blob: 798cfa4f297ef04c83786a555d8be4b6361faa97 [file] [log] [blame]
Ferran Balaguer73882172019-09-02 16:39:42 +01001//
2// Copyright © 2017 Arm Ltd. All rights reserved.
3// SPDX-License-Identifier: MIT
4//
5
6#include "ProfilingUtils.hpp"
7
Ferran Balaguer47d0fe92019-09-04 16:47:34 +01008#include <armnn/Version.hpp>
Matteo Martincigh6db5f202019-09-05 12:02:04 +01009#include <armnn/Conversion.hpp>
Ferran Balaguer47d0fe92019-09-04 16:47:34 +010010
Ferran Balaguer73882172019-09-02 16:39:42 +010011#include <boost/assert.hpp>
12
Ferran Balaguer47d0fe92019-09-04 16:47:34 +010013#include <fstream>
Matteo Martincighab173e92019-09-05 12:02:04 +010014#include <limits>
Ferran Balaguer47d0fe92019-09-04 16:47:34 +010015
Ferran Balaguer73882172019-09-02 16:39:42 +010016namespace armnn
17{
18
19namespace profiling
20{
21
Matteo Martincigh6db5f202019-09-05 12:02:04 +010022namespace
Matteo Martincighab173e92019-09-05 12:02:04 +010023{
Matteo Martincighab173e92019-09-05 12:02:04 +010024
Matteo Martincigh6db5f202019-09-05 12:02:04 +010025void ThrowIfCantGenerateNextUid(uint16_t uid, uint16_t cores = 0)
26{
Matteo Martincighab173e92019-09-05 12:02:04 +010027 // Check that it is possible to generate the next UID without causing an overflow
Matteo Martincigh6db5f202019-09-05 12:02:04 +010028 switch (cores)
Matteo Martincighab173e92019-09-05 12:02:04 +010029 {
Matteo Martincigh6db5f202019-09-05 12:02:04 +010030 case 0:
31 case 1:
32 // Number of cores not specified or set to 1 (a value of zero indicates the device is not capable of
33 // running multiple parallel workloads and will not provide multiple streams of data for each event)
34 if (uid == std::numeric_limits<uint16_t>::max())
35 {
36 throw RuntimeException("Generating the next UID for profiling would result in an overflow");
37 }
38 break;
39 default: // cores > 1
40 // Multiple cores available, as max_counter_uid has to be set to: counter_uid + cores - 1, the maximum
41 // allowed value for a counter UID is consequently: uint16_t_max - cores + 1
42 if (uid >= std::numeric_limits<uint16_t>::max() - cores + 1)
43 {
44 throw RuntimeException("Generating the next UID for profiling would result in an overflow");
45 }
46 break;
Matteo Martincighab173e92019-09-05 12:02:04 +010047 }
Matteo Martincigh6db5f202019-09-05 12:02:04 +010048}
Matteo Martincighab173e92019-09-05 12:02:04 +010049
Matteo Martincigh6db5f202019-09-05 12:02:04 +010050} // Anonymous namespace
51
52uint16_t GetNextUid(bool peekOnly)
53{
54 // The UID used for profiling objects and events. The first valid UID is 1, as 0 is a reserved value
55 static uint16_t uid = 1;
56
57 // Check that it is possible to generate the next UID without causing an overflow (throws in case of error)
58 ThrowIfCantGenerateNextUid(uid);
59
60 if (peekOnly)
61 {
62 // Peek only
63 return uid;
64 }
65 else
66 {
67 // Get the next UID
68 return uid++;
69 }
70}
71
72std::vector<uint16_t> GetNextCounterUids(uint16_t cores)
73{
74 // The UID used for counters only. The first valid UID is 0
75 static uint16_t counterUid = 0;
76
77 // Check that it is possible to generate the next counter UID without causing an overflow (throws in case of error)
78 ThrowIfCantGenerateNextUid(counterUid, cores);
79
80 // Get the next counter UIDs
