1 /*
2 * Copyright (c) 2021-2022 Huawei Device Co., Ltd.
3 * Licensed under the Apache License, Version 2.0 (the "License");
4 * you may not use this file except in compliance with the License.
5 * You may obtain a copy of the License at
6 *
7 * http://www.apache.org/licenses/LICENSE-2.0
8 *
9 * Unless required by applicable law or agreed to in writing, software
10 * distributed under the License is distributed on an "AS IS" BASIS,
11 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
12 * See the License for the specific language governing permissions and
13 * limitations under the License.
14 */
15 #define HILOG_TAG "PerfRecord"
16
17 #include "perf_event_record.h"
18 #include "spe_decoder.h"
19 #include <cinttypes>
20
21 #include "utilities.h"
22
23 using namespace OHOS::HiviewDFX;
24 using namespace std;
25 namespace OHOS {
26 namespace Developtools {
27 namespace HiPerf {
28
29 void *g_sampleMemCache = nullptr; // for read record from buf thread
30 void *g_sampleMemCacheMain = nullptr; // for main thread:collecttionsymbol
31 constexpr size_t SAMPLE_CACHE_SIZE = 4 * 1024;
32
GetPerfEventRecord(const int type,uint8_t * p,const perf_event_attr & attr)33 std::unique_ptr<PerfEventRecord> GetPerfEventRecord(const int type, uint8_t *p,
34 const perf_event_attr &attr)
35 {
36 HLOG_ASSERT(p);
37 uint8_t *data = p;
38
39 // check kernel
40 switch (type) {
41 case PERF_RECORD_SAMPLE:
42 return std::make_unique<PerfRecordSample>(data, attr);
43 case PERF_RECORD_MMAP:
44 return std::make_unique<PerfRecordMmap>(data);
45 case PERF_RECORD_MMAP2:
46 return std::make_unique<PerfRecordMmap2>(data);
47 case PERF_RECORD_LOST:
48 return std::make_unique<PerfRecordLost>(data);
49 case PERF_RECORD_COMM:
50 return std::make_unique<PerfRecordComm>(data);
51 case PERF_RECORD_EXIT:
52 return std::make_unique<PerfRecordExit>(data);
53 case PERF_RECORD_THROTTLE:
54 return std::make_unique<PerfRecordThrottle>(data);
55 case PERF_RECORD_UNTHROTTLE:
56 return std::make_unique<PerfRecordUnthrottle>(data);
57 case PERF_RECORD_FORK:
58 return std::make_unique<PerfRecordFork>(data);
59 case PERF_RECORD_READ:
60 return std::make_unique<PerfRecordRead>(data);
61 case PERF_RECORD_AUX:
62 return std::make_unique<PerfRecordAux>(data);
63 case PERF_RECORD_AUXTRACE:
64 return std::make_unique<PerfRecordAuxtrace>(data);
65 case PERF_RECORD_ITRACE_START:
66 return std::make_unique<PerfRecordItraceStart>(data);
67 case PERF_RECORD_LOST_SAMPLES:
68 return std::make_unique<PerfRecordLostSamples>(data);
69 case PERF_RECORD_SWITCH:
70 return std::make_unique<PerfRecordSwitch>(data);
71 case PERF_RECORD_SWITCH_CPU_WIDE:
72 return std::make_unique<PerfRecordSwitchCpuWide>(data);
73 default:
74 HLOGE("unknown record type %d\n", type);
75 return nullptr;
76 }
77 }
78
GetPerfSampleFromCache(const int type,uint8_t * p,const perf_event_attr & attr)79 std::unique_ptr<PerfEventRecord> GetPerfSampleFromCache(const int type, uint8_t *p,
80 const perf_event_attr &attr)
81 {
82 HLOG_ASSERT(p);
83 uint8_t *data = p;
84
85 if (type == PERF_RECORD_SAMPLE) {
86 if (g_sampleMemCache != nullptr) {
87 memset_s(g_sampleMemCache, SAMPLE_CACHE_SIZE, 0, SAMPLE_CACHE_SIZE);
88 return std::unique_ptr<PerfEventRecord>(new (g_sampleMemCache) PerfRecordSample(data, attr));
89 } else {
90 g_sampleMemCache = std::malloc(SAMPLE_CACHE_SIZE);
91 memset_s(g_sampleMemCache, SAMPLE_CACHE_SIZE, 0, SAMPLE_CACHE_SIZE);
92 return std::unique_ptr<PerfEventRecord>(new (g_sampleMemCache) PerfRecordSample(data, attr));
93 }
94 }
95 return GetPerfEventRecord(type, p, attr);
96 }
97
GetPerfSampleFromCacheMain(const int type,uint8_t * p,const perf_event_attr & attr)98 std::unique_ptr<PerfEventRecord> GetPerfSampleFromCacheMain(const int type, uint8_t *p,
99 const perf_event_attr &attr)
100 {
101 HLOG_ASSERT(p);
102 uint8_t *data = p;
103
104 if (type == PERF_RECORD_SAMPLE) {
105 if (g_sampleMemCacheMain != nullptr) {
106 memset_s(g_sampleMemCacheMain, SAMPLE_CACHE_SIZE, 0, SAMPLE_CACHE_SIZE);
107 return std::unique_ptr<PerfEventRecord>(new (g_sampleMemCacheMain) PerfRecordSample(data, attr));
108 } else {
109 g_sampleMemCacheMain = std::malloc(SAMPLE_CACHE_SIZE);
110 memset_s(g_sampleMemCacheMain, SAMPLE_CACHE_SIZE, 0, SAMPLE_CACHE_SIZE);
111 return std::unique_ptr<PerfEventRecord>(new (g_sampleMemCacheMain) PerfRecordSample(data, attr));
112 }
113 }
114 return GetPerfEventRecord(type, p, attr);
115 }
116
117 template<typename T>
PushToBinary(bool condition,uint8_t * & p,const T & v)118 inline void PushToBinary(bool condition, uint8_t *&p, const T &v)
119 {
120 if (condition) {
121 *(reinterpret_cast<T *>(p)) = v;
122 p += sizeof(T);
123 }
124 }
125
126 template<typename T1, typename T2>
PushToBinary2(bool condition,uint8_t * & p,const T1 & v1,const T2 & v2)127 inline void PushToBinary2(bool condition, uint8_t *&p, const T1 &v1, const T2 &v2)
128 {
129 if (condition) {
130 *(reinterpret_cast<T1 *>(p)) = v1;
131 p += sizeof(T1);
132 *(reinterpret_cast<T2 *>(p)) = v2;
133 p += sizeof(T2);
134 }
135 }
136
137 template<typename T>
PopFromBinary(bool condition,uint8_t * & p,T & v)138 inline void PopFromBinary(bool condition, uint8_t *&p, T &v)
139 {
140 if (condition) {
141 v = *(reinterpret_cast<const T *>(p));
142 p += sizeof(T);
143 }
144 }
145
146 template<typename T1, typename T2>
PopFromBinary2(bool condition,uint8_t * & p,T1 & v1,T2 & v2)147 inline void PopFromBinary2(bool condition, uint8_t *&p, T1 &v1, T2 &v2)
148 {
149 if (condition) {
150 v1 = *(reinterpret_cast<const T1 *>(p));
151 p += sizeof(T1);
152 v2 = *(reinterpret_cast<const T2 *>(p));
153 p += sizeof(T2);
154 }
155 }
156
157 // PerfEventRecord
PerfEventRecord(perf_event_type type,bool inKernel,const std::string & name)158 PerfEventRecord::PerfEventRecord(perf_event_type type, bool inKernel, const std::string &name)
159 : name_(name)
160 {
161 header.type = type;
162 header.misc = inKernel ? PERF_RECORD_MISC_KERNEL : PERF_RECORD_MISC_USER;
