18:07:15 -080036
Austin Schuha040c3f2021-02-13 16:09:07 -080037DEFINE_double(
38 max_out_of_order, -1,
39 "If set, this overrides the max out of order duration for a log file.");
40
Brian Silvermanf51499a2020-09-21 12:49:08 -070041namespace aos::logger {
Austin Schuha36c8902019-12-30 18:07:15 -080042
Austin Schuh05b70472020-01-01 17:11:17 -080043namespace chrono = std::chrono;
44
Brian Silvermanf51499a2020-09-21 12:49:08 -070045DetachedBufferWriter::DetachedBufferWriter(
46 std::string_view filename, std::unique_ptr<DetachedBufferEncoder> encoder)
47 : filename_(filename), encoder_(std::move(encoder)) {
Brian Silvermana9f2ec92020-10-06 18:00:53 -070048 if (!util::MkdirPIfSpace(filename, 0777)) {
49 ran_out_of_space_ = true;
50 } else {
51 fd_ = open(std::string(filename).c_str(),
52 O_RDWR | O_CLOEXEC | O_CREAT | O_EXCL, 0774);
53 if (fd_ == -1 && errno == ENOSPC) {
54 ran_out_of_space_ = true;
55 } else {
56 PCHECK(fd_ != -1) << ": Failed to open " << filename << " for writing";
57 VLOG(1) << "Opened " << filename << " for writing";
58 }
59 }
Austin Schuha36c8902019-12-30 18:07:15 -080060}
61
62DetachedBufferWriter::~DetachedBufferWriter() {
Brian Silverman0465fcf2020-09-24 00:29:18 -070063 Close();
64 if (ran_out_of_space_) {
65 CHECK(acknowledge_ran_out_of_space_)
66 << ": Unacknowledged out of disk space, log file was not completed";
Brian Silvermanf51499a2020-09-21 12:49:08 -070067 }
Austin Schuh2f8fd752020-09-01 22:38:28 -070068}
69
Brian Silvermand90905f2020-09-23 14:42:56 -070070DetachedBufferWriter::DetachedBufferWriter(DetachedBufferWriter &&other) {
Austin Schuh2f8fd752020-09-01 22:38:28 -070071 *this = std::move(other);
72}
73
Brian Silverman87ac0402020-09-17 14:47:01 -070074// When other is destroyed "soon" (which it should be because we're getting an
75// rvalue reference to it), it will flush etc all the data we have queued up
76// (because that data will then be its data).
Austin Schuh2f8fd752020-09-01 22:38:28 -070077DetachedBufferWriter &DetachedBufferWriter::operator=(
78 DetachedBufferWriter &&other) {
Austin Schuh2f8fd752020-09-01 22:38:28 -070079 std::swap(filename_, other.filename_);
Brian Silvermanf51499a2020-09-21 12:49:08 -070080 std::swap(encoder_, other.encoder_);
Austin Schuh2f8fd752020-09-01 22:38:28 -070081 std::swap(fd_, other.fd_);
Brian Silverman0465fcf2020-09-24 00:29:18 -070082 std::swap(ran_out_of_space_, other.ran_out_of_space_);
83 std::swap(acknowledge_ran_out_of_space_, other.acknowledge_ran_out_of_space_);
Austin Schuh2f8fd752020-09-01 22:38:28 -070084 std::swap(iovec_, other.iovec_);
Brian Silvermanf51499a2020-09-21 12:49:08 -070085 std::swap(max_write_time_, other.max_write_time_);
86 std::swap(max_write_time_bytes_, other.max_write_time_bytes_);
87 std::swap(max_write_time_messages_, other.max_write_time_messages_);
88 std::swap(total_write_time_, other.total_write_time_);
89 std::swap(total_write_count_, other.total_write_count_);
90 std::swap(total_write_messages_, other.total_write_messages_);
91 std::swap(total_write_bytes_, other.total_write_bytes_);
Austin Schuh2f8fd752020-09-01 22:38:28 -070092 return *this;
Austin Schuha36c8902019-12-30 18:07:15 -080093}
94
Brian Silvermanf51499a2020-09-21 12:49:08 -070095void DetachedBufferWriter::QueueSpan(absl::Span<const uint8_t> span) {
Brian Silvermana9f2ec92020-10-06 18:00:53 -070096 if (ran_out_of_space_) {
97 // We don't want any later data to be written after space becomes
98 // available, so refuse to write anything more once we've dropped data
99 // because we ran out of space.
100 VLOG(1) << "Ignoring span: " << span.size();
101 return;
102 }
103
Austin Schuhbd06ae42021-03-31 22:48:21 -0700104 aos::monotonic_clock::time_point now;
Brian Silvermanf51499a2020-09-21 12:49:08 -0700105 if (encoder_->may_bypass() && span.size() > 4096u) {
106 // Over this threshold, we'll assume it's cheaper to add an extra
107 // syscall to write the data immediately instead of copying it to
108 // enqueue.
Austin Schuha36c8902019-12-30 18:07:15 -0800109
Brian Silvermanf51499a2020-09-21 12:49:08 -0700110 // First, flush everything.
111 while (encoder_->queue_size() > 0u) {
112 Flush();
113 }
Austin Schuhde031b72020-01-10 19:34:41 -0800114
Brian Silvermanf51499a2020-09-21 12:49:08 -0700115 // Then, write it directly.
116 const auto start = aos::monotonic_clock::now();
117 const ssize_t written = write(fd_, span.data(), span.size());
118 const auto end = aos::monotonic_clock::now();
Brian Silverman0465fcf2020-09-24 00:29:18 -0700119 HandleWriteReturn(written, span.size());
Brian Silvermanf51499a2020-09-21 12:49:08 -0700120 UpdateStatsForWrite(end - start, written, 1);
Austin Schuhbd06ae42021-03-31 22:48:21 -0700121 now = end;
Brian Silvermanf51499a2020-09-21 12:49:08 -0700122 } else {
123 encoder_->Encode(CopySpanAsDetachedBuffer(span));
Austin Schuhbd06ae42021-03-31 22:48:21 -0700124 now = aos::monotonic_clock::now();
Austin Schuha36c8902019-12-30 18:07:15 -0800125 }
Brian Silvermanf51499a2020-09-21 12:49:08 -0700126
Austin Schuhbd06ae42021-03-31 22:48:21 -0700127 FlushAtThreshold(now);
Austin Schuha36c8902019-12-30 18:07:15 -0800128}
129
Brian Silverman0465fcf2020-09-24 00:29:18 -0700130void DetachedBufferWriter::Close() {
131 if (fd_ == -1) {
132 return;
133 }
134 encoder_->Finish();
135 while (encoder_->queue_size() > 0) {
136 Flush();
137 }
138 if (close(fd_) == -1) {
139 if (errno == ENOSPC) {
140 ran_out_of_space_ = true;
141 } else {
142 PLOG(ERROR) << "Closing log file failed";
143 }
144 }
145 fd_ = -1;
146 VLOG(1) << "Closed " << filename_;
147}
148
Austin Schuha36c8902019-12-30 18:07:15 -0800149void DetachedBufferWriter::Flush() {
Brian Silverman0465fcf2020-09-24 00:29:18 -0700150 if (ran_out_of_space_) {
151 // We don't want any later data to be written after space becomes available,
152 // so refuse to write anything more once we've dropped data because we ran
153 // out of space.