81 size_t counterUidsSize = cores == 0 ? 1 : cores;
82 std::vector<uint16_t> counterUids(counterUidsSize, 0);
83 for (size_t i = 0; i < counterUidsSize; i++)
84 {
85 counterUids[i] = counterUid++;
86 }
87 return counterUids;
Matteo Martincighab173e92019-09-05 12:02:04 +010088}
89
Narumol Prangnawarat404b2752019-09-24 17:23:16 +010090void WriteUint64(const std::unique_ptr<IPacketBuffer>& packetBuffer, unsigned int offset, uint64_t value)
91{
92 BOOST_ASSERT(packetBuffer);
93
94 WriteUint64(packetBuffer->GetWritableData(), offset, value);
95}
96
97void WriteUint32(const std::unique_ptr<IPacketBuffer>& packetBuffer, unsigned int offset, uint32_t value)
98{
99 BOOST_ASSERT(packetBuffer);
100
101 WriteUint32(packetBuffer->GetWritableData(), offset, value);
102}
103
104void WriteUint16(const std::unique_ptr<IPacketBuffer>& packetBuffer, unsigned int offset, uint16_t value)
105{
106 BOOST_ASSERT(packetBuffer);
107
108 WriteUint16(packetBuffer->GetWritableData(), offset, value);
109}
110
Francis Murtagh3a161982019-09-04 15:25:02 +0100111void WriteUint64(unsigned char* buffer, unsigned int offset, uint64_t value)
112{
113 BOOST_ASSERT(buffer);
114
115 buffer[offset] = static_cast<unsigned char>(value & 0xFF);
116 buffer[offset + 1] = static_cast<unsigned char>((value >> 8) & 0xFF);
117 buffer[offset + 2] = static_cast<unsigned char>((value >> 16) & 0xFF);
118 buffer[offset + 3] = static_cast<unsigned char>((value >> 24) & 0xFF);
119 buffer[offset + 4] = static_cast<unsigned char>((value >> 32) & 0xFF);
120 buffer[offset + 5] = static_cast<unsigned char>((value >> 40) & 0xFF);
121 buffer[offset + 6] = static_cast<unsigned char>((value >> 48) & 0xFF);
122 buffer[offset + 7] = static_cast<unsigned char>((value >> 56) & 0xFF);
123}
124
Ferran Balaguer73882172019-09-02 16:39:42 +0100125void WriteUint32(unsigned char* buffer, unsigned int offset, uint32_t value)
126{
127 BOOST_ASSERT(buffer);
128
Matteo Martincigh149528e2019-09-05 12:02:04 +0100129 buffer[offset] = static_cast<unsigned char>(value & 0xFF);
Ferran Balaguer73882172019-09-02 16:39:42 +0100130 buffer[offset + 1] = static_cast<unsigned char>((value >> 8) & 0xFF);
131 buffer[offset + 2] = static_cast<unsigned char>((value >> 16) & 0xFF);
132 buffer[offset + 3] = static_cast<unsigned char>((value >> 24) & 0xFF);
133}
134
135void WriteUint16(unsigned char* buffer, unsigned int offset, uint16_t value)
136{
Matteo Martincigh149528e2019-09-05 12:02:04 +0100137 BOOST_ASSERT(buffer);
Ferran Balaguer73882172019-09-02 16:39:42 +0100138
Matteo Martincigh149528e2019-09-05 12:02:04 +0100139 buffer[offset] = static_cast<unsigned char>(value & 0xFF);
Ferran Balaguer73882172019-09-02 16:39:42 +0100140 buffer[offset + 1] = static_cast<unsigned char>((value >> 8) & 0xFF);
141}
142
Narumol Prangnawarat404b2752019-09-24 17:23:16 +0100143uint64_t ReadUint64(const std::unique_ptr<IPacketBuffer>& packetBuffer, unsigned int offset)
144{
145 BOOST_ASSERT(packetBuffer);
146
147 return ReadUint64(packetBuffer->GetReadableData(), offset);
148}
149
150uint32_t ReadUint32(const std::unique_ptr<IPacketBuffer>& packetBuffer, unsigned int offset)
151{
152 BOOST_ASSERT(packetBuffer);
153
154 return ReadUint32(packetBuffer->GetReadableData(), offset);
155}
156
157uint16_t ReadUint16(const std::unique_ptr<IPacketBuffer>& packetBuffer, unsigned int offset)