163 header.size = sizeof(header);
164 }
165
PerfEventRecord(perf_event_hiperf_ext_type type,const std::string & name)166 PerfEventRecord::PerfEventRecord(perf_event_hiperf_ext_type type, const std::string &name)
167 : name_(name)
168 {
169 header.type = type;
170 header.misc = PERF_RECORD_MISC_USER;
171 header.size = sizeof(header);
172 }
173
PerfEventRecord(uint8_t * p,const std::string & name)174 PerfEventRecord::PerfEventRecord(uint8_t *p, const std::string &name) : name_(name)
175 {
176 if (p == nullptr) {
177 header.type = PERF_RECORD_MMAP;
178 header.misc = PERF_RECORD_MISC_USER;
179 header.size = 0;
180 return;
181 }
182 header = *(reinterpret_cast<perf_event_header *>(p));
183 }
184
GetHeaderBinary(std::vector<uint8_t> & buf) const185 void PerfEventRecord::GetHeaderBinary(std::vector<uint8_t> &buf) const
186 {
187 if (buf.size() < GetHeaderSize()) {
188 buf.resize(GetHeaderSize());
189 }
190 uint8_t *p = buf.data();
191 *(reinterpret_cast<perf_event_header *>(p)) = header;
192 }
193
Dump(int indent,std::string outputFilename,FILE * outputDump) const194 void PerfEventRecord::Dump(int indent, std::string outputFilename, FILE *outputDump) const
195 {
196 if (outputDump != nullptr) {
197 g_outputDump = outputDump;
198 } else if (!outputFilename.empty() && g_outputDump == nullptr) {
199 std::string resolvedPath = CanonicalizeSpecPath(outputFilename.c_str());
200 g_outputDump = fopen(resolvedPath.c_str(), "w");
201 if (g_outputDump == nullptr) {
202 printf("unable open file to '%s' because '%d'\n", outputFilename.c_str(), errno);
203 return;
204 }
205 }
206 PRINT_INDENT(indent, "\n");
207 PRINT_INDENT(indent, "record %s: type %u, misc %u, size %zu\n", GetName().c_str(), GetType(),
208 GetMisc(), GetSize());
209 DumpData(indent + 1);
210 }
211
DumpLog(const std::string & prefix) const212 void PerfEventRecord::DumpLog(const std::string &prefix) const
213 {
214 HLOGV("%s: record %s: type %u, misc %u, size %zu\n", prefix.c_str(), GetName().c_str(),
215 GetType(), GetMisc(), GetSize());
216 }
217
218 std::vector<u64> PerfRecordSample::ips_ = {};
219 std::vector<DfxFrame> PerfRecordSample::callFrames_ = {};
220 std::vector<pid_t> PerfRecordSample::serverPidMap_ = {};
221
PerfRecordAuxtrace(uint8_t * p)222 PerfRecordAuxtrace::PerfRecordAuxtrace(uint8_t *p) : PerfEventRecord(p, "auxtrace")
223 {
224 if (header.size >= sizeof(header)) {
225 size_t copySize = header.size - sizeof(header);
226 if (memcpy_s(reinterpret_cast<uint8_t *>(&data_), sizeof(data_), p + sizeof(header), copySize) != 0) {
227 HLOGE("memcpy_s retren failed !!!");
228 }
229 } else {
230 HLOGE("PerfRecordAuxtrace retren failed !!!");
231 }
232 rawData_ = p + header.size;
233 }
234
PerfRecordAuxtrace(u64 size,u64 offset,u64 reference,u32 idx,u32 tid,u32 cpu,u32 pid)235 PerfRecordAuxtrace::PerfRecordAuxtrace(u64 size, u64 offset, u64 reference, u32 idx, u32 tid, u32 cpu, u32 pid)
236 : PerfEventRecord(PERF_RECORD_AUXTRACE, "auxtrace")
237 {
238 data_.size = size;
239 data_.offset = offset;
240 data_.reference = reference;
241 data_.idx = idx;
242 data_.tid = tid;
243 data_.cpu = cpu;
244 data_.reserved__ = pid;
245
246 header.size = sizeof(header) + sizeof(data_);
247 }
248
GetBinary1(std::vector<uint8_t> & buf) const249 bool PerfRecordAuxtrace::GetBinary1(std::vector<uint8_t> &buf) const
250 {
251 if (buf.size() < header.size) {
252 buf.resize(header.size);
253 }
254
255 GetHeaderBinary(buf);
256 uint8_t *p = buf.data() + GetHeaderSize();
257
258 size_t copySize = header.size - GetHeaderSize();
259 if (memcpy_s(p, sizeof(data_), reinterpret_cast<const uint8_t *>(&data_), copySize) != 0) {
260 HLOGE("memcpy_s return failed");
261 return false;
262 }
263 return true;
264 }
265
GetBinary(std::vector<uint8_t> & buf) const266 bool PerfRecordAuxtrace::GetBinary(std::vector<uint8_t> &buf) const
267 {
268 if (buf.size() < GetSize()) {
269 buf.resize(GetSize());
270 }
271
272 GetHeaderBinary(buf);
273 uint8_t *p = buf.data() + GetHeaderSize();
274
275 size_t copySize = header.size - GetHeaderSize();
276 if (memcpy_s(p, sizeof(data_), reinterpret_cast<const uint8_t *>(&data_), copySize) != 0) {
277 HLOGE("memcpy_s return failed");
278 return false;
279 }
280 p += header.size - GetHeaderSize();
281 if (memcpy_s(p, data_.size, static_cast<uint8_t *>(rawData_), data_.size) != 0) {
282 HLOGE("memcpy_s return failed");
283 return false;
284 }
285 return true;
286 }
287
DumpData(int indent) const288 void PerfRecordAuxtrace::DumpData(int indent) const
289 {
290 PRINT_INDENT(indent, "size 0x%llx, offset 0x%llx, reference 0x%llx, idx %u, tid %u, cpu %u, pid %u\n",
291 data_.size, data_.offset, data_.reference, data_.idx, data_.tid, data_.cpu, data_.reserved__);
292 #if defined(is_ohos) && is_ohos
293 SpeDumpRawData(rawData_, data_.size, indent, g_outputDump);
294 #endif
295 }
296
DumpLog(const std::string & prefix) const297 void PerfRecordAuxtrace::DumpLog(const std::string &prefix) const
298 {
299 HLOGV("size %llu, offset 0x%llx, reference 0x%llx, idx %u, tid %u, cpu %u\n",
300 data_.size, data_.offset, data_.reference, data_.idx, data_.tid, data_.cpu);
301 }
302
GetSize() const303 size_t PerfRecordAuxtrace::GetSize() const
304 {
305 return header.size + data_.size;
306 }
307
DumpLog(const std::string & prefix) const308 void PerfRecordSample::DumpLog(const std::string &prefix) const
309 {
310 HLOGV("%s: SAMPLE: id= %llu size %d pid %u tid %u ips %llu regs %llu, stacks %llu time %llu",
311 prefix.c_str(), data_.sample_id, header.size, data_.pid, data_.tid, data_.nr,
312 data_.reg_nr, data_.dyn_size, data_.time);
313 }
314
RecoverCallStack()315 void PerfRecordSample::RecoverCallStack()
316 {
317 data_.ips = ips_.data();
318 data_.nr = ips_.size();
319 removeStack_ = true;
320 }
321
ReplaceWithCallStack(size_t originalSize)322 void PerfRecordSample::ReplaceWithCallStack(size_t originalSize)
323 {
324 // first we check if we have some user unwind stack need to merge ?