Austin Schuha426f1f2021-03-31 22:27:41 -0700154 if (encoder_) {
155 VLOG(1) << "Ignoring queue: " << encoder_->queue().size();
156 encoder_->Clear(encoder_->queue().size());
157 } else {
158 VLOG(1) << "No queue to ignore";
159 }
160 return;
161 }
162
163 const auto queue = encoder_->queue();
164 if (queue.empty()) {
Brian Silverman0465fcf2020-09-24 00:29:18 -0700165 return;
166 }
Brian Silvermanf51499a2020-09-21 12:49:08 -0700167
Austin Schuha36c8902019-12-30 18:07:15 -0800168 iovec_.clear();
Brian Silvermanf51499a2020-09-21 12:49:08 -0700169 const size_t iovec_size = std::min<size_t>(queue.size(), IOV_MAX);
170 iovec_.resize(iovec_size);
Austin Schuha36c8902019-12-30 18:07:15 -0800171 size_t counted_size = 0;
Brian Silvermanf51499a2020-09-21 12:49:08 -0700172 for (size_t i = 0; i < iovec_size; ++i) {
173 iovec_[i].iov_base = const_cast<uint8_t *>(queue[i].data());
174 iovec_[i].iov_len = queue[i].size();
175 counted_size += iovec_[i].iov_len;
Austin Schuha36c8902019-12-30 18:07:15 -0800176 }
Brian Silvermanf51499a2020-09-21 12:49:08 -0700177
178 const auto start = aos::monotonic_clock::now();
Austin Schuha36c8902019-12-30 18:07:15 -0800179 const ssize_t written = writev(fd_, iovec_.data(), iovec_.size());
Brian Silvermanf51499a2020-09-21 12:49:08 -0700180 const auto end = aos::monotonic_clock::now();
Brian Silverman0465fcf2020-09-24 00:29:18 -0700181 HandleWriteReturn(written, counted_size);
Brian Silvermanf51499a2020-09-21 12:49:08 -0700182
183 encoder_->Clear(iovec_size);
184
185 UpdateStatsForWrite(end - start, written, iovec_size);
186}
187
Brian Silverman0465fcf2020-09-24 00:29:18 -0700188void DetachedBufferWriter::HandleWriteReturn(ssize_t write_return,
189 size_t write_size) {
190 if (write_return == -1 && errno == ENOSPC) {
191 ran_out_of_space_ = true;
192 return;
193 }
194 PCHECK(write_return >= 0) << ": write failed";
195 if (write_return < static_cast<ssize_t>(write_size)) {
196 // Sometimes this happens instead of ENOSPC. On a real filesystem, this
197 // never seems to happen in any other case. If we ever want to log to a
198 // socket, this will happen more often. However, until we get there, we'll
199 // just assume it means we ran out of space.
200 ran_out_of_space_ = true;
201 return;
202 }
203}
204
Brian Silvermanf51499a2020-09-21 12:49:08 -0700205void DetachedBufferWriter::UpdateStatsForWrite(
206 aos::monotonic_clock::duration duration, ssize_t written, int iovec_size) {
207 if (duration > max_write_time_) {
208 max_write_time_ = duration;
209 max_write_time_bytes_ = written;
210 max_write_time_messages_ = iovec_size;
211 }
212 total_write_time_ += duration;
213 ++total_write_count_;
214 total_write_messages_ += iovec_size;
215 total_write_bytes_ += written;
216}
217
Austin Schuhbd06ae42021-03-31 22:48:21 -0700218void DetachedBufferWriter::FlushAtThreshold(
219 aos::monotonic_clock::time_point now) {
Austin Schuha426f1f2021-03-31 22:27:41 -0700220 if (ran_out_of_space_) {
221 // We don't want any later data to be written after space becomes available,
222 // so refuse to write anything more once we've dropped data because we ran
223 // out of space.
224 if (encoder_) {
225 VLOG(1) << "Ignoring queue: " << encoder_->queue().size();
226 encoder_->Clear(encoder_->queue().size());
227 } else {
228 VLOG(1) << "No queue to ignore";
229 }
230 return;
231 }
232
Austin Schuhbd06ae42021-03-31 22:48:21 -0700233 // We don't want to flush the first time through. Otherwise we will flush as
234 // the log file header might be compressing, defeating any parallelism and
235 // queueing there.
236 if (last_flush_time_ == aos::monotonic_clock::min_time) {
237 last_flush_time_ = now;
238 }
239
Brian Silvermanf51499a2020-09-21 12:49:08 -0700240 // Flush if we are at the max number of iovs per writev, because there's no
241 // point queueing up any more data in memory. Also flush once we have enough
Austin Schuhbd06ae42021-03-31 22:48:21 -0700242 // data queued up or if it has been long enough.
Brian Silvermanf51499a2020-09-21 12:49:08 -0700243 while (encoder_->queued_bytes() > static_cast<size_t>(FLAGS_flush_size) ||
Austin Schuhbd06ae42021-03-31 22:48:21 -0700244 encoder_->queue_size() >= IOV_MAX ||
245 now > last_flush_time_ +
246 chrono::duration_cast<chrono::nanoseconds>(
247 chrono::duration<double>(FLAGS_flush_period))) {
248 last_flush_time_ = now;
Brian Silvermanf51499a2020-09-21 12:49:08 -0700249 Flush();
250 }
Austin Schuha36c8902019-12-30 18:07:15 -0800251}
252
253flatbuffers::Offset<MessageHeader> PackMessage(
254 flatbuffers::FlatBufferBuilder *fbb, const Context &context,
255 int channel_index, LogType log_type) {
256 flatbuffers::Offset<flatbuffers::Vector<uint8_t>> data_offset;
257
258 switch (log_type) {
259 case LogType::kLogMessage:
260 case LogType::kLogMessageAndDeliveryTime:
Austin Schuh6f3babe2020-01-26 20:34:50 -0800261 case LogType::kLogRemoteMessage:
Brian Silvermaneaa41d62020-07-08 19:47:35 -0700262 data_offset = fbb->CreateVector(
263 static_cast<const uint8_t *>(context.data), context.size);
Austin Schuha36c8902019-12-30 18:07:15 -0800264 break;
265
266 case LogType::kLogDeliveryTimeOnly:
267 break;
268 }
269
270 MessageHeader::Builder message_header_builder(*fbb);
271 message_header_builder.add_channel_index(channel_index);
Austin Schuh6f3babe2020-01-26 20:34:50 -0800272
273 switch (log_type) {
274 case LogType::kLogRemoteMessage:
275 message_header_builder.add_queue_index(context.remote_queue_index);
276 message_header_builder.add_monotonic_sent_time(
277 context.monotonic_remote_time.time_since_epoch().count());
278 message_header_builder.add_realtime_sent_time(
279 context.realtime_remote_time.time_since_epoch().count());
280 break;
281
282 case LogType::kLogMessage:
283 case LogType::kLogMessageAndDeliveryTime:
284 case LogType::kLogDeliveryTimeOnly:
285 message_header_builder.add_queue_index(context.queue_index);
286 message_header_builder.add_monotonic_sent_time(
287 context.monotonic_event_time.time_since_epoch().count());
288 message_header_builder.add_realtime_sent_time(
289 context.realtime_event_time.time_since_epoch().count());
290 break;
291 }
Austin Schuha36c8902019-12-30 18:07:15 -0800292
293 switch (log_type) {
294 case LogType::kLogMessage:
Austin Schuh6f3babe2020-01-26 20:34:50 -0800295 case LogType::kLogRemoteMessage:
Austin Schuha36c8902019-12-30 18:07:15 -0800296 message_header_builder.add_data(data_offset);
297 break;
298
299 case LogType::kLogMessageAndDeliveryTime:
300 message_header_builder.add_data(data_offset);
301 [[fallthrough]];
302
303 case LogType::kLogDeliveryTimeOnly:
304 message_header_builder.add_monotonic_remote_time(
305 context.monotonic_remote_time.time_since_epoch().count());
306 message_header_builder.add_realtime_remote_time(
307 context.realtime_remote_time.time_since_epoch().count());
308 message_header_builder.add_remote_queue_index(context.remote_queue_index);
309 break;
310 }
311
312 return message_header_builder.Finish();
313}
314
Brian Silvermanf51499a2020-09-21 12:49:08 -0700315SpanReader::SpanReader(std::string_view filename) : filename_(filename) {
Brian Silvermanf59fe3f2020-09-22 21:04:09 -0700316 static const std::string_view kXz = ".xz";
317 if (filename.substr(filename.size() - kXz.size()) == kXz) {
318#if ENABLE_LZMA
319 decoder_ = std::make_unique<LzmaDecoder>(filename);
320#else
321 LOG(FATAL) << "Reading xz-compressed files not supported on this platform";
322#endif
323 } else {
324 decoder_ = std::make_unique<DummyDecoder>(filename);
325 }
Austin Schuh05b70472020-01-01 17:11:17 -0800326}
327
328absl::Span<const uint8_t> SpanReader::ReadMessage() {
329 // Make sure we have enough for the size.