158{
159 BOOST_ASSERT(packetBuffer);
160
161 return ReadUint16(packetBuffer->GetReadableData(), offset);
162}
163
164uint8_t ReadUint8(const std::unique_ptr<IPacketBuffer>& packetBuffer, unsigned int offset)
165{
166 BOOST_ASSERT(packetBuffer);
167
168 return ReadUint8(packetBuffer->GetReadableData(), offset);
169}
170
Francis Murtagh3a161982019-09-04 15:25:02 +0100171uint64_t ReadUint64(const unsigned char* buffer, unsigned int offset)
172{
173 BOOST_ASSERT(buffer);
174
175 uint64_t value = 0;
Matteo Martincighab173e92019-09-05 12:02:04 +0100176 value = static_cast<uint64_t>(buffer[offset]);
Francis Murtagh3a161982019-09-04 15:25:02 +0100177 value |= static_cast<uint64_t>(buffer[offset + 1]) << 8;
178 value |= static_cast<uint64_t>(buffer[offset + 2]) << 16;
179 value |= static_cast<uint64_t>(buffer[offset + 3]) << 24;
180 value |= static_cast<uint64_t>(buffer[offset + 4]) << 32;
181 value |= static_cast<uint64_t>(buffer[offset + 5]) << 40;
182 value |= static_cast<uint64_t>(buffer[offset + 6]) << 48;
183 value |= static_cast<uint64_t>(buffer[offset + 7]) << 56;
184
185 return value;
186}
187
Ferran Balaguer73882172019-09-02 16:39:42 +0100188uint32_t ReadUint32(const unsigned char* buffer, unsigned int offset)
189{
190 BOOST_ASSERT(buffer);
191
192 uint32_t value = 0;
Matteo Martincigh149528e2019-09-05 12:02:04 +0100193 value = static_cast<uint32_t>(buffer[offset]);
Ferran Balaguer73882172019-09-02 16:39:42 +0100194 value |= static_cast<uint32_t>(buffer[offset + 1]) << 8;
195 value |= static_cast<uint32_t>(buffer[offset + 2]) << 16;
196 value |= static_cast<uint32_t>(buffer[offset + 3]) << 24;
197 return value;
198}
199
200uint16_t ReadUint16(const unsigned char* buffer, unsigned int offset)
201{
202 BOOST_ASSERT(buffer);
203
204 uint32_t value = 0;
Matteo Martincigh149528e2019-09-05 12:02:04 +0100205 value = static_cast<uint32_t>(buffer[offset]);
Ferran Balaguer73882172019-09-02 16:39:42 +0100206 value |= static_cast<uint32_t>(buffer[offset + 1]) << 8;
207 return static_cast<uint16_t>(value);
208}
209
Matteo Martincigh42f9d9e2019-09-05 12:02:04 +0100210uint8_t ReadUint8(const unsigned char* buffer, unsigned int offset)
211{
212 BOOST_ASSERT(buffer);
213
214 return buffer[offset];
215}
216
Ferran Balaguer47d0fe92019-09-04 16:47:34 +0100217std::string GetSoftwareInfo()
218{
219 return std::string("ArmNN");
220}
221
222std::string GetHardwareVersion()
223{
224 return std::string();
225}
226
227std::string GetSoftwareVersion()
228{
229 std::string armnnVersion(ARMNN_VERSION);
230 std::string result = "Armnn " + armnnVersion.substr(2,2) + "." + armnnVersion.substr(4,2);
231 return result;
232}
233
234std::string GetProcessName()
235{
236 std::ifstream comm("/proc/self/comm");
237 std::string name;
238 getline(comm, name);
239 return name;
240}
241
Jan Eilers92fa15b2019-10-15 15:23:25 +0100242/// Creates a timeline packet header
243///
244/// \params
245/// packetFamiliy Timeline Packet Family
246/// packetClass Timeline Packet Class
247/// packetType Timeline Packet Type
248/// streamId Stream identifier
249/// seqeunceNumbered When non-zero the 4 bytes following the header is a u32 sequence number
250/// dataLength Unsigned 24-bit integer. Length of data, in bytes. Zero is permitted.