325 if (callFrames_.size() != 0) {
326 // when we have some kernel ips , we cp it first
327 // new size is user call frames + kernel call frames
328 // + PERF_CONTEXT_USER(last + 1) + expand mark(also PERF_CONTEXT_USER)
329 const unsigned int perfContextSize = 2;
330 ips_.reserve(data_.nr + callFrames_.size() + perfContextSize);
331 if (data_.nr > 0) {
332 ips_.assign(data_.ips, data_.ips + data_.nr);
333 }
334 // add user context mark
335 ips_.emplace_back(PERF_CONTEXT_USER);
336 // we also need make a expand mark just for debug only
337 const size_t beginIpsSize = ips_.size();
338 bool ret = std::all_of(callFrames_.begin(), callFrames_.end(), [&](const DfxFrame &frame) {
339 ips_.emplace_back(frame.pc);
340 if (originalSize != 0 and (originalSize != callFrames_.size()) and
341 ips_.size() == (originalSize + beginIpsSize)) {
342 // just for debug
343 // so we can see which frame begin is expand call frames
344 ips_.emplace_back(PERF_CONTEXT_USER);
345 }
346 return true;
347 });
348 if (ret) {
349 HLOGV("combed %zu", callFrames_.size());
350 } else {
351 HLOGV("failed to combed %zu", callFrames_.size());
352 }
353
354 if (sampleType_ & PERF_SAMPLE_REGS_USER) {
355 header.size -= data_.reg_nr * sizeof(u64);
356 data_.reg_nr = 0;
357 data_.user_abi = 0;
358 }
359
360 if (sampleType_ & PERF_SAMPLE_STACK_USER) {
361 // 1. remove the user stack
362 header.size -= data_.stack_size;
363 header.size -= sizeof(data_.dyn_size);
364
365 // 2. clean the size
366 data_.stack_size = 0;
367 data_.dyn_size = 0;
368 }
369
370 if (sampleType_ & PERF_SAMPLE_CALLCHAIN) {
371 HLOGV("ips change from %llu -> %zu", data_.nr, ips_.size());
372
373 // 3. remove the nr size
374 header.size -= data_.nr * sizeof(u64);
375
376 // 4. add new nr size
377 data_.nr = ips_.size();
378 header.size += data_.nr * sizeof(u64);
379
380 // 5. change ips potin to our ips array and hold it.
381 data_.ips = ips_.data();
382 }
383 } else {
384 // nothing need change
385 return;
386 }
387 }
388
PerfRecordSample(uint8_t * p,const perf_event_attr & attr)389 PerfRecordSample::PerfRecordSample(uint8_t *p, const perf_event_attr &attr)
390 : PerfEventRecord(p, "sample")
391 {
392 if (p == nullptr) {
393 HLOG_ASSERT(p);
394 return;
395 }
396 // clear the static vector data
397 Clean();
398 sampleType_ = attr.sample_type;
399
400 uint8_t *start = p;
401
402 p += sizeof(header);
403
404 // parse record according SAMPLE_TYPE
405 PopFromBinary(sampleType_ & PERF_SAMPLE_IDENTIFIER, p, data_.sample_id);
406 PopFromBinary(sampleType_ & PERF_SAMPLE_IP, p, data_.ip);
407 PopFromBinary2(sampleType_ & PERF_SAMPLE_TID, p, data_.pid, data_.tid);
408 PopFromBinary(sampleType_ & PERF_SAMPLE_TIME, p, data_.time);
409 PopFromBinary(sampleType_ & PERF_SAMPLE_ADDR, p, data_.addr);
410 PopFromBinary(sampleType_ & PERF_SAMPLE_ID, p, data_.id);
411 PopFromBinary(sampleType_ & PERF_SAMPLE_STREAM_ID, p, data_.stream_id);
412 PopFromBinary2(sampleType_ & PERF_SAMPLE_CPU, p, data_.cpu, data_.res);
413 PopFromBinary(sampleType_ & PERF_SAMPLE_PERIOD, p, data_.period);
414 PopFromBinary(sampleType_ & PERF_SAMPLE_CALLCHAIN, p, data_.nr);
415 if (data_.nr > 0) {
416 // the pointer is from input(p), require caller keep input(p) with *this together
417 // think it in next time
418 data_.ips = reinterpret_cast<u64 *>(p);
419 p += data_.nr * sizeof(u64);
420 }
421 PopFromBinary(sampleType_ & PERF_SAMPLE_RAW, p, data_.raw_size);
422 if (data_.raw_size > 0) {
423 data_.raw_data = p;
424 p += data_.raw_size * sizeof(u8);
425 }
426 PopFromBinary(sampleType_ & PERF_SAMPLE_BRANCH_STACK, p, data_.bnr);
427 if (data_.bnr > 0) {
428 data_.lbr = reinterpret_cast<PerfBranchEntry *>(p);
429 p += data_.bnr * sizeof(PerfBranchEntry);
430 }
431 PopFromBinary(sampleType_ & PERF_SAMPLE_REGS_USER, p, data_.user_abi);
432 if (data_.user_abi > 0) {
433 data_.reg_mask = attr.sample_regs_user;
434 data_.reg_nr = __builtin_popcountll(data_.reg_mask);
435 data_.user_regs = reinterpret_cast<u64 *>(p);
436 p += data_.reg_nr * sizeof(u64);
437 }
438 PopFromBinary(sampleType_ & PERF_SAMPLE_SERVER_PID, p, data_.server_nr);
439 if (data_.server_nr > 0) {
440 data_.server_pids = reinterpret_cast<u64 *>(p);
441 p += data_.server_nr * sizeof(u64);
442 }
443 PopFromBinary(sampleType_ & PERF_SAMPLE_STACK_USER, p, data_.stack_size);
444 if (data_.stack_size > 0) {
445 data_.stack_data = p;
446 p += data_.stack_size;
447 PopFromBinary(true, p, data_.dyn_size);
448 }
449 uint32_t remain = header.size - (p - start);
450 if (data_.nr == 0 && dumpRemoveStack_ && remain == sizeof(stackId_)) {
451 PopFromBinary(true, p, stackId_.value);
452 }
453 }
454
GetBinary(std::vector<uint8_t> & buf) const455 bool PerfRecordSample::GetBinary(std::vector<uint8_t> &buf) const
456 {
457 if (buf.size() < GetSize()) {
458 buf.resize(GetSize());
459 }
460
461 GetHeaderBinary(buf);
462 uint8_t *p = buf.data() + GetHeaderSize();
463
464 PushToBinary(sampleType_ & PERF_SAMPLE_IDENTIFIER, p, data_.sample_id);
465 PushToBinary(sampleType_ & PERF_SAMPLE_IP, p, data_.ip);
466 PushToBinary2(sampleType_ & PERF_SAMPLE_TID, p, data_.pid, data_.tid);
467 PushToBinary(sampleType_ & PERF_SAMPLE_TIME, p, data_.time);
468 PushToBinary(sampleType_ & PERF_SAMPLE_ADDR, p, data_.addr);
469 PushToBinary(sampleType_ & PERF_SAMPLE_ID, p, data_.id);
470 PushToBinary(sampleType_ & PERF_SAMPLE_STREAM_ID, p, data_.stream_id);
471 PushToBinary2(sampleType_ & PERF_SAMPLE_CPU, p, data_.cpu, data_.res);
