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1028 lines
28 KiB
1028 lines
28 KiB
/* |
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* Copyright (C) 2013-2014 The Android Open Source Project |
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* |
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* Licensed under the Apache License, Version 2.0 (the "License"); |
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* you may not use this file except in compliance with the License. |
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* You may obtain a copy of the License at |
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* |
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* http://www.apache.org/licenses/LICENSE-2.0 |
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* |
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* Unless required by applicable law or agreed to in writing, software |
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* distributed under the License is distributed on an "AS IS" BASIS, |
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. |
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* See the License for the specific language governing permissions and |
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* limitations under the License. |
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*/ |
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|
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#include <fcntl.h> |
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#include <inttypes.h> |
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#include <poll.h> |
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#include <sys/endian.h> |
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#include <sys/socket.h> |
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#include <sys/types.h> |
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#include <unistd.h> |
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#include <unordered_set> |
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#include <android-base/file.h> |
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#include <cutils/sockets.h> |
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#include <log/event_tag_map.h> |
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#include <log/log_transport.h> |
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#include <private/android_logger.h> |
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|
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#include "benchmark.h" |
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|
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// enhanced version of LOG_FAILURE_RETRY to add support for EAGAIN and |
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// non-syscall libs. Since we are benchmarking, or using this in the emergency |
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// signal to stuff a terminating code, we do NOT want to introduce |
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// a syscall or usleep on EAGAIN retry. |
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#define LOG_FAILURE_RETRY(exp) \ |
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({ \ |
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typeof(exp) _rc; \ |
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do { \ |
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_rc = (exp); \ |
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} while (((_rc == -1) && ((errno == EINTR) || (errno == EAGAIN))) || \ |
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(_rc == -EINTR) || (_rc == -EAGAIN)); \ |
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_rc; \ |
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}) |
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|
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/* |
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* Measure the fastest rate we can reliabley stuff print messages into |
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* the log at high pressure. Expect this to be less than double the process |
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* wakeup time (2ms?) |
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*/ |
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static void BM_log_maximum_retry(int iters) { |
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StartBenchmarkTiming(); |
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for (int i = 0; i < iters; ++i) { |
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LOG_FAILURE_RETRY( |
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__android_log_print(ANDROID_LOG_INFO, "BM_log_maximum_retry", "%d", i)); |
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} |
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StopBenchmarkTiming(); |
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} |
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BENCHMARK(BM_log_maximum_retry); |
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|
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/* |
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* Measure the fastest rate we can stuff print messages into the log |
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* at high pressure. Expect this to be less than double the process wakeup |
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* time (2ms?) |
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*/ |
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static void BM_log_maximum(int iters) { |
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StartBenchmarkTiming(); |
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for (int i = 0; i < iters; ++i) { |
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__android_log_print(ANDROID_LOG_INFO, "BM_log_maximum", "%d", i); |
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} |
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StopBenchmarkTiming(); |
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} |
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BENCHMARK(BM_log_maximum); |
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static void set_log_null() { |
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android_set_log_transport(LOGGER_NULL); |
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} |
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static void set_log_default() { |
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android_set_log_transport(LOGGER_DEFAULT); |
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} |
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static void BM_log_maximum_null(int iters) { |
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set_log_null(); |
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BM_log_maximum(iters); |
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set_log_default(); |
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} |
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BENCHMARK(BM_log_maximum_null); |
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|
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/* |
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* Measure the time it takes to collect the time using |
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* discrete acquisition (StartBenchmarkTiming() -> StopBenchmarkTiming()) |
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* under light load. Expect this to be a syscall period (2us) or |
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* data read time if zero-syscall. |
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* |
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* vdso support in the kernel and the library can allow |
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* clock_gettime to be zero-syscall. |
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*/ |
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static void BM_clock_overhead(int iters) { |
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for (int i = 0; i < iters; ++i) { |
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StartBenchmarkTiming(); |
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StopBenchmarkTiming(); |
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} |
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} |
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BENCHMARK(BM_clock_overhead); |
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|
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/* |
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* Measure the time it takes to submit the android logging data to pstore |
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*/ |
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static void BM_pmsg_short(int iters) { |
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int pstore_fd = TEMP_FAILURE_RETRY(open("/dev/pmsg0", O_WRONLY)); |
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if (pstore_fd < 0) { |
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return; |
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} |
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|
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/* |
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* struct { |
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* // what we provide to pstore |
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* android_pmsg_log_header_t pmsg_header; |
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* // what we provide to socket |
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* android_log_header_t header; |
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* // caller provides |