251///
252/// \returns
253/// Pair of uint32_t containing word0 and word1 of the header
254std::pair<uint32_t, uint32_t> CreateTimelinePacketHeader(uint32_t packetFamily,
255 uint32_t packetClass,
256 uint32_t packetType,
257 uint32_t streamId,
258 uint32_t sequenceNumbered,
259 uint32_t dataLength)
260{
261 // Packet header word 0:
262 // 26:31 [6] packet_family: timeline Packet Family, value 0b000001
263 // 19:25 [7] packet_class: packet class
264 // 16:18 [3] packet_type: packet type
265 // 8:15 [8] reserved: all zeros
266 // 0:7 [8] stream_id: stream identifier
267 uint32_t packetHeaderWord0 = ((packetFamily & 0x0000003F) << 26) |
268 ((packetClass & 0x0000007F) << 19) |
269 ((packetType & 0x00000007) << 16) |
270 ((streamId & 0x00000007) << 0);
271
272 // Packet header word 1:
273 // 25:31 [7] reserved: all zeros
274 // 24 [1] sequence_numbered: when non-zero the 4 bytes following the header is a u32 sequence number
275 // 0:23 [24] data_length: unsigned 24-bit integer. Length of data, in bytes. Zero is permitted
276 uint32_t packetHeaderWord1 = ((sequenceNumbered & 0x00000001) << 24) |
277 ((dataLength & 0x00FFFFFF) << 0);
278
279 return std::make_pair(packetHeaderWord0, packetHeaderWord1);
280}
281
282/// Creates a packet header for the timeline messages:
283/// * declareLabel
284/// * declareEntity
285/// * declareEventClass
286/// * declareRelationship
287/// * declareEvent
288///
289/// \param
290/// Data lenght of the message body in byte
291///
292/// \returns
293/// Pair of uint32_t containing word0 and word1 of the header
294std::pair<uint32_t, uint32_t> CreateTimelineMessagePacketHeader(unsigned int dataLength)
295{
296 return CreateTimelinePacketHeader(1,0,1,0,0,dataLength);
297}
298
Matteo Martincigh0aed4f92019-10-01 14:25:34 +0100299TimelinePacketStatus WriteTimelineLabelBinaryPacket(uint64_t profilingGuid,
300 const std::string& label,
301 unsigned char* buffer,
302 unsigned int bufferSize,
303 unsigned int& numberOfBytesWritten)
304{
305 // Initialize the ouput value
306 numberOfBytesWritten = 0;
307
308 // Check that the given buffer is valid
309 if (buffer == nullptr || bufferSize == 0)
310 {
311 return TimelinePacketStatus::BufferExhaustion;
312 }
313
314 // Utils
315 unsigned int uint32_t_size = sizeof(uint32_t);
316 unsigned int uint64_t_size = sizeof(uint64_t);
317
318 // Convert the label into a SWTrace string
319 std::vector<uint32_t> swTraceLabel;
320 bool result = StringToSwTraceString<SwTraceCharPolicy>(label, swTraceLabel);
321 if (!result)
322 {
323 return TimelinePacketStatus::Error;
324 }
325
326 // Calculate the size of the SWTrace string label (in bytes)
327 unsigned int swTraceLabelSize = boost::numeric_cast<unsigned int>(swTraceLabel.size()) * uint32_t_size;
328
329 // Calculate the length of the data (in bytes)
Jan Eilersb884ea42019-10-16 09:54:15 +0100330 unsigned int timelineLabelPacketDataLength = uint32_t_size + // decl_Id
331 uint64_t_size + // Profiling GUID
Matteo Martincigh0aed4f92019-10-01 14:25:34 +0100332 swTraceLabelSize; // Label
333
334 // Calculate the timeline binary packet size (in bytes)
335 unsigned int timelineLabelPacketSize = 2 * uint32_t_size + // Header (2 words)
Jan Eilersb884ea42019-10-16 09:54:15 +0100336 timelineLabelPacketDataLength; // decl_Id + Profiling GUID + label
Matteo Martincigh0aed4f92019-10-01 14:25:34 +0100337
338 // Check whether the timeline binary packet fits in the given buffer
339 if (timelineLabelPacketSize > bufferSize)
340 {