472 PushToBinary(sampleType_ & PERF_SAMPLE_PERIOD, p, data_.period);
473 PushToBinary(sampleType_ & PERF_SAMPLE_CALLCHAIN, p, data_.nr);
474 if (data_.nr > 0 && !removeStack_) {
475 std::copy(data_.ips + skipKernel_, data_.ips + data_.nr + skipKernel_,
476 reinterpret_cast<u64 *>(p));
477 p += data_.nr * sizeof(u64);
478 }
479 PushToBinary(sampleType_ & PERF_SAMPLE_RAW, p, data_.raw_size);
480 if (data_.raw_size > 0) {
481 std::copy(data_.raw_data, data_.raw_data + data_.raw_size, p);
482 p += data_.raw_size * sizeof(u8);
483 }
484 PushToBinary(sampleType_ & PERF_SAMPLE_BRANCH_STACK, p, data_.bnr);
485 if (data_.bnr > 0) {
486 std::copy(data_.lbr, data_.lbr + data_.bnr, reinterpret_cast<PerfBranchEntry *>(p));
487 p += data_.bnr * sizeof(PerfBranchEntry);
488 }
489 PushToBinary(sampleType_ & PERF_SAMPLE_REGS_USER, p, data_.user_abi);
490 if (data_.user_abi > 0 && data_.reg_nr > 0) {
491 std::copy(data_.user_regs, data_.user_regs + data_.reg_nr, reinterpret_cast<u64 *>(p));
492 p += data_.reg_nr * sizeof(u64);
493 }
494 PushToBinary(sampleType_ & PERF_SAMPLE_SERVER_PID, p, data_.server_nr);
495 if (data_.server_nr > 0) {
496 std::copy(data_.server_pids + skipPid_, data_.server_pids + data_.server_nr + skipPid_,
497 reinterpret_cast<u64 *>(p));
498 p += data_.server_nr * sizeof(u64);
499 }
500 PushToBinary(sampleType_ & PERF_SAMPLE_STACK_USER, p, data_.stack_size);
501 if (data_.stack_size > 0) {
502 std::copy(data_.stack_data, data_.stack_data + data_.stack_size, p);
503 p += data_.stack_size * sizeof(u8);
504 PushToBinary(true, p, data_.dyn_size);
505 }
506 PushToBinary(removeStack_, p, stackId_.value);
507 return true;
508 }
509
DumpData(int indent) const510 void PerfRecordSample::DumpData(int indent) const
511 {
512 PRINT_INDENT(indent, "sample_type: 0x%" PRIx64 "\n", sampleType_);
513
514 // dump record according sampleType
515 if (sampleType_ & (PERF_SAMPLE_ID | PERF_SAMPLE_IDENTIFIER)) {
516 PRINT_INDENT(indent, "ID %" PRIu64 "\n", static_cast<uint64_t>(data_.sample_id));
517 }
518 if (sampleType_ & PERF_SAMPLE_IP) {
519 PRINT_INDENT(indent, "ip %llx\n", data_.ip);
520 }
521 if (sampleType_ & PERF_SAMPLE_TID) {
522 PRINT_INDENT(indent, "pid %u, tid %u\n", data_.pid, data_.tid);
523 }
524 if (sampleType_ & PERF_SAMPLE_TIME) {
525 PRINT_INDENT(indent, "time %llu\n", data_.time);
526 }
527 if (sampleType_ & PERF_SAMPLE_ADDR) {
528 PRINT_INDENT(indent, "addr %p\n", reinterpret_cast<void *>(data_.addr));
529 }
530 if (sampleType_ & PERF_SAMPLE_STREAM_ID) {
531 PRINT_INDENT(indent, "stream_id %" PRIu64 "\n", static_cast<uint64_t>(data_.stream_id));
532 }
533 if (sampleType_ & PERF_SAMPLE_CPU) {
534 PRINT_INDENT(indent, "cpu %u, res %u\n", data_.cpu, data_.res);
535 }
536 if (sampleType_ & PERF_SAMPLE_PERIOD) {
537 PRINT_INDENT(indent, "period %" PRIu64 "\n", static_cast<uint64_t>(data_.period));
538 }
539 if (stackId_.section.id > 0) {
540 PRINT_INDENT(indent, "stackid %" PRIu64 "\n", static_cast<uint64_t>(stackId_.section.id));
541 }
542 if (sampleType_ & PERF_SAMPLE_CALLCHAIN) {
543 bool userContext = false;
544 PRINT_INDENT(indent, "callchain nr=%lld\n", data_.nr);
545 for (uint64_t i = 0; i < data_.nr; ++i) {
546 std::string_view supplement = "";
547 if ((sampleType_ & PERF_SAMPLE_STACK_USER) == 0 || data_.ips[i] != PERF_CONTEXT_USER) {
548 PRINT_INDENT(indent + 1, "0x%llx%s\n", data_.ips[i], supplement.data());
549 continue;
550 }
551 // is PERF_SAMPLE_STACK_USER type and is PERF_CONTEXT_USER
552 if (!userContext) {
553 userContext = true;
554 supplement = " <unwind callstack>";
555 } else {
556 supplement = " <expand callstack>";
557 }
558 PRINT_INDENT(indent + 1, "0x%llx%s\n", data_.ips[i], supplement.data());
559 }
560 }
561 if (sampleType_ & PERF_SAMPLE_RAW) {
562 PRINT_INDENT(indent, "raw size=%u\n", data_.raw_size);
563 const uint32_t *data = reinterpret_cast<const uint32_t *>(data_.raw_data);
564 size_t size = data_.raw_size / sizeof(uint32_t);
565 for (size_t i = 0; i < size; ++i) {
566 PRINT_INDENT(indent + 1, "0x%08x (%x)\n", data[i], data[i]);
567 }
568 }
569 if (sampleType_ & PERF_SAMPLE_BRANCH_STACK) {
570 PRINT_INDENT(indent, "branch_stack nr=%lld\n", data_.bnr);
571 for (uint64_t i = 0; i < data_.bnr; ++i) {
572 auto &item = data_.lbr[i];
573 PRINT_INDENT(indent + 1, "from 0x%llx, to 0x%llx, flags 0x%llx\n", item.from, item.to, item.flags);
574 }
575 }
576 if (sampleType_ & PERF_SAMPLE_REGS_USER) {
577 PRINT_INDENT(indent, "user regs: abi=%lld, reg_nr=%lld\n", data_.user_abi, data_.reg_nr);
578 for (uint64_t i = 0; i < data_.reg_nr; ++i) {
579 PRINT_INDENT(indent + 1, "0x%llx\n", data_.user_regs[i]);
580 }
581 }
582 if (sampleType_ & PERF_SAMPLE_SERVER_PID) {
583 PRINT_INDENT(indent, "server nr=%lld\n", data_.server_nr);
584 for (uint64_t i = 0; i < data_.server_nr; ++i) {
585 PRINT_INDENT(indent + 1, "pid: %llu\n", data_.server_pids[i]);
586 }
587 }
588 if (sampleType_ & PERF_SAMPLE_STACK_USER) {
589 PRINT_INDENT(indent, "user stack: size %llu dyn_size %lld\n", data_.stack_size,
590 data_.dyn_size);
591 }
592 }
593
GetPid() const594 inline pid_t PerfRecordSample::GetPid() const
595 {
596 return data_.pid;
597 }
598
Clean()599 void PerfRecordSample::Clean()
600 {
601 ips_.clear();
602 callFrames_.clear();
603 serverPidMap_.clear();
604 }
605
PerfRecordMmap(uint8_t * p)606 PerfRecordMmap::PerfRecordMmap(uint8_t *p) : PerfEventRecord(p, "mmap")
607 {
608 size_t dataSize = GetSize();
609 if (dataSize >= sizeof(header)) {