330 if (data_.size() - consumed_data_ < sizeof(flatbuffers::uoffset_t)) {
331 if (!ReadBlock()) {
332 return absl::Span<const uint8_t>();
333 }
334 }
335
336 // Now make sure we have enough for the message.
337 const size_t data_size =
338 flatbuffers::GetPrefixedSize(data_.data() + consumed_data_) +
339 sizeof(flatbuffers::uoffset_t);
Austin Schuhe4fca832020-03-07 16:58:53 -0800340 if (data_size == sizeof(flatbuffers::uoffset_t)) {
341 LOG(ERROR) << "Size of data is zero. Log file end is corrupted, skipping.";
342 LOG(ERROR) << " Rest of log file is "
343 << absl::BytesToHexString(std::string_view(
344 reinterpret_cast<const char *>(data_.data() +
345 consumed_data_),
346 data_.size() - consumed_data_));
347 return absl::Span<const uint8_t>();
348 }
Austin Schuh05b70472020-01-01 17:11:17 -0800349 while (data_.size() < consumed_data_ + data_size) {
350 if (!ReadBlock()) {
351 return absl::Span<const uint8_t>();
352 }
353 }
354
355 // And return it, consuming the data.
356 const uint8_t *data_ptr = data_.data() + consumed_data_;
357
358 consumed_data_ += data_size;
359
360 return absl::Span<const uint8_t>(data_ptr, data_size);
361}
362
Austin Schuh05b70472020-01-01 17:11:17 -0800363bool SpanReader::ReadBlock() {
Brian Silvermanf51499a2020-09-21 12:49:08 -0700364 // This is the amount of data we grab at a time. Doing larger chunks minimizes
365 // syscalls and helps decompressors batch things more efficiently.
Austin Schuh05b70472020-01-01 17:11:17 -0800366 constexpr size_t kReadSize = 256 * 1024;
367
368 // Strip off any unused data at the front.
369 if (consumed_data_ != 0) {
Brian Silvermanf51499a2020-09-21 12:49:08 -0700370 data_.erase_front(consumed_data_);
Austin Schuh05b70472020-01-01 17:11:17 -0800371 consumed_data_ = 0;
372 }
373
374 const size_t starting_size = data_.size();
375
376 // This should automatically grow the backing store. It won't shrink if we
377 // get a small chunk later. This reduces allocations when we want to append
378 // more data.
Brian Silvermanf51499a2020-09-21 12:49:08 -0700379 data_.resize(starting_size + kReadSize);
Austin Schuh05b70472020-01-01 17:11:17 -0800380
Brian Silvermanf51499a2020-09-21 12:49:08 -0700381 const size_t count =
382 decoder_->Read(data_.begin() + starting_size, data_.end());
383 data_.resize(starting_size + count);
Austin Schuh05b70472020-01-01 17:11:17 -0800384 if (count == 0) {
Austin Schuh05b70472020-01-01 17:11:17 -0800385 return false;
386 }
Austin Schuh05b70472020-01-01 17:11:17 -0800387
388 return true;
389}
390
Austin Schuhadd6eb32020-11-09 21:24:26 -0800391std::optional<SizePrefixedFlatbufferVector<LogFileHeader>> ReadHeader(
Austin Schuh3bd4c402020-11-06 18:19:06 -0800392 std::string_view filename) {
Austin Schuh6f3babe2020-01-26 20:34:50 -0800393 SpanReader span_reader(filename);
Austin Schuh6f3babe2020-01-26 20:34:50 -0800394 absl::Span<const uint8_t> config_data = span_reader.ReadMessage();
395
396 // Make sure something was read.
Austin Schuh3bd4c402020-11-06 18:19:06 -0800397 if (config_data == absl::Span<const uint8_t>()) {
398 return std::nullopt;
399 }
Austin Schuh6f3babe2020-01-26 20:34:50 -0800400
Austin Schuh5212cad2020-09-09 23:12:09 -0700401 // And copy the config so we have it forever, removing the size prefix.
Brian Silverman354697a2020-09-22 21:06:32 -0700402 ResizeableBuffer data;
Austin Schuhadd6eb32020-11-09 21:24:26 -0800403 data.resize(config_data.size());
404 memcpy(data.data(), config_data.begin(), data.size());
Austin Schuhe09beb12020-12-11 20:04:27 -0800405 SizePrefixedFlatbufferVector<LogFileHeader> result(std::move(data));
406 if (!result.Verify()) {
407 return std::nullopt;
408 }
409 return result;
Austin Schuh6f3babe2020-01-26 20:34:50 -0800410}
411
Austin Schuhadd6eb32020-11-09 21:24:26 -0800412std::optional<SizePrefixedFlatbufferVector<MessageHeader>> ReadNthMessage(
Austin Schuh3bd4c402020-11-06 18:19:06 -0800413 std::string_view filename, size_t n) {
Austin Schuh5212cad2020-09-09 23:12:09 -0700414 SpanReader span_reader(filename);
415 absl::Span<const uint8_t> data_span = span_reader.ReadMessage();
416 for (size_t i = 0; i < n + 1; ++i) {
417 data_span = span_reader.ReadMessage();
418
419 // Make sure something was read.
Austin Schuh3bd4c402020-11-06 18:19:06 -0800420 if (data_span == absl::Span<const uint8_t>()) {
421 return std::nullopt;
422 }
Austin Schuh5212cad2020-09-09 23:12:09 -0700423 }
424
Brian Silverman354697a2020-09-22 21:06:32 -0700425 // And copy the config so we have it forever, removing the size prefix.
426 ResizeableBuffer data;
Austin Schuhadd6eb32020-11-09 21:24:26 -0800427 data.resize(data_span.size());
428 memcpy(data.data(), data_span.begin(), data.size());
Austin Schuhe09beb12020-12-11 20:04:27 -0800429 SizePrefixedFlatbufferVector<MessageHeader> result(std::move(data));
430 if (!result.Verify()) {
431 return std::nullopt;
432 }
433 return result;
Austin Schuh5212cad2020-09-09 23:12:09 -0700434}
435
Austin Schuh05b70472020-01-01 17:11:17 -0800436MessageReader::MessageReader(std::string_view filename)
Austin Schuh97789fc2020-08-01 14:42:45 -0700437 : span_reader_(filename),
Austin Schuhadd6eb32020-11-09 21:24:26 -0800438 raw_log_file_header_(
439 SizePrefixedFlatbufferVector<LogFileHeader>::Empty()) {
Austin Schuh05b70472020-01-01 17:11:17 -0800440 // Make sure we have enough to read the size.
Austin Schuh97789fc2020-08-01 14:42:45 -0700441 absl::Span<const uint8_t> header_data = span_reader_.ReadMessage();
Austin Schuh05b70472020-01-01 17:11:17 -0800442
443 // Make sure something was read.
Austin Schuh97789fc2020-08-01 14:42:45 -0700444 CHECK(header_data != absl::Span<const uint8_t>())
445 << ": Failed to read header from: " << filename;
Austin Schuh05b70472020-01-01 17:11:17 -0800446
Austin Schuh97789fc2020-08-01 14:42:45 -0700447 // And copy the header data so we have it forever.