341 return TimelinePacketStatus::BufferExhaustion;
342 }
343
Jan Eilersb884ea42019-10-16 09:54:15 +0100344 // Create packet header
345 uint32_t dataLength = boost::numeric_cast<uint32_t>(timelineLabelPacketDataLength); // decl_id + GUID + label
346 std::pair<uint32_t, uint32_t> packetHeader = CreateTimelineMessagePacketHeader(dataLength);
Matteo Martincigh0aed4f92019-10-01 14:25:34 +0100347
348 // Initialize the offset for writing in the buffer
349 unsigned int offset = 0;
350
351 // Write the timeline binary packet header to the buffer
Jan Eilersb884ea42019-10-16 09:54:15 +0100352 WriteUint32(buffer, offset, packetHeader.first);
Matteo Martincigh0aed4f92019-10-01 14:25:34 +0100353 offset += uint32_t_size;
Jan Eilersb884ea42019-10-16 09:54:15 +0100354 WriteUint32(buffer, offset, packetHeader.second);
355 offset += uint32_t_size;
356
357 // Write decl_Id to the buffer
358 WriteUint32(buffer, offset, 0u);
Matteo Martincigh0aed4f92019-10-01 14:25:34 +0100359 offset += uint32_t_size;
360
361 // Write the timeline binary packet payload to the buffer
362 WriteUint64(buffer, offset, profilingGuid); // Profiling GUID
363 offset += uint64_t_size;
364 for (uint32_t swTraceLabelWord : swTraceLabel)
365 {
366 WriteUint32(buffer, offset, swTraceLabelWord); // Label
367 offset += uint32_t_size;
368 }
369
370 // Update the number of bytes written
371 numberOfBytesWritten = timelineLabelPacketSize;
372
373 return TimelinePacketStatus::Ok;
374}
375
David Monahanf21f6062019-10-07 15:11:15 +0100376TimelinePacketStatus WriteTimelineEntityBinaryPacket(uint64_t profilingGuid,
377 unsigned char* buffer,
378 unsigned int bufferSize,
379 unsigned int& numberOfBytesWritten)
380{
381 // Initialize the ouput value
382 numberOfBytesWritten = 0;
383
384 // Check that the given buffer is valid
385 if (buffer == nullptr || bufferSize == 0)
386 {
387 return TimelinePacketStatus::BufferExhaustion;
388 }
389
390 // Utils
391 unsigned int uint32_t_size = sizeof(uint32_t);
392 unsigned int uint64_t_size = sizeof(uint64_t);
393
394 // Calculate the length of the data (in bytes)
395 unsigned int timelineEntityPacketDataLength = uint64_t_size; // Profiling GUID
396
397
398 // Calculate the timeline binary packet size (in bytes)
399 unsigned int timelineEntityPacketSize = 2 * uint32_t_size + // Header (2 words)
Jan Eilersb884ea42019-10-16 09:54:15 +0100400 uint32_t_size + // decl_Id
401 timelineEntityPacketDataLength; // Profiling GUID
David Monahanf21f6062019-10-07 15:11:15 +0100402
403 // Check whether the timeline binary packet fits in the given buffer
404 if (timelineEntityPacketSize > bufferSize)
405 {
406 return TimelinePacketStatus::BufferExhaustion;
407 }
408
Jan Eilersb884ea42019-10-16 09:54:15 +0100409 // Create packet header
410 uint32_t dataLength = boost::numeric_cast<uint32_t>(timelineEntityPacketDataLength);
411 std::pair<uint32_t, uint32_t> packetHeader = CreateTimelineMessagePacketHeader(dataLength);
David Monahanf21f6062019-10-07 15:11:15 +0100412
413 // Initialize the offset for writing in the buffer
414 unsigned int offset = 0;
415
416 // Write the timeline binary packet header to the buffer
Jan Eilersb884ea42019-10-16 09:54:15 +0100417 WriteUint32(buffer, offset, packetHeader.first);
David Monahanf21f6062019-10-07 15:11:15 +0100418 offset += uint32_t_size;
Jan Eilersb884ea42019-10-16 09:54:15 +0100419 WriteUint32(buffer, offset, packetHeader.second);
420 offset += uint32_t_size;
421
422 // Write the decl_Id to the buffer
423 WriteUint32(buffer, offset, 1u);