610 size_t copySize = dataSize - sizeof(header);
611 if (memcpy_s(reinterpret_cast<uint8_t *>(&data_), sizeof(data_), p + sizeof(header), copySize) != 0) {
612 HLOGE("memcpy_s retren failed !!!");
613 }
614 } else {
615 HLOGE("PerfRecordMmap retren failed !!!");
616 }
617 }
618
PerfRecordMmap(bool inKernel,u32 pid,u32 tid,u64 addr,u64 len,u64 pgoff,const std::string & filename)619 PerfRecordMmap::PerfRecordMmap(bool inKernel, u32 pid, u32 tid, u64 addr, u64 len, u64 pgoff,
620 const std::string &filename)
621 : PerfEventRecord(PERF_RECORD_MMAP, inKernel, "mmap")
622 {
623 data_.pid = pid;
624 data_.tid = tid;
625 data_.addr = addr;
626 data_.len = len;
627 data_.pgoff = pgoff;
628 if (strncpy_s(data_.filename, KILO, filename.c_str(), filename.size()) != 0) {
629 HLOGE("strncpy_s failed");
630 }
631
632 header.size = sizeof(header) + sizeof(data_) - KILO + filename.size() + 1;
633 }
634
GetBinary(std::vector<uint8_t> & buf) const635 bool PerfRecordMmap::GetBinary(std::vector<uint8_t> &buf) const
636 {
637 if (buf.size() < GetSize()) {
638 buf.resize(GetSize());
639 }
640
641 GetHeaderBinary(buf);
642 uint8_t *p = buf.data() + GetHeaderSize();
643
644 // data_.filename[] is variable-length
645 std::copy(reinterpret_cast<const uint8_t *>(&data_),
646 reinterpret_cast<const uint8_t *>(&data_) + GetSize() - GetHeaderSize(), p);
647 return true;
648 }
649
DumpData(int indent) const650 void PerfRecordMmap::DumpData(int indent) const
651 {
652 #if defined(is_ohos) && is_ohos
653 if (IsRoot()) {
654 PRINT_INDENT(indent, "pid %u, tid %u, addr 0x%llx, len 0x%llx\n", data_.pid, data_.tid,
655 data_.addr, data_.len);
656 PRINT_INDENT(indent, "pgoff 0x%llx, filename %s\n", data_.pgoff, data_.filename);
657 }
658 #endif
659 }
660
DumpLog(const std::string & prefix) const661 void PerfRecordMmap::DumpLog(const std::string &prefix) const
662 {
663 HLOGV("%s: MMAP: size %d pid %u tid %u dso '%s' (0x%llx-0x%llx)@0x%llx", prefix.c_str(),
664 header.size, data_.pid, data_.tid, data_.filename, data_.addr, data_.addr + data_.len, data_.pgoff);
665 }
666
PerfRecordMmap2(uint8_t * p)667 PerfRecordMmap2::PerfRecordMmap2(uint8_t *p) : PerfEventRecord(p, "mmap2")
668 {
669 size_t dataSize = GetSize();
670 if (dataSize >= sizeof(header)) {
671 size_t copySize = dataSize - sizeof(header);
672 if (memcpy_s(reinterpret_cast<uint8_t *>(&data_), sizeof(data_), p + sizeof(header), copySize) != 0) {
673 HLOGE("memcpy_s retren failed !!!");
674 }
675 } else {
676 HLOGE("PerfRecordMmap2 retren failed !!!");
677 }
678 }
679
PerfRecordMmap2(bool inKernel,u32 pid,u32 tid,u64 addr,u64 len,u64 pgoff,u32 maj,u32 min,u64 ino,u32 prot,u32 flags,const std::string & filename)680 PerfRecordMmap2::PerfRecordMmap2(bool inKernel, u32 pid, u32 tid, u64 addr, u64 len, u64 pgoff,
681 u32 maj, u32 min, u64 ino, u32 prot, u32 flags,
682 const std::string &filename)
683 : PerfEventRecord(PERF_RECORD_MMAP2, inKernel, "mmap2")
684 {
685 data_.pid = pid;
686 data_.tid = tid;
687 data_.addr = addr;
688 data_.len = len;
689 data_.pgoff = pgoff;
690 data_.maj = maj;
691 data_.min = min;
692 data_.ino = ino;
693 data_.ino_generation = 0;
694 data_.prot = prot;
695 data_.flags = flags;
696 if (strncpy_s(data_.filename, KILO, filename.c_str(), filename.size()) != 0) {
697 HLOGE("strncpy_s failed");
698 }
699
700 header.size = sizeof(header) + sizeof(data_) - KILO + filename.size() + 1;
701 }
702
PerfRecordMmap2(bool inKernel,u32 pid,u32 tid,std::shared_ptr<DfxMap> item)703 PerfRecordMmap2::PerfRecordMmap2(bool inKernel, u32 pid, u32 tid, std::shared_ptr<DfxMap> item)
704 : PerfEventRecord(PERF_RECORD_MMAP2, inKernel, "mmap2")
705 {
706 data_.pid = pid;
707 data_.tid = tid;
708 if (item != nullptr) {
709 data_.addr = item->begin;
710 data_.len = item->end - item->begin;
711 data_.pgoff = item->offset;
712 data_.maj = item->major;
713 data_.min = item->minor;
714 data_.ino = item->inode;
715 data_.ino_generation = 0;
716 // r--p 00000000 103:3e 12307 /data/storage/el1/bundle/entry.hap
717 // why prot get from this is 7. rwxp
718 DfxMap::PermsToProts(item->perms, data_.prot, data_.flags);
719 if (strncpy_s(data_.filename, KILO, item->name.c_str(), item->name.size()) != 0) {
720 HLOGE("strncpy_s failed");
721 }
722
723 header.size = sizeof(header) + sizeof(data_) - KILO + item->name.size() + 1;
724 } else {
725 data_.addr = 0;
726 data_.len = 0;
727 data_.pgoff = 0;
728 data_.maj = 0;
729 data_.min = 0;
730 data_.ino = 0;
731 data_.ino_generation = 0;
732 if (memset_s(data_.filename, KILO, 0, KILO) != EOK) {
733 HLOGE("memset_s failed");
734 }
735 }
736 }
737
GetBinary(std::vector<uint8_t> & buf) const738 bool PerfRecordMmap2::GetBinary(std::vector<uint8_t> &buf) const
739 {
740 if (buf.size() < GetSize()) {
741 buf.resize(GetSize());
742 }
743
744 GetHeaderBinary(buf);
745 uint8_t *p = buf.data() + GetHeaderSize();
746
747 // data_.filename[] is variable-length
748 std::copy(reinterpret_cast<const uint8_t *>(&data_),
749 reinterpret_cast<const uint8_t *>(&data_) + GetSize() - GetHeaderSize(), p);
750 return true;
751 }
752
DumpData(int indent) const753 void PerfRecordMmap2::DumpData(int indent) const
754 {
755 #if defined(is_ohos) && is_ohos
756 if (IsRoot()) {
757 PRINT_INDENT(indent, "pid %u, tid %u, addr 0x%llx, len 0x%llx\n", data_.pid, data_.tid,
758 data_.addr, data_.len);
759 PRINT_INDENT(indent, "pgoff 0x%llx, maj %u, min %u, ino %llu, ino_generation %llu\n",
760 data_.pgoff, data_.maj, data_.min, data_.ino, data_.ino_generation);