Brian Silverman354697a2020-09-22 21:06:32 -0700448 ResizeableBuffer header_data_copy;
Austin Schuhadd6eb32020-11-09 21:24:26 -0800449 header_data_copy.resize(header_data.size());
450 memcpy(header_data_copy.data(), header_data.begin(), header_data_copy.size());
Austin Schuh97789fc2020-08-01 14:42:45 -0700451 raw_log_file_header_ =
Austin Schuhadd6eb32020-11-09 21:24:26 -0800452 SizePrefixedFlatbufferVector<LogFileHeader>(std::move(header_data_copy));
Austin Schuh05b70472020-01-01 17:11:17 -0800453
Austin Schuhcde938c2020-02-02 17:30:07 -0800454 max_out_of_order_duration_ =
Austin Schuha040c3f2021-02-13 16:09:07 -0800455 FLAGS_max_out_of_order > 0
456 ? chrono::duration_cast<chrono::nanoseconds>(
457 chrono::duration<double>(FLAGS_max_out_of_order))
458 : chrono::nanoseconds(log_file_header()->max_out_of_order_duration());
Austin Schuhcde938c2020-02-02 17:30:07 -0800459
460 VLOG(1) << "Opened " << filename << " as node "
461 << FlatbufferToJson(log_file_header()->node());
Austin Schuh05b70472020-01-01 17:11:17 -0800462}
463
Austin Schuhadd6eb32020-11-09 21:24:26 -0800464std::optional<SizePrefixedFlatbufferVector<MessageHeader>>
465MessageReader::ReadMessage() {
Austin Schuh05b70472020-01-01 17:11:17 -0800466 absl::Span<const uint8_t> msg_data = span_reader_.ReadMessage();
467 if (msg_data == absl::Span<const uint8_t>()) {
468 return std::nullopt;
469 }
470
Brian Silverman354697a2020-09-22 21:06:32 -0700471 ResizeableBuffer result_buffer;
Austin Schuhadd6eb32020-11-09 21:24:26 -0800472 result_buffer.resize(msg_data.size());
473 memcpy(result_buffer.data(), msg_data.begin(), result_buffer.size());
474 SizePrefixedFlatbufferVector<MessageHeader> result(std::move(result_buffer));
Austin Schuh05b70472020-01-01 17:11:17 -0800475
476 const monotonic_clock::time_point timestamp = monotonic_clock::time_point(
477 chrono::nanoseconds(result.message().monotonic_sent_time()));
478
479 newest_timestamp_ = std::max(newest_timestamp_, timestamp);
Austin Schuh8bd96322020-02-13 21:18:22 -0800480 VLOG(2) << "Read from " << filename() << " data " << FlatbufferToJson(result);
Austin Schuh6f3babe2020-01-26 20:34:50 -0800481 return std::move(result);
Austin Schuh05b70472020-01-01 17:11:17 -0800482}
483
Austin Schuhc41603c2020-10-11 16:17:37 -0700484PartsMessageReader::PartsMessageReader(LogParts log_parts)
485 : parts_(std::move(log_parts)), message_reader_(parts_.parts[0]) {}
486
Austin Schuhadd6eb32020-11-09 21:24:26 -0800487std::optional<SizePrefixedFlatbufferVector<MessageHeader>>
Austin Schuhc41603c2020-10-11 16:17:37 -0700488PartsMessageReader::ReadMessage() {
489 while (!done_) {
Austin Schuhadd6eb32020-11-09 21:24:26 -0800490 std::optional<SizePrefixedFlatbufferVector<MessageHeader>> message =
Austin Schuhc41603c2020-10-11 16:17:37 -0700491 message_reader_.ReadMessage();
492 if (message) {
493 newest_timestamp_ = message_reader_.newest_timestamp();
Austin Schuh32f68492020-11-08 21:45:51 -0800494 const monotonic_clock::time_point monotonic_sent_time(
495 chrono::nanoseconds(message->message().monotonic_sent_time()));
Austin Schuh4b5c22a2020-11-30 22:58:43 -0800496 // TODO(austin): Does this work with startup? Might need to use the start
497 // time.
498 // TODO(austin): Does this work with startup when we don't know the remote
499 // start time too? Look at one of those logs to compare.
Austin Schuh315b96b2020-12-11 21:21:12 -0800500 if (monotonic_sent_time >
501 parts_.monotonic_start_time + max_out_of_order_duration()) {
502 after_start_ = true;
503 }
504 if (after_start_) {
Austin Schuhb000de62020-12-03 22:00:40 -0800505 CHECK_GE(monotonic_sent_time,
506 newest_timestamp_ - max_out_of_order_duration())
Austin Schuha040c3f2021-02-13 16:09:07 -0800507 << ": Max out of order of " << max_out_of_order_duration().count()
508 << "ns exceeded. " << parts_ << ", start time is "
Austin Schuh315b96b2020-12-11 21:21:12 -0800509 << parts_.monotonic_start_time << " currently reading "
510 << filename();
Austin Schuhb000de62020-12-03 22:00:40 -0800511 }
Austin Schuhc41603c2020-10-11 16:17:37 -0700512 return message;
513 }
514 NextLog();
515 }
Austin Schuh32f68492020-11-08 21:45:51 -0800516 newest_timestamp_ = monotonic_clock::max_time;
Austin Schuhc41603c2020-10-11 16:17:37 -0700517 return std::nullopt;
518}
519
520void PartsMessageReader::NextLog() {
521 if (next_part_index_ == parts_.parts.size()) {
522 done_ = true;
523 return;
524 }
525 message_reader_ = MessageReader(parts_.parts[next_part_index_]);
526 ++next_part_index_;
527}
528
Austin Schuh1be0ce42020-11-29 22:43:26 -0800529bool Message::operator<(const Message &m2) const {
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700530 CHECK_EQ(this->timestamp.boot, m2.timestamp.boot);
Austin Schuhf16ef6a2021-06-30 21:48:17 -0700531
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700532 if (this->timestamp.time < m2.timestamp.time) {
Austin Schuh1be0ce42020-11-29 22:43:26 -0800533 return true;
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700534 } else if (this->timestamp.time > m2.timestamp.time) {
Austin Schuh1be0ce42020-11-29 22:43:26 -0800535 return false;
536 }
537
538 if (this->channel_index < m2.channel_index) {
539 return true;
540 } else if (this->channel_index > m2.channel_index) {
541 return false;
542 }
543
544 return this->queue_index < m2.queue_index;
545}
546
547bool Message::operator>=(const Message &m2) const { return !(*this < m2); }
Austin Schuh8f52ed52020-11-30 23:12:39 -0800548bool Message::operator==(const Message &m2) const {
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700549 CHECK_EQ(this->timestamp.boot, m2.timestamp.boot);
Austin Schuhf16ef6a2021-06-30 21:48:17 -0700550
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700551 return timestamp.time == m2.timestamp.time &&
552 channel_index == m2.channel_index && queue_index == m2.queue_index;
Austin Schuh8f52ed52020-11-30 23:12:39 -0800553}
Austin Schuh1be0ce42020-11-29 22:43:26 -0800554
555std::ostream &operator<<(std::ostream &os, const Message &m) {
556 os << "{.channel_index=" << m.channel_index
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700557 << ", .queue_index=" << m.queue_index << ", .timestamp=" << m.timestamp;
Austin Schuhd2f96102020-12-01 20:27:29 -0800558 if (m.data.Verify()) {
559 os << ", .data="
560 << aos::FlatbufferToJson(m.data,
561 {.multi_line = false, .max_vector_size = 1});
562 }
563 os << "}";
564 return os;
565}
566
567std::ostream &operator<<(std::ostream &os, const TimestampedMessage &m) {
568 os << "{.channel_index=" << m.channel_index
569 << ", .queue_index=" << m.queue_index
570 << ", .monotonic_event_time=" << m.monotonic_event_time
571 << ", .realtime_event_time=" << m.realtime_event_time;
572 if (m.remote_queue_index != 0xffffffff) {
573 os << ", .remote_queue_index=" << m.remote_queue_index;
574 }
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700575 if (m.monotonic_remote_time != BootTimestamp::min_time()) {
Austin Schuhd2f96102020-12-01 20:27:29 -0800576 os << ", .monotonic_remote_time=" << m.monotonic_remote_time;
577 }
578 if (m.realtime_remote_time != realtime_clock::min_time) {
579 os << ", .realtime_remote_time=" << m.realtime_remote_time;
580 }
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700581 if (m.monotonic_timestamp_time != BootTimestamp::min_time()) {
Austin Schuh8bf1e632021-01-02 22:41:04 -0800582 os << ", .monotonic_timestamp_time=" << m.monotonic_timestamp_time;
583 }
Austin Schuhd2f96102020-12-01 20:27:29 -0800584 if (m.data.Verify()) {
585 os << ", .data="
586 << aos::FlatbufferToJson(m.data,
587 {.multi_line = false, .max_vector_size = 1});
588 }
589 os << "}";
Austin Schuh1be0ce42020-11-29 22:43:26 -0800590 return os;
591}
592
Austin Schuh4b5c22a2020-11-30 22:58:43 -0800593LogPartsSorter::LogPartsSorter(LogParts log_parts)
594 : parts_message_reader_(log_parts) {}
595
596Message *LogPartsSorter::Front() {
597 // Queue up data until enough data has been queued that the front message is
598 // sorted enough to be safe to pop. This may do nothing, so we should make
599 // sure the nothing path is checked quickly.