David Monahanf21f6062019-10-07 15:11:15 +0100424 offset += uint32_t_size;
425
426 // Write the timeline binary packet payload to the buffer
427 WriteUint64(buffer, offset, profilingGuid); // Profiling GUID
428
429 // Update the number of bytes written
430 numberOfBytesWritten = timelineEntityPacketSize;
431
432 return TimelinePacketStatus::Ok;
433}
434
Sadik Armagan784db772019-10-08 15:05:38 +0100435TimelinePacketStatus WriteTimelineMessageDirectoryPackage(unsigned char* buffer,
436 unsigned int bufferSize,
437 unsigned int& numberOfBytesWritten)
438{
439 // Initialize the output value
440 numberOfBytesWritten = 0;
441
442 // Check that the given buffer is valid
443 if (buffer == nullptr || bufferSize == 0)
444 {
445 return TimelinePacketStatus::BufferExhaustion;
446 }
447
448 // Utils
449 unsigned int uint32_t_size = sizeof(uint32_t);
450
Sadik Armagan784db772019-10-08 15:05:38 +0100451 // the payload/data of the packet consists of swtrace event definitions encoded according
452 // to the swtrace directory specification. The messages being the five defined below:
453 // | decl_id | decl_name | ui_name | arg_types | arg_names |
454 // |-----------|---------------------|-----------------------|-------------|-------------------------------------|
455 // | 0 | declareLabel | declare label | ps | guid,value |
456 // | 1 | declareEntity | declare entity | p | guid |
457 // | 2 | declareEventClass | declare event class | p | guid |
458 // | 3 | declareRelationship | declare relationship | Ippp | relationshipType,relationshipGuid,
459 // headGuid,tailGuid |
460 // | 4 | declareEvent | declare event | @tp | timestamp,threadId,eventGuid |
461
462 std::vector<std::vector<std::string>> timelineDirectoryMessages =
463 { {"declareLabel", "declare label", "ps", "guid,value"},
464 {"declareEntity", "declare entity", "p", "guid"},
465 {"declareEventClass", "declare event class", "p", "guid"},
466 {"declareRelationship", "declare relationship",
467 "Ippp", "relationshipType,relationshipGuid,headGuid,tailGuid"},
468 {"declareEvent", "declare event", "@tp", "timestamp,threadId,eventGuid"} };
469
470 unsigned int messagesDataLength = 0u;
471 std::vector<std::vector<std::vector<uint32_t>>> swTraceTimelineDirectoryMessages;
472
473 for (const auto& timelineDirectoryMessage : timelineDirectoryMessages)
474 {
475 messagesDataLength += uint32_t_size; // decl_id
476
477 std::vector<std::vector<uint32_t>> swTraceStringsVector;
478 for (const auto& label : timelineDirectoryMessage)
479 {
480 std::vector<uint32_t> swTraceString;
481 bool result = StringToSwTraceString<SwTraceCharPolicy>(label, swTraceString);
482 if (!result)
483 {
484 return TimelinePacketStatus::Error;
485 }
486
487 messagesDataLength += boost::numeric_cast<unsigned int>(swTraceString.size()) * uint32_t_size;
488 swTraceStringsVector.push_back(swTraceString);
489 }
490 swTraceTimelineDirectoryMessages.push_back(swTraceStringsVector);
491 }
492
493 // Calculate the timeline directory binary packet size (in bytes)
494 unsigned int timelineDirectoryPacketSize = 2 * uint32_t_size + // Header (2 words)
495 messagesDataLength; // 5 messages length
496
497 // Check whether the timeline directory binary packet fits in the given buffer
498 if (timelineDirectoryPacketSize > bufferSize)
499 {
500 return TimelinePacketStatus::BufferExhaustion;
501 }
502
Jan Eilersb884ea42019-10-16 09:54:15 +0100503 // Create packet header
Sadik Armagan784db772019-10-08 15:05:38 +0100504 uint32_t dataLength = boost::numeric_cast<uint32_t>(messagesDataLength);