761 PRINT_INDENT(indent, "prot %u, flags %u, filename %s\n", data_.prot, data_.flags,
762 data_.filename);
763 }
764 #endif
765 }
DumpLog(const std::string & prefix) const766 void PerfRecordMmap2::DumpLog(const std::string &prefix) const
767 {
768 HLOGV("%s: MMAP2: size %d pid %u tid %u dso '%s' (0x%llx-0x%llx)@0x%llx", prefix.c_str(),
769 header.size, data_.pid, data_.tid, data_.filename, data_.addr, data_.addr + data_.len,
770 data_.pgoff);
771 }
772
PerfRecordLost(uint8_t * p)773 PerfRecordLost::PerfRecordLost(uint8_t *p) : PerfEventRecord(p, "lost")
774 {
775 size_t dataSize = GetSize();
776 if (dataSize >= sizeof(header)) {
777 size_t copySize = dataSize - sizeof(header);
778 if (memcpy_s(reinterpret_cast<uint8_t *>(&data_), sizeof(data_), p + sizeof(header), copySize) != 0) {
779 HLOGE("memcpy_s retren failed !!!");
780 }
781 } else {
782 HLOGE("PerfRecordLost retren failed !!!");
783 }
784 }
785
GetBinary(std::vector<uint8_t> & buf) const786 bool PerfRecordLost::GetBinary(std::vector<uint8_t> &buf) const
787 {
788 if (buf.size() < GetSize()) {
789 buf.resize(GetSize());
790 }
791
792 GetHeaderBinary(buf);
793 uint8_t *p = buf.data() + GetHeaderSize();
794
795 auto pDest = reinterpret_cast<PerfRecordLostData *>(p);
796 *pDest = data_;
797
798 return true;
799 }
800
DumpData(int indent) const801 void PerfRecordLost::DumpData(int indent) const
802 {
803 PRINT_INDENT(indent, "id %llu, lost %llu\n", data_.id, data_.lost);
804 }
805
PerfRecordComm(uint8_t * p)806 PerfRecordComm::PerfRecordComm(uint8_t *p) : PerfEventRecord(p, "comm")
807 {
808 size_t dataSize = GetSize();
809 if (dataSize >= sizeof(header)) {
810 size_t copySize = dataSize - sizeof(header);
811 if (memcpy_s(reinterpret_cast<uint8_t *>(&data_), sizeof(data_), p + sizeof(header), copySize) != 0) {
812 HLOGE("memcpy_s retren failed !!!");
813 }
814 } else {
815 HLOGE("PerfRecordComm retren failed !!!");
816 }
817 }
818
PerfRecordComm(bool inKernel,u32 pid,u32 tid,const std::string & comm)819 PerfRecordComm::PerfRecordComm(bool inKernel, u32 pid, u32 tid, const std::string &comm)
820 : PerfEventRecord(PERF_RECORD_COMM, inKernel, "comm")
821 {
822 data_.pid = pid;
823 data_.tid = tid;
824 if (strncpy_s(data_.comm, KILO, comm.c_str(), comm.size()) != 0) {
825 HLOGE("strncpy_s failed !!!");
826 }
827
828 header.size = sizeof(header) + sizeof(data_) - KILO + comm.size() + 1;
829 }
830
GetBinary(std::vector<uint8_t> & buf) const831 bool PerfRecordComm::GetBinary(std::vector<uint8_t> &buf) const
832 {
833 if (buf.size() < GetSize()) {
834 buf.resize(GetSize());
835 }
836
837 GetHeaderBinary(buf);
838 uint8_t *p = buf.data() + GetHeaderSize();
839
840 // data_.comm[] is variable-length
841 std::copy(reinterpret_cast<const uint8_t *>(&data_),
842 reinterpret_cast<const uint8_t *>(&data_) + GetSize() - GetHeaderSize(), p);
843
844 return true;
845 }
846
DumpData(int indent) const847 void PerfRecordComm::DumpData(int indent) const
848 {
849 PRINT_INDENT(indent, "pid %u, tid %u, comm %s\n", data_.pid, data_.tid, data_.comm);
850 }
851
DumpLog(const std::string & prefix) const852 void PerfRecordComm::DumpLog(const std::string &prefix) const
853 {
854 HLOGV("pid %u, tid %u, comm %s\n", data_.pid, data_.tid, data_.comm);
855 }
856
PerfRecordExit(uint8_t * p)857 PerfRecordExit::PerfRecordExit(uint8_t *p) : PerfEventRecord(p, "exit")
858 {
859 size_t dataSize = GetSize();
860 if (dataSize >= sizeof(header)) {
861 size_t copySize = dataSize - sizeof(header);
862 if (memcpy_s(reinterpret_cast<uint8_t *>(&data_), sizeof(data_), p + sizeof(header), copySize) != 0) {
863 HLOGE("memcpy_s retren failed !!!");
864 }
865 } else {
866 HLOGE("PerfRecordExit retren failed !!!");
867 }
868 }
869
GetBinary(std::vector<uint8_t> & buf) const870 bool PerfRecordExit::GetBinary(std::vector<uint8_t> &buf) const
871 {
872 if (buf.size() < GetSize()) {
873 buf.resize(GetSize());
874 }
875
876 GetHeaderBinary(buf);
877 uint8_t *p = buf.data() + GetHeaderSize();
878
879 auto pDest = reinterpret_cast<PerfRecordExitData *>(p);
880 *pDest = data_;
881 return true;
882 }
883
DumpData(int indent) const884 void PerfRecordExit::DumpData(int indent) const
885 {
886 PRINT_INDENT(indent, "pid %u, ppid %u, tid %u, ptid %u time 0x%llx\n", data_.pid, data_.ppid,
887 data_.tid, data_.ptid, data_.time);
888 }
889
PerfRecordThrottle(uint8_t * p)890 PerfRecordThrottle::PerfRecordThrottle(uint8_t *p) : PerfEventRecord(p, "throttle")
891 {
892 size_t dataSize = GetSize();
893 if (dataSize >= sizeof(header)) {
894 size_t copySize = dataSize - sizeof(header);
895 if (memcpy_s(reinterpret_cast<uint8_t *>(&data_), sizeof(data_), p + sizeof(header), copySize) != 0) {
896 HLOGE("memcpy_s retren failed !!!");
897 }
898 } else {
899 HLOGE("PerfRecordThrottle retren failed !!!");
900 }
901 }
902
GetBinary(std::vector<uint8_t> & buf) const903 bool PerfRecordThrottle::GetBinary(std::vector<uint8_t> &buf) const
904 {
905 if (buf.size() < GetSize()) {
906 buf.resize(GetSize());
907 }
908
909 GetHeaderBinary(buf);
910 uint8_t *p = buf.data() + GetHeaderSize();
911
912 auto pDest = reinterpret_cast<PerfRecordThrottleData *>(p);
913 *pDest = data_;
914 return true;
915 }
916
DumpData(int indent) const917 void PerfRecordThrottle::DumpData(int indent) const
918 {
919 PRINT_INDENT(indent, "time 0x%llx, id %llx, stream_id %llx\n", data_.time, data_.id,
920 data_.stream_id);
921 }
922