600 if (sorted_until() != monotonic_clock::max_time) {
601 while (true) {
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700602 if (!messages_.empty() && messages_.begin()->timestamp.time < sorted_until() &&
Austin Schuhb000de62020-12-03 22:00:40 -0800603 sorted_until() >= monotonic_start_time()) {
Austin Schuh4b5c22a2020-11-30 22:58:43 -0800604 break;
605 }
606
607 std::optional<SizePrefixedFlatbufferVector<MessageHeader>> m =
608 parts_message_reader_.ReadMessage();
609 // No data left, sorted forever, work through what is left.
610 if (!m) {
611 sorted_until_ = monotonic_clock::max_time;
612 break;
613 }
614
Austin Schuhf16ef6a2021-06-30 21:48:17 -0700615 messages_.insert(Message{
616 .channel_index = m.value().message().channel_index(),
617 .queue_index = m.value().message().queue_index(),
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700618 .timestamp =
619 BootTimestamp{
620 .boot = parts().boot_count,
621 .time = monotonic_clock::time_point(std::chrono::nanoseconds(
622 m.value().message().monotonic_sent_time()))},
Austin Schuhf16ef6a2021-06-30 21:48:17 -0700623 .data = std::move(m.value())});
Austin Schuh4b5c22a2020-11-30 22:58:43 -0800624
625 // Now, update sorted_until_ to match the new message.
626 if (parts_message_reader_.newest_timestamp() >
627 monotonic_clock::min_time +
628 parts_message_reader_.max_out_of_order_duration()) {
629 sorted_until_ = parts_message_reader_.newest_timestamp() -
630 parts_message_reader_.max_out_of_order_duration();
631 } else {
632 sorted_until_ = monotonic_clock::min_time;
633 }
634 }
635 }
636
637 // Now that we have enough data queued, return a pointer to the oldest piece
638 // of data if it exists.
639 if (messages_.empty()) {
Austin Schuhb000de62020-12-03 22:00:40 -0800640 last_message_time_ = monotonic_clock::max_time;
Austin Schuh4b5c22a2020-11-30 22:58:43 -0800641 return nullptr;
642 }
643
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700644 CHECK_GE(messages_.begin()->timestamp.time, last_message_time_)
Austin Schuh315b96b2020-12-11 21:21:12 -0800645 << DebugString() << " reading " << parts_message_reader_.filename();
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700646 last_message_time_ = messages_.begin()->timestamp.time;
Austin Schuh4b5c22a2020-11-30 22:58:43 -0800647 return &(*messages_.begin());
648}
649
650void LogPartsSorter::PopFront() { messages_.erase(messages_.begin()); }
651
652std::string LogPartsSorter::DebugString() const {
653 std::stringstream ss;
654 ss << "messages: [\n";
Austin Schuh315b96b2020-12-11 21:21:12 -0800655 int count = 0;
656 bool no_dots = true;
Austin Schuh4b5c22a2020-11-30 22:58:43 -0800657 for (const Message &m : messages_) {
Austin Schuh315b96b2020-12-11 21:21:12 -0800658 if (count < 15 || count > static_cast<int>(messages_.size()) - 15) {
659 ss << m << "\n";
660 } else if (no_dots) {
661 ss << "...\n";
662 no_dots = false;
663 }
664 ++count;
Austin Schuh4b5c22a2020-11-30 22:58:43 -0800665 }
666 ss << "] <- " << parts_message_reader_.filename();
667 return ss.str();
668}
669
Austin Schuhd2f96102020-12-01 20:27:29 -0800670NodeMerger::NodeMerger(std::vector<LogParts> parts) {
671 CHECK_GE(parts.size(), 1u);
Austin Schuh715adc12021-06-29 22:07:39 -0700672 // Enforce that we are sorting things only from a single node from a single
673 // boot.
674 const std::string_view part0_node = parts[0].node;
675 const std::string_view part0_source_boot_uuid = parts[0].source_boot_uuid;
Austin Schuhd2f96102020-12-01 20:27:29 -0800676 for (size_t i = 1; i < parts.size(); ++i) {
677 CHECK_EQ(part0_node, parts[i].node) << ": Can't merge different nodes.";
Austin Schuh715adc12021-06-29 22:07:39 -0700678 CHECK_EQ(part0_source_boot_uuid, parts[i].source_boot_uuid)
679 << ": Can't merge different boots.";
Austin Schuhd2f96102020-12-01 20:27:29 -0800680 }
Austin Schuh715adc12021-06-29 22:07:39 -0700681
682 node_ = configuration::GetNodeIndex(parts[0].config.get(), part0_node);
683
Austin Schuhd2f96102020-12-01 20:27:29 -0800684 for (LogParts &part : parts) {
685 parts_sorters_.emplace_back(std::move(part));
686 }
687
Austin Schuhd2f96102020-12-01 20:27:29 -0800688 monotonic_start_time_ = monotonic_clock::max_time;
689 realtime_start_time_ = realtime_clock::max_time;
690 for (const LogPartsSorter &parts_sorter : parts_sorters_) {
691 if (parts_sorter.monotonic_start_time() < monotonic_start_time_) {
692 monotonic_start_time_ = parts_sorter.monotonic_start_time();
693 realtime_start_time_ = parts_sorter.realtime_start_time();
694 }
695 }
696}
Austin Schuh8f52ed52020-11-30 23:12:39 -0800697
Austin Schuh0ca51f32020-12-25 21:51:45 -0800698std::vector<const LogParts *> NodeMerger::Parts() const {
699 std::vector<const LogParts *> p;
700 p.reserve(parts_sorters_.size());
701 for (const LogPartsSorter &parts_sorter : parts_sorters_) {
702 p.emplace_back(&parts_sorter.parts());
703 }
704 return p;
705}
706
Austin Schuh8f52ed52020-11-30 23:12:39 -0800707Message *NodeMerger::Front() {
708 // Return the current Front if we have one, otherwise go compute one.
709 if (current_ != nullptr) {
Austin Schuhb000de62020-12-03 22:00:40 -0800710 Message *result = current_->Front();
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700711 CHECK_GE(result->timestamp.time, last_message_time_);
Austin Schuhb000de62020-12-03 22:00:40 -0800712 return result;
Austin Schuh8f52ed52020-11-30 23:12:39 -0800713 }
714
715 // Otherwise, do a simple search for the oldest message, deduplicating any
716 // duplicates.
717 Message *oldest = nullptr;
718 sorted_until_ = monotonic_clock::max_time;
Austin Schuhd2f96102020-12-01 20:27:29 -0800719 for (LogPartsSorter &parts_sorter : parts_sorters_) {
720 Message *m = parts_sorter.Front();
Austin Schuh8f52ed52020-11-30 23:12:39 -0800721 if (!m) {
Austin Schuhd2f96102020-12-01 20:27:29 -0800722 sorted_until_ = std::min(sorted_until_, parts_sorter.sorted_until());
Austin Schuh8f52ed52020-11-30 23:12:39 -0800723 continue;
724 }
725 if (oldest == nullptr || *m < *oldest) {
726 oldest = m;
Austin Schuhd2f96102020-12-01 20:27:29 -0800727 current_ = &parts_sorter;
Austin Schuh8f52ed52020-11-30 23:12:39 -0800728 } else if (*m == *oldest) {
Austin Schuh8bf1e632021-01-02 22:41:04 -0800729 // Found a duplicate. If there is a choice, we want the one which has the
730 // timestamp time.