Jan Eilersb884ea42019-10-16 09:54:15 +0100505 std::pair<uint32_t, uint32_t> packetHeader = CreateTimelinePacketHeader(1,0,0,0,0,dataLength);
Sadik Armagan784db772019-10-08 15:05:38 +0100506
507 // Initialize the offset for writing in the buffer
508 unsigned int offset = 0;
509
510 // Write the timeline binary packet header to the buffer
Jan Eilersb884ea42019-10-16 09:54:15 +0100511 WriteUint32(buffer, offset, packetHeader.first);
Sadik Armagan784db772019-10-08 15:05:38 +0100512 offset += uint32_t_size;
Jan Eilersb884ea42019-10-16 09:54:15 +0100513 WriteUint32(buffer, offset, packetHeader.second);
Sadik Armagan784db772019-10-08 15:05:38 +0100514 offset += uint32_t_size;
515
516 for (unsigned int i = 0u; i < swTraceTimelineDirectoryMessages.size(); ++i)
517 {
518 // Write the timeline binary packet payload to the buffer
519 WriteUint32(buffer, offset, i); // decl_id
520 offset += uint32_t_size;
521
522 for (std::vector<uint32_t> swTraceString : swTraceTimelineDirectoryMessages[i])
523 {
524 for (uint32_t swTraceDeclStringWord : swTraceString)
525 {
526 WriteUint32(buffer, offset, swTraceDeclStringWord);
527 offset += uint32_t_size;
528 }
529 }
530 }
531
532 // Update the number of bytes written
533 numberOfBytesWritten = timelineDirectoryPacketSize;
534
535 return TimelinePacketStatus::Ok;
536}
537
Jan Eilers92fa15b2019-10-15 15:23:25 +0100538TimelinePacketStatus WriteTimelineEventClassBinaryPacket(uint64_t profilingGuid,
539 unsigned char* buffer,
540 unsigned int bufferSize,
541 unsigned int& numberOfBytesWritten)
542{
543 // Initialize the ouput value
544 numberOfBytesWritten = 0;
545
546 // Check that the given buffer is valid
547 if (buffer == nullptr || bufferSize == 0)
548 {
549 return TimelinePacketStatus::BufferExhaustion;
550 }
551
552 // Utils
553 unsigned int uint32_t_size = sizeof(uint32_t);
554 unsigned int uint64_t_size = sizeof(uint64_t);
555
556 // dec_id of the timeline message
557 uint32_t decId = 2;
558
559 // Calculate the length of the data (in bytes)
560 unsigned int packetBodySize = uint32_t_size + uint64_t_size; // decl_id + Profiling GUID
561
562 // Calculate the timeline binary packet size (in bytes)
563 unsigned int packetSize = 2 * uint32_t_size + // Header (2 words)
564 packetBodySize; // Body
565
566 // Check whether the timeline binary packet fits in the given buffer
567 if (packetSize > bufferSize)
568 {
569 return TimelinePacketStatus::BufferExhaustion;
570 }
571
572 // Create packet header
573 uint32_t dataLength = boost::numeric_cast<uint32_t>(packetBodySize);
574 std::pair<uint32_t, uint32_t> packetHeader = CreateTimelineMessagePacketHeader(dataLength);
575
576 // Initialize the offset for writing in the buffer
577 unsigned int offset = 0;
578
579 // Write the timeline binary packet header to the buffer
580 WriteUint32(buffer, offset, packetHeader.first);
581 offset += uint32_t_size;
582 WriteUint32(buffer, offset, packetHeader.second);
583 offset += uint32_t_size;
584
585 // Write the timeline binary packet payload to the buffer
586 WriteUint32(buffer, offset, decId); // dec_id
587 offset += uint32_t_size;
588 WriteUint64(buffer, offset, profilingGuid); // Profiling GUID
589
590 // Update the number of bytes written
591 numberOfBytesWritten = packetSize;
592
593 return TimelinePacketStatus::Ok;
594}
595
Ferran Balaguer73882172019-09-02 16:39:42 +0100596} // namespace profiling
597
Matteo Martincigh149528e2019-09-05 12:02:04 +0100598} // namespace armnn