PerfRecordUnthrottle(uint8_t * p)923 PerfRecordUnthrottle::PerfRecordUnthrottle(uint8_t *p) : PerfEventRecord(p, "unthrottle")
924 {
925 size_t dataSize = GetSize();
926 if (dataSize >= sizeof(header)) {
927 size_t copySize = dataSize - sizeof(header);
928 if (memcpy_s(reinterpret_cast<uint8_t *>(&data_), sizeof(data_), p + sizeof(header), copySize) != 0) {
929 HLOGE("memcpy_s retren failed !!!");
930 }
931 } else {
932 HLOGE("PerfRecordUnthrottle retren failed !!!");
933 }
934 }
935
GetBinary(std::vector<uint8_t> & buf) const936 bool PerfRecordUnthrottle::GetBinary(std::vector<uint8_t> &buf) const
937 {
938 if (buf.size() < GetSize()) {
939 buf.resize(GetSize());
940 }
941
942 GetHeaderBinary(buf);
943 uint8_t *p = buf.data() + GetHeaderSize();
944
945 auto pDest = reinterpret_cast<PerfRecordThrottleData *>(p);
946 *pDest = data_;
947 return true;
948 }
DumpData(int indent) const949 void PerfRecordUnthrottle::DumpData(int indent) const
950 {
951 PRINT_INDENT(indent, "time 0x%llx, id %llx, stream_id %llx\n", data_.time, data_.id,
952 data_.stream_id);
953 }
954
PerfRecordFork(uint8_t * p)955 PerfRecordFork::PerfRecordFork(uint8_t *p) : PerfEventRecord(p, "fork")
956 {
957 size_t dataSize = GetSize();
958 if (dataSize >= sizeof(header)) {
959 size_t copySize = dataSize - sizeof(header);
960 if (memcpy_s(reinterpret_cast<uint8_t *>(&data_), sizeof(data_), p + sizeof(header), copySize) != 0) {
961 HLOGE("memcpy_s retren failed !!!");
962 }
963 } else {
964 HLOGE("PerfRecordFork retren failed !!!");
965 }
966 }
967
GetBinary(std::vector<uint8_t> & buf) const968 bool PerfRecordFork::GetBinary(std::vector<uint8_t> &buf) const
969 {
970 if (buf.size() < GetSize()) {
971 buf.resize(GetSize());
972 }
973
974 GetHeaderBinary(buf);
975 uint8_t *p = buf.data() + GetHeaderSize();
976
977 auto pDest = reinterpret_cast<PerfRecordForkData *>(p);
978 *pDest = data_;
979 return true;
980 }
981
DumpData(int indent) const982 void PerfRecordFork::DumpData(int indent) const
983 {
984 PRINT_INDENT(indent, "pid %u, ppid %u, tid %u, ptid %u\n", data_.pid, data_.ppid, data_.tid,
985 data_.ptid);
986 }
987
PerfRecordRead(uint8_t * p)988 PerfRecordRead::PerfRecordRead(uint8_t *p) : PerfEventRecord(p, "read")
989 {
990 size_t dataSize = GetSize();
991 if (dataSize >= sizeof(header)) {
992 size_t copySize = dataSize - sizeof(header);
993 if (memcpy_s(reinterpret_cast<uint8_t *>(&data_), sizeof(data_), p + sizeof(header), copySize) != 0) {
994 HLOGE("memcpy_s retren failed !!!");
995 }
996 } else {
997 HLOGE("PerfRecordRead retren failed !!!");
998 }
999 }
1000
GetBinary(std::vector<uint8_t> & buf) const1001 bool PerfRecordRead::GetBinary(std::vector<uint8_t> &buf) const
1002 {
1003 if (buf.size() < GetSize()) {
1004 buf.resize(GetSize());
1005 }
1006
1007 GetHeaderBinary(buf);
1008 uint8_t *p = buf.data() + GetHeaderSize();
1009
1010 auto pDest = reinterpret_cast<PerfRecordReadData *>(p);
1011 *pDest = data_;
1012 return true;
1013 }
1014
DumpData(int indent) const1015 void PerfRecordRead::DumpData(int indent) const
1016 {
1017 PRINT_INDENT(indent, "pid %u, tid %u\n", data_.pid, data_.tid);
1018 PRINT_INDENT(indent, "values: value %llx, timeEnabled %llx, timeRunning %llx, id %llx\n",
1019 data_.values.value, data_.values.timeEnabled, data_.values.timeRunning, data_.values.id);
1020 }
1021
PerfRecordAux(uint8_t * p)1022 PerfRecordAux::PerfRecordAux(uint8_t *p) : PerfEventRecord(p, "aux")
1023 {
1024 size_t dataSize = GetSize();
1025 if (dataSize >= sizeof(header)) {
1026 size_t copySize = dataSize - sizeof(header);
1027 if (memcpy_s(reinterpret_cast<uint8_t *>(&data_), sizeof(data_), p + sizeof(header), copySize) != 0) {
1028 HLOGE("memcpy_s retren failed !!!");
1029 }
1030 } else {
1031 HLOGE("PerfRecordAux retren failed !!!");
1032 }
1033 }
1034
GetBinary(std::vector<uint8_t> & buf) const1035 bool PerfRecordAux::GetBinary(std::vector<uint8_t> &buf) const
1036 {
1037 if (buf.size() < GetSize()) {
1038 buf.resize(GetSize());
1039 }
1040
1041 GetHeaderBinary(buf);
1042 uint8_t *p = buf.data() + GetHeaderSize();
1043
1044 PushToBinary(true, p, data_.aux_offset);
1045 PushToBinary(true, p, data_.aux_size);
1046 PushToBinary(true, p, data_.flags);
1047 PushToBinary2(sampleType_ & PERF_SAMPLE_TID, p, data_.sample_id.pid, data_.sample_id.tid);
1048 PushToBinary(sampleType_ & PERF_SAMPLE_TIME, p, data_.sample_id.time);
1049 PushToBinary(sampleType_ & PERF_SAMPLE_ID, p, data_.sample_id.id);
1050 PushToBinary(sampleType_ & PERF_SAMPLE_STREAM_ID, p, data_.sample_id.stream_id);
1051
1052 PushToBinary2(sampleType_ & PERF_SAMPLE_CPU, p, data_.sample_id.cpu, data_.sample_id.res);
1053 PushToBinary(sampleType_ & PERF_SAMPLE_IDENTIFIER, p, data_.sample_id.id2);
1054 return true;
1055 }
1056
DumpData(int indent) const1057 void PerfRecordAux::DumpData(int indent) const
1058 {
1059 PRINT_INDENT(indent, "aux_offset 0x%llx aux_size 0x%llx flags 0x%llx pid %u tid %u time %llu",
1060 data_.aux_offset, data_.aux_size, data_.flags, data_.sample_id.pid, data_.sample_id.tid,
1061 data_.sample_id.time);
1062 }
1063
PerfRecordItraceStart(uint8_t * p)1064 PerfRecordItraceStart::PerfRecordItraceStart(uint8_t *p) : PerfEventRecord(p, "itraceStart")
1065 {
1066 size_t dataSize = GetSize();
1067 if (dataSize >= sizeof(header)) {
1068 size_t copySize = dataSize - sizeof(header);
1069 if (memcpy_s(reinterpret_cast<uint8_t *>(&data_), sizeof(data_), p + sizeof(header), copySize) != 0) {
1070 HLOGE("memcpy_s retren failed !!!");
1071 }
1072 } else {