731 if (!m->data.message().has_monotonic_timestamp_time()) {
732 parts_sorter.PopFront();
733 } else if (!oldest->data.message().has_monotonic_timestamp_time()) {
734 current_->PopFront();
735 current_ = &parts_sorter;
736 oldest = m;
737 } else {
738 CHECK_EQ(m->data.message().monotonic_timestamp_time(),
739 oldest->data.message().monotonic_timestamp_time());
740 parts_sorter.PopFront();
741 }
Austin Schuh8f52ed52020-11-30 23:12:39 -0800742 }
743
744 // PopFront may change this, so compute it down here.
Austin Schuhd2f96102020-12-01 20:27:29 -0800745 sorted_until_ = std::min(sorted_until_, parts_sorter.sorted_until());
Austin Schuh8f52ed52020-11-30 23:12:39 -0800746 }
747
Austin Schuhb000de62020-12-03 22:00:40 -0800748 if (oldest) {
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700749 CHECK_GE(oldest->timestamp.time, last_message_time_);
750 last_message_time_ = oldest->timestamp.time;
Austin Schuhb000de62020-12-03 22:00:40 -0800751 } else {
752 last_message_time_ = monotonic_clock::max_time;
753 }
754
Austin Schuh8f52ed52020-11-30 23:12:39 -0800755 // Return the oldest message found. This will be nullptr if nothing was
756 // found, indicating there is nothing left.
757 return oldest;
758}
759
760void NodeMerger::PopFront() {
761 CHECK(current_ != nullptr) << "Popping before calling Front()";
762 current_->PopFront();
763 current_ = nullptr;
764}
765
Austin Schuhf16ef6a2021-06-30 21:48:17 -0700766BootMerger::BootMerger(std::vector<LogParts> files) {
767 std::vector<std::vector<LogParts>> boots;
768
769 // Now, we need to split things out by boot.
770 for (size_t i = 0; i < files.size(); ++i) {
771 LOG(INFO) << "Trying file " << i;
772 const size_t boot_count = files[i].boot_count;
773 LOG(INFO) << "Boot count " << boot_count;
774 if (boot_count + 1 > boots.size()) {
775 boots.resize(boot_count + 1);
776 }
777 boots[boot_count].emplace_back(std::move(files[i]));
778 }
779
780 node_mergers_.reserve(boots.size());
781 for (size_t i = 0; i < boots.size(); ++i) {
782 LOG(INFO) << "Boot " << i;
783 for (auto &p : boots[i]) {
784 LOG(INFO) << "Part " << p;
785 }
786 node_mergers_.emplace_back(
787 std::make_unique<NodeMerger>(std::move(boots[i])));
788 }
789}
790
791Message *BootMerger::Front() {
792 Message *result = node_mergers_[index_]->Front();
793
794 if (result != nullptr) {
795 return result;
796 }
797
798 if (index_ + 1u == node_mergers_.size()) {
799 // At the end of the last node merger, just return.
800 return nullptr;
801 } else {
802 ++index_;
803 return Front();
804 }
805}
806
807void BootMerger::PopFront() { node_mergers_[index_]->PopFront(); }
808
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700809std::vector<const LogParts *> BootMerger::Parts() const {
810 std::vector<const LogParts *> results;
811 for (const std::unique_ptr<NodeMerger> &node_merger : node_mergers_) {
812 std::vector<const LogParts *> node_parts = node_merger->Parts();
813
814 results.insert(results.end(), std::make_move_iterator(node_parts.begin()),
815 std::make_move_iterator(node_parts.end()));
816 }
817
818 return results;
819}
820
Austin Schuhd2f96102020-12-01 20:27:29 -0800821TimestampMapper::TimestampMapper(std::vector<LogParts> parts)
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700822 : boot_merger_(std::move(parts)),
Austin Schuh79b30942021-01-24 22:32:21 -0800823 timestamp_callback_([](TimestampedMessage *) {}) {
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700824 for (const LogParts *part : boot_merger_.Parts()) {
Austin Schuh0ca51f32020-12-25 21:51:45 -0800825 if (!configuration_) {
826 configuration_ = part->config;
827 } else {
828 CHECK_EQ(configuration_.get(), part->config.get());
829 }
830 }
831 const Configuration *config = configuration_.get();
Austin Schuhd2f96102020-12-01 20:27:29 -0800832 // Only fill out nodes_data_ if there are nodes. Otherwise everything gets
833 // pretty simple.
834 if (configuration::MultiNode(config)) {
835 nodes_data_.resize(config->nodes()->size());
836 const Node *my_node = config->nodes()->Get(node());
837 for (size_t node_index = 0; node_index < nodes_data_.size(); ++node_index) {
838 const Node *node = config->nodes()->Get(node_index);
839 NodeData *node_data = &nodes_data_[node_index];
840 node_data->channels.resize(config->channels()->size());
841 // We should save the channel if it is delivered to the node represented
842 // by the NodeData, but not sent by that node. That combo means it is
843 // forwarded.
844 size_t channel_index = 0;
845 node_data->any_delivered = false;
846 for (const Channel *channel : *config->channels()) {
847 node_data->channels[channel_index].delivered =
848 configuration::ChannelIsReadableOnNode(channel, node) &&
Austin Schuhb3dbb6d2021-01-02 17:29:35 -0800849 configuration::ChannelIsSendableOnNode(channel, my_node) &&
850 (my_node != node);
Austin Schuhd2f96102020-12-01 20:27:29 -0800851 node_data->any_delivered = node_data->any_delivered ||
852 node_data->channels[channel_index].delivered;
853 ++channel_index;
854 }
855 }
856
857 for (const Channel *channel : *config->channels()) {
858 source_node_.emplace_back(configuration::GetNodeIndex(
859 config, channel->source_node()->string_view()));
860 }
861 }
862}
863
864void TimestampMapper::AddPeer(TimestampMapper *timestamp_mapper) {
Austin Schuh0ca51f32020-12-25 21:51:45 -0800865 CHECK(configuration::MultiNode(configuration()));
Austin Schuhd2f96102020-12-01 20:27:29 -0800866 CHECK_NE(timestamp_mapper->node(), node());
867 CHECK_LT(timestamp_mapper->node(), nodes_data_.size());
868
869 NodeData *node_data = &nodes_data_[timestamp_mapper->node()];
870 // Only set it if this node delivers to the peer timestamp_mapper. Otherwise
871 // we could needlessly save data.
872 if (node_data->any_delivered) {
Austin Schuh87dd3832021-01-01 23:07:31 -0800873 VLOG(1) << "Registering on node " << node() << " for peer node "
874 << timestamp_mapper->node();
Austin Schuhd2f96102020-12-01 20:27:29 -0800875 CHECK(timestamp_mapper->nodes_data_[node()].peer == nullptr);
876
877 timestamp_mapper->nodes_data_[node()].peer = this;
878 }
879}
880
Austin Schuh79b30942021-01-24 22:32:21 -0800881void TimestampMapper::QueueMessage(Message *m) {
882 matched_messages_.emplace_back(TimestampedMessage{
Austin Schuhd2f96102020-12-01 20:27:29 -0800883 .channel_index = m->channel_index,
884 .queue_index = m->queue_index,
885 .monotonic_event_time = m->timestamp,
886 .realtime_event_time = aos::realtime_clock::time_point(
887 std::chrono::nanoseconds(m->data.message().realtime_sent_time())),
888 .remote_queue_index = 0xffffffff,
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700889 .monotonic_remote_time = BootTimestamp::min_time(),
Austin Schuhd2f96102020-12-01 20:27:29 -0800890 .realtime_remote_time = realtime_clock::min_time,
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700891 .monotonic_timestamp_time = BootTimestamp::min_time(),
Austin Schuh79b30942021-01-24 22:32:21 -0800892 .data = std::move(m->data)});
Austin Schuhd2f96102020-12-01 20:27:29 -0800893}
894
895TimestampedMessage *TimestampMapper::Front() {
896 // No need to fetch anything new. A previous message still exists.