1073 HLOGE("PerfRecordItraceStart retren failed !!!");
1074 }
1075 }
1076
GetBinary(std::vector<uint8_t> & buf) const1077 bool PerfRecordItraceStart::GetBinary(std::vector<uint8_t> &buf) const
1078 {
1079 if (buf.size() < GetSize()) {
1080 buf.resize(GetSize());
1081 }
1082
1083 GetHeaderBinary(buf);
1084 uint8_t *p = buf.data() + GetHeaderSize();
1085
1086 auto pDest = reinterpret_cast<PerfRecordItraceStartData *>(p);
1087 *pDest = data_;
1088 return true;
1089 }
1090
DumpData(int indent) const1091 void PerfRecordItraceStart::DumpData(int indent) const
1092 {
1093 PRINT_INDENT(indent, "pid %u, tid %u\n", data_.pid, data_.tid);
1094 }
1095
PerfRecordLostSamples(uint8_t * p)1096 PerfRecordLostSamples::PerfRecordLostSamples(uint8_t *p) : PerfEventRecord(p, "lostSamples")
1097 {
1098 size_t dataSize = GetSize();
1099 if (dataSize >= sizeof(header)) {
1100 size_t copySize = dataSize - sizeof(header);
1101 if (memcpy_s(reinterpret_cast<uint8_t *>(&data_), sizeof(data_), p + sizeof(header), copySize) != 0) {
1102 HLOGE("memcpy_s retren failed !!!");
1103 }
1104 } else {
1105 HLOGE("PerfRecordLostSamples retren failed !!!");
1106 }
1107 }
1108
GetBinary(std::vector<uint8_t> & buf) const1109 bool PerfRecordLostSamples::GetBinary(std::vector<uint8_t> &buf) const
1110 {
1111 if (buf.size() < GetSize()) {
1112 buf.resize(GetSize());
1113 }
1114
1115 GetHeaderBinary(buf);
1116 uint8_t *p = buf.data() + GetHeaderSize();
1117
1118 auto pDest = reinterpret_cast<PerfRecordLostSamplesData *>(p);
1119 *pDest = data_;
1120 return true;
1121 }
1122
DumpData(int indent) const1123 void PerfRecordLostSamples::DumpData(int indent) const
1124 {
1125 PRINT_INDENT(indent, "lost %llu\n", data_.lost);
1126 }
1127
PerfRecordSwitch(uint8_t * p)1128 PerfRecordSwitch::PerfRecordSwitch(uint8_t *p) : PerfEventRecord(p, "switch")
1129 {
1130 size_t dataSize = GetSize();
1131 if (dataSize >= sizeof(header)) {
1132 size_t copySize = dataSize - sizeof(header);
1133 if (memcpy_s(reinterpret_cast<uint8_t *>(&data_), sizeof(data_), p + sizeof(header), copySize) != 0) {
1134 HLOGE("memcpy_s retren failed !!!");
1135 }
1136 } else {
1137 HLOGE("PerfRecordSwitch retren failed !!!");
1138 }
1139 }
1140
GetBinary(std::vector<uint8_t> & buf) const1141 bool PerfRecordSwitch::GetBinary(std::vector<uint8_t> &buf) const
1142 {
1143 if (buf.size() < GetSize()) {
1144 buf.resize(GetSize());
1145 }
1146
1147 GetHeaderBinary(buf);
1148 uint8_t *p = buf.data() + GetHeaderSize();
1149
1150 auto pDest = reinterpret_cast<PerfRecordSwitchData *>(p);
1151 *pDest = data_;
1152 return true;
1153 }
1154
PerfRecordSwitchCpuWide(uint8_t * p)1155 PerfRecordSwitchCpuWide::PerfRecordSwitchCpuWide(uint8_t *p) : PerfEventRecord(p, "switchCpuWide")
1156 {
1157 size_t dataSize = GetSize();
1158 if (dataSize >= sizeof(header)) {
1159 size_t copySize = dataSize - sizeof(header);
1160 if (memcpy_s(reinterpret_cast<uint8_t *>(&data_), sizeof(data_), p + sizeof(header), copySize) != 0) {
1161 HLOGE("memcpy_s retren failed !!!");
1162 }
1163 } else {
1164 HLOGE("PerfRecordSwitchCpuWide retren failed !!!");
1165 }
1166 }
1167
GetBinary(std::vector<uint8_t> & buf) const1168 bool PerfRecordSwitchCpuWide::GetBinary(std::vector<uint8_t> &buf) const
1169 {
1170 if (buf.size() < GetSize()) {
1171 buf.resize(GetSize());
1172 }
1173
1174 GetHeaderBinary(buf);
1175 uint8_t *p = buf.data() + GetHeaderSize();
1176
1177 auto pDest = reinterpret_cast<PerfRecordSwitchCpuWideData *>(p);
1178 *pDest = data_;
1179 return true;
1180 }
1181
DumpData(int indent) const1182 void PerfRecordSwitchCpuWide::DumpData(int indent) const
1183 {
1184 PRINT_INDENT(indent, "next_prev_pid %u, next_prev_tid %u\n", data_.next_prev_pid,
1185 data_.next_prev_tid);
1186 }
1187
GetUstackServerPid()1188 pid_t PerfRecordSample::GetUstackServerPid()
1189 {
1190 if (!data_.server_nr) {
1191 return data_.pid;
1192 }
1193
1194 size_t currServer = 0;
1195 // ipNr == 1...nr: server_pid of data_.ips[nr]
1196 for (size_t i = 0; i < data_.nr; i++) {
1197 // context change, use next server pid
1198 if (data_.ips[i] >= PERF_CONTEXT_MAX) {
1199 currServer++;
1200 }
1201 }
1202 // ipNr == nr + 1: server_pid of ustack
1203 if (currServer > 0) {
1204 currServer++;
1205 }
1206 if (currServer >= data_.server_nr) {
1207 HLOGE("ustack server pid nr %zu out of range", currServer);
1208 return data_.pid;
1209 }
1210
1211 // return server pid
1212 return data_.server_pids[currServer];
1213 }
1214
GetServerPidof(unsigned int ipNr)1215 pid_t PerfRecordSample::GetServerPidof(unsigned int ipNr)
1216 {
1217 if (!data_.server_nr) {
1218 return data_.pid;
1219 }
1220
1221 // init serverPidMap_
1222 if (!serverPidMap_.size()) {
1223 size_t currServer = 0;
1224 // ipNr == 0: server_pid of data_.ip
1225 serverPidMap_.emplace_back(data_.server_pids[currServer]);
1226 // ipNr == 1...nr: server_pid of data_.ips[nr]
1227 for (size_t i = 1; i < data_.nr; i++) {
1228 // context change, use next server pid
1229 if (data_.ips[i] >= PERF_CONTEXT_MAX) {
1230 currServer++;
1231 }
1232 if (currServer >= data_.server_nr) {
1233 HLOGE("callchain server pid nr %zu out of range", currServer);
1234 break;
1235 }
1236 serverPidMap_.emplace_back(data_.server_pids[currServer]);
1237 }
1238 }
1239
1240 // return server pid
1241 if (ipNr >= serverPidMap_.size()) {
1242 return data_.pid;
1243 } else {
1244 return serverPidMap_[ipNr];
1245 }
1246 }
1247 } // namespace HiPerf
1248 } // namespace Developtools
1249 } // namespace OHOS
1250