897 switch (first_message_) {
898 case FirstMessage::kNeedsUpdate:
899 break;
900 case FirstMessage::kInMessage:
Austin Schuh79b30942021-01-24 22:32:21 -0800901 return &matched_messages_.front();
Austin Schuhd2f96102020-12-01 20:27:29 -0800902 case FirstMessage::kNullptr:
903 return nullptr;
904 }
905
Austin Schuh79b30942021-01-24 22:32:21 -0800906 if (matched_messages_.empty()) {
907 if (!QueueMatched()) {
908 first_message_ = FirstMessage::kNullptr;
909 return nullptr;
910 }
911 }
912 first_message_ = FirstMessage::kInMessage;
913 return &matched_messages_.front();
914}
915
916bool TimestampMapper::QueueMatched() {
Austin Schuhd2f96102020-12-01 20:27:29 -0800917 if (nodes_data_.empty()) {
918 // Simple path. We are single node, so there are no timestamps to match!
919 CHECK_EQ(messages_.size(), 0u);
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700920 Message *m = boot_merger_.Front();
Austin Schuhd2f96102020-12-01 20:27:29 -0800921 if (!m) {
Austin Schuh79b30942021-01-24 22:32:21 -0800922 return false;
Austin Schuhd2f96102020-12-01 20:27:29 -0800923 }
Austin Schuh79b30942021-01-24 22:32:21 -0800924 // Enqueue this message into matched_messages_ so we have a place to
925 // associate remote timestamps, and return it.
926 QueueMessage(m);
Austin Schuhd2f96102020-12-01 20:27:29 -0800927
Austin Schuh79b30942021-01-24 22:32:21 -0800928 CHECK_GE(matched_messages_.back().monotonic_event_time, last_message_time_);
929 last_message_time_ = matched_messages_.back().monotonic_event_time;
930
931 // We are thin wrapper around node_merger. Call it directly.
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700932 boot_merger_.PopFront();
Austin Schuh79b30942021-01-24 22:32:21 -0800933 timestamp_callback_(&matched_messages_.back());
934 return true;
Austin Schuhd2f96102020-12-01 20:27:29 -0800935 }
936
937 // We need to only add messages to the list so they get processed for messages
938 // which are delivered. Reuse the flow below which uses messages_ by just
939 // adding the new message to messages_ and continuing.
940 if (messages_.empty()) {
941 if (!Queue()) {
942 // Found nothing to add, we are out of data!
Austin Schuh79b30942021-01-24 22:32:21 -0800943 return false;
Austin Schuhd2f96102020-12-01 20:27:29 -0800944 }
945
946 // Now that it has been added (and cannibalized), forget about it upstream.
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700947 boot_merger_.PopFront();
Austin Schuhd2f96102020-12-01 20:27:29 -0800948 }
949
950 Message *m = &(messages_.front());
951
952 if (source_node_[m->channel_index] == node()) {
953 // From us, just forward it on, filling the remote data in as invalid.
Austin Schuh79b30942021-01-24 22:32:21 -0800954 QueueMessage(m);
955 CHECK_GE(matched_messages_.back().monotonic_event_time, last_message_time_);
956 last_message_time_ = matched_messages_.back().monotonic_event_time;
957 messages_.pop_front();
958 timestamp_callback_(&matched_messages_.back());
959 return true;
Austin Schuhd2f96102020-12-01 20:27:29 -0800960 } else {
961 // Got a timestamp, find the matching remote data, match it, and return it.
962 Message data = MatchingMessageFor(*m);
963
964 // Return the data from the remote. The local message only has timestamp
965 // info which isn't relevant anymore once extracted.
Austin Schuh79b30942021-01-24 22:32:21 -0800966 matched_messages_.emplace_back(TimestampedMessage{
Austin Schuhd2f96102020-12-01 20:27:29 -0800967 .channel_index = m->channel_index,
968 .queue_index = m->queue_index,
969 .monotonic_event_time = m->timestamp,
970 .realtime_event_time = aos::realtime_clock::time_point(
971 std::chrono::nanoseconds(m->data.message().realtime_sent_time())),
972 .remote_queue_index = m->data.message().remote_queue_index(),
973 .monotonic_remote_time =
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700974 // TODO(austin): 0 is wrong...
975 {0, monotonic_clock::time_point(std::chrono::nanoseconds(
976 m->data.message().monotonic_remote_time()))},
Austin Schuhd2f96102020-12-01 20:27:29 -0800977 .realtime_remote_time = realtime_clock::time_point(
978 std::chrono::nanoseconds(m->data.message().realtime_remote_time())),
Austin Schuh8bf1e632021-01-02 22:41:04 -0800979 .monotonic_timestamp_time =
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700980 {0, monotonic_clock::time_point(std::chrono::nanoseconds(
981 m->data.message().monotonic_timestamp_time()))},
Austin Schuh79b30942021-01-24 22:32:21 -0800982 .data = std::move(data.data)});
983 CHECK_GE(matched_messages_.back().monotonic_event_time, last_message_time_);
984 last_message_time_ = matched_messages_.back().monotonic_event_time;
985 // Since messages_ holds the data, drop it.
986 messages_.pop_front();
987 timestamp_callback_(&matched_messages_.back());
988 return true;
989 }
990}
991
Austin Schuh2dc8c7d2021-07-01 17:41:28 -0700992void TimestampMapper::QueueUntil(BootTimestamp queue_time) {
Austin Schuh79b30942021-01-24 22:32:21 -0800993 while (last_message_time_ <= queue_time) {
994 if (!QueueMatched()) {
995 return;
996 }
Austin Schuhd2f96102020-12-01 20:27:29 -0800997 }
998}
999
Austin Schuhe639ea12021-01-25 13:00:22 -08001000void TimestampMapper::QueueFor(chrono::nanoseconds time_estimation_buffer) {
Austin Schuh2dc8c7d2021-07-01 17:41:28 -07001001 // Note: queueing for time doesn't really work well across boots. So we just
1002 // assume that if you are using this, you only care about the current boot.
1003 //
1004 // TODO(austin): Is that the right concept?
1005 //
Austin Schuhe639ea12021-01-25 13:00:22 -08001006 // Make sure we have something queued first. This makes the end time
1007 // calculation simpler, and is typically what folks want regardless.
1008 if (matched_messages_.empty()) {
1009 if (!QueueMatched()) {
1010 return;
1011 }
1012 }
1013
1014 const aos::monotonic_clock::time_point end_queue_time =
Austin Schuh2dc8c7d2021-07-01 17:41:28 -07001015 std::max(monotonic_start_time(
1016 matched_messages_.front().monotonic_event_time.boot),
1017 matched_messages_.front().monotonic_event_time.time) +
Austin Schuhe639ea12021-01-25 13:00:22 -08001018 time_estimation_buffer;
1019
1020 // Place sorted messages on the list until we have
1021 // --time_estimation_buffer_seconds seconds queued up (but queue at least
1022 // until the log starts).
Austin Schuh2dc8c7d2021-07-01 17:41:28 -07001023 while (end_queue_time >= last_message_time_.time) {
Austin Schuhe639ea12021-01-25 13:00:22 -08001024 if (!QueueMatched()) {
1025 return;
1026 }
1027 }
1028}
1029
Austin Schuhd2f96102020-12-01 20:27:29 -08001030void TimestampMapper::PopFront() {
1031 CHECK(first_message_ != FirstMessage::kNeedsUpdate);
1032 first_message_ = FirstMessage::kNeedsUpdate;
1033
Austin Schuh79b30942021-01-24 22:32:21 -08001034 matched_messages_.pop_front();
Austin Schuhd2f96102020-12-01 20:27:29 -08001035}
1036
1037Message TimestampMapper::MatchingMessageFor(const Message &message) {
Austin Schuhd2f96102020-12-01 20:27:29 -08001038 // Figure out what queue index we are looking for.
1039 CHECK(message.data.message().has_remote_queue_index());
1040 const uint32_t remote_queue_index =
1041 message.data.message().remote_queue_index();
1042
1043 CHECK(message.data.message().has_monotonic_remote_time());
1044 CHECK(message.data.message().has_realtime_remote_time());
1045
Austin Schuh2dc8c7d2021-07-01 17:41:28 -07001046 const BootTimestamp monotonic_remote_time{
1047 .boot = 0,
1048 .time = monotonic_clock::time_point(std::chrono::nanoseconds(
1049 message.data.message().monotonic_remote_time()))};
Austin Schuhd2f96102020-12-01 20:27:29 -08001050 const realtime_clock::time_point realtime_remote_time(
1051 std::chrono::nanoseconds(message.data.message().realtime_remote_time()));
1052
Austin Schuhfecf1d82020-12-19 16:57:28 -08001053 TimestampMapper *peer = nodes_data_[source_node_[message.channel_index]].peer;
1054
1055 // We only register the peers which we have data for. So, if we are being
1056 // asked to pull a timestamp from a peer which doesn't exist, return an empty
1057 // message.
1058 if (peer == nullptr) {
Austin Schuh2dc8c7d2021-07-01 17:41:28 -07001059 // TODO(austin): Make sure the tests hit all these paths with a boot count
1060 // of 1...
Austin Schuhfecf1d82020-12-19 16:57:28 -08001061 return Message{
1062 .channel_index = message.channel_index,
1063 .queue_index = remote_queue_index,
1064 .timestamp = monotonic_remote_time,
1065 .data = SizePrefixedFlatbufferVector<MessageHeader>::Empty()};
1066 }
1067
1068 // The queue which will have the matching data, if available.
1069 std::deque<Message> *data_queue =
1070 &peer->nodes_data_[node()].channels[message.channel_index].messages;
1071
Austin Schuh79b30942021-01-24 22:32:21 -08001072 peer->QueueUnmatchedUntil(monotonic_remote_time);
Austin Schuhd2f96102020-12-01 20:27:29 -08001073
1074 if (data_queue->empty()) {
1075 return Message{
1076 .channel_index = message.channel_index,
1077 .queue_index = remote_queue_index,
1078 .timestamp = monotonic_remote_time,
1079 .data = SizePrefixedFlatbufferVector<MessageHeader>::Empty()};
1080 }
1081
Austin Schuhd2f96102020-12-01 20:27:29 -08001082 if (remote_queue_index < data_queue->front().queue_index ||
1083 remote_queue_index > data_queue->back().queue_index) {
1084 return Message{
1085 .channel_index = message.channel_index,
1086 .queue_index = remote_queue_index,
1087 .timestamp = monotonic_remote_time,
1088 .data = SizePrefixedFlatbufferVector<MessageHeader>::Empty()};
1089 }
1090
Austin Schuh993ccb52020-12-12 15:59:32 -08001091 // The algorithm below is constant time with some assumptions. We need there
1092 // to be no missing messages in the data stream. This also assumes a queue
1093 // hasn't wrapped. That is conservative, but should let us get started.
1094 if (data_queue->back().queue_index - data_queue->front().queue_index + 1u ==
1095 data_queue->size()) {
1096 // Pull the data out and confirm that the timestamps match as expected.
1097 Message result = std::move(
1098 (*data_queue)[remote_queue_index - data_queue->front().queue_index]);
1099
1100 CHECK_EQ(result.timestamp, monotonic_remote_time)
1101 << ": Queue index matches, but timestamp doesn't. Please investigate!";
1102 CHECK_EQ(realtime_clock::time_point(std::chrono::nanoseconds(
1103 result.data.message().realtime_sent_time())),
1104 realtime_remote_time)
1105 << ": Queue index matches, but timestamp doesn't. Please investigate!";
1106 // Now drop the data off the front. We have deduplicated timestamps, so we
1107 // are done. And all the data is in order.
1108 data_queue->erase(data_queue->begin(),
1109 data_queue->begin() + (1 + remote_queue_index -
1110 data_queue->front().queue_index));
1111 return result;
1112 } else {
1113 auto it = std::find_if(data_queue->begin(), data_queue->end(),
1114 [remote_queue_index](const Message &m) {
1115 return m.queue_index == remote_queue_index;
1116 });
1117 if (it == data_queue->end()) {
1118 return Message{
1119 .channel_index = message.channel_index,
1120 .queue_index = remote_queue_index,
1121 .timestamp = monotonic_remote_time,
1122 .data = SizePrefixedFlatbufferVector<MessageHeader>::Empty()};
1123 }
1124
1125 Message result = std::move(*it);
1126
1127 CHECK_EQ(result.timestamp, monotonic_remote_time)
1128 << ": Queue index matches, but timestamp doesn't. Please investigate!";
1129 CHECK_EQ(realtime_clock::time_point(std::chrono::nanoseconds(
1130 result.data.message().realtime_sent_time())),
1131 realtime_remote_time)
1132 << ": Queue index matches, but timestamp doesn't. Please investigate!";
1133
1134 data_queue->erase(it);
1135
1136 return result;
1137 }
Austin Schuhd2f96102020-12-01 20:27:29 -08001138}
1139
Austin Schuh2dc8c7d2021-07-01 17:41:28 -07001140void TimestampMapper::QueueUnmatchedUntil(BootTimestamp t) {
Austin Schuhd2f96102020-12-01 20:27:29 -08001141 if (queued_until_ > t) {
1142 return;
1143 }
1144 while (true) {
1145 if (!messages_.empty() && messages_.back().timestamp > t) {
1146 queued_until_ = std::max(queued_until_, messages_.back().timestamp);
1147 return;
1148 }
1149
1150 if (!Queue()) {
1151 // Found nothing to add, we are out of data!
Austin Schuh2dc8c7d2021-07-01 17:41:28 -07001152 queued_until_ = BootTimestamp::max_time();
Austin Schuhd2f96102020-12-01 20:27:29 -08001153 return;
1154 }
1155
1156 // Now that it has been added (and cannibalized), forget about it upstream.
Austin Schuh2dc8c7d2021-07-01 17:41:28 -07001157 boot_merger_.PopFront();
Austin Schuhd2f96102020-12-01 20:27:29 -08001158 }
1159}
1160
1161bool TimestampMapper::Queue() {
Austin Schuh2dc8c7d2021-07-01 17:41:28 -07001162 Message *m = boot_merger_.Front();
Austin Schuhd2f96102020-12-01 20:27:29 -08001163 if (m == nullptr) {
1164 return false;
1165 }
1166 for (NodeData &node_data : nodes_data_) {
1167 if (!node_data.any_delivered) continue;
1168 if (node_data.channels[m->channel_index].delivered) {
1169 // TODO(austin): This copies the data... Probably not worth stressing
1170 // about yet.
1171 // TODO(austin): Bound how big this can get. We tend not to send massive
1172 // data, so we can probably ignore this for a bit.
1173 node_data.channels[m->channel_index].messages.emplace_back(*m);
1174 }
1175 }
1176
1177 messages_.emplace_back(std::move(*m));
1178 return true;
1179}
1180
1181std::string TimestampMapper::DebugString() const {
1182 std::stringstream ss;
1183 ss << "node " << node() << " [\n";
1184 for (const Message &message : messages_) {
1185 ss << " " << message << "\n";
1186 }
1187 ss << "] queued_until " << queued_until_;
1188 for (const NodeData &ns : nodes_data_) {
1189 if (ns.peer == nullptr) continue;
1190 ss << "\nnode " << ns.peer->node() << " remote_data [\n";
1191 size_t channel_index = 0;
1192 for (const NodeData::ChannelData &channel_data :
1193 ns.peer->nodes_data_[node()].channels) {
1194 if (channel_data.messages.empty()) {
1195 continue;
1196 }
Austin Schuhb000de62020-12-03 22:00:40 -08001197
Austin Schuhd2f96102020-12-01 20:27:29 -08001198 ss << " channel " << channel_index << " [\n";
1199 for (const Message &m : channel_data.messages) {
1200 ss << " " << m << "\n";
1201 }
1202 ss << " ]\n";
1203 ++channel_index;
1204 }
1205 ss << "] queued_until " << ns.peer->queued_until_;
1206 }
1207 return ss.str();
1208}
1209
Austin Schuhee711052020-08-24 16:06:09 -07001210std::string MaybeNodeName(const Node *node) {
1211 if (node != nullptr) {
1212 return node->name()->str() + " ";
1213 }
1214 return "";
1215}
1216
Brian Silvermanf51499a2020-09-21 12:49:08 -07001217} // namespace aos::logger