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* union { |
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* struct { |
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* char prio; |
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* char payload[]; |
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* } string; |
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* struct { |
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* uint32_t tag |
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* char payload[]; |
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* } binary; |
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* }; |
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* }; |
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*/ |
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struct timespec ts; |
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clock_gettime(android_log_clockid(), &ts); |
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android_pmsg_log_header_t pmsg_header; |
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pmsg_header.magic = LOGGER_MAGIC; |
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pmsg_header.len = |
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sizeof(android_pmsg_log_header_t) + sizeof(android_log_header_t); |
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pmsg_header.uid = getuid(); |
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pmsg_header.pid = getpid(); |
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|
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android_log_header_t header; |
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header.tid = gettid(); |
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header.realtime.tv_sec = ts.tv_sec; |
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header.realtime.tv_nsec = ts.tv_nsec; |
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static const unsigned nr = 1; |
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static const unsigned header_length = 2; |
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struct iovec newVec[nr + header_length]; |
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newVec[0].iov_base = (unsigned char*)&pmsg_header; |
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newVec[0].iov_len = sizeof(pmsg_header); |
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newVec[1].iov_base = (unsigned char*)&header; |
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newVec[1].iov_len = sizeof(header); |
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android_log_event_int_t buffer; |
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header.id = LOG_ID_EVENTS; |
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buffer.header.tag = 0; |
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buffer.payload.type = EVENT_TYPE_INT; |
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uint32_t snapshot = 0; |
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buffer.payload.data = htole32(snapshot); |
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newVec[2].iov_base = &buffer; |
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newVec[2].iov_len = sizeof(buffer); |
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StartBenchmarkTiming(); |
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for (int i = 0; i < iters; ++i) { |
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++snapshot; |
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buffer.payload.data = htole32(snapshot); |
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writev(pstore_fd, newVec, nr); |
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} |
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StopBenchmarkTiming(); |
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close(pstore_fd); |
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} |
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BENCHMARK(BM_pmsg_short); |
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|
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/* |
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* Measure the time it takes to submit the android logging data to pstore |
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* best case aligned single block. |
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*/ |
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static void BM_pmsg_short_aligned(int iters) { |
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int pstore_fd = TEMP_FAILURE_RETRY(open("/dev/pmsg0", O_WRONLY)); |
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if (pstore_fd < 0) { |
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return; |
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} |
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|
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/* |
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* struct { |
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* // what we provide to pstore |
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* android_pmsg_log_header_t pmsg_header; |
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* // what we provide to socket |
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* android_log_header_t header; |
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* // caller provides |
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* union { |
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* struct { |
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* char prio; |
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* char payload[]; |
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* } string; |
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* struct { |
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* uint32_t tag |
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* char payload[]; |
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* } binary; |
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* }; |
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* }; |
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*/ |
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struct timespec ts; |
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clock_gettime(android_log_clockid(), &ts); |
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struct packet { |
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android_pmsg_log_header_t pmsg_header; |
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android_log_header_t header; |
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android_log_event_int_t payload; |
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}; |
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alignas(8) char buf[sizeof(struct packet) + 8]; |
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memset(buf, 0, sizeof(buf)); |
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struct packet* buffer = (struct packet*)(((uintptr_t)buf + 7) & ~7); |
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if (((uintptr_t)&buffer->pmsg_header) & 7) { |
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fprintf(stderr, "&buffer=0x%p iters=%d\n", &buffer->pmsg_header, iters); |
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} |
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buffer->pmsg_header.magic = LOGGER_MAGIC; |
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buffer->pmsg_header.len = |
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sizeof(android_pmsg_log_header_t) + sizeof(android_log_header_t); |
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buffer->pmsg_header.uid = getuid(); |
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buffer->pmsg_header.pid = getpid(); |
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|
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buffer->header.tid = gettid(); |
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buffer->header.realtime.tv_sec = ts.tv_sec; |
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buffer->header.realtime.tv_nsec = ts.tv_nsec; |
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buffer->header.id = LOG_ID_EVENTS; |
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buffer->payload.header.tag = 0; |
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buffer->payload.payload.type = EVENT_TYPE_INT; |
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uint32_t snapshot = 0; |
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buffer->payload.payload.data = htole32(snapshot); |
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|
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StartBenchmarkTiming(); |
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for (int i = 0; i < iters; ++i) { |
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++snapshot; |
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buffer->payload.payload.data = htole32(snapshot); |
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write(pstore_fd, &buffer->pmsg_header, |
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sizeof(android_pmsg_log_header_t) + sizeof(android_log_header_t) + |
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sizeof(android_log_event_int_t)); |
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} |
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StopBenchmarkTiming(); |
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close(pstore_fd); |
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} |
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BENCHMARK(BM_pmsg_short_aligned); |
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|
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/* |
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* Measure the time it takes to submit the android logging data to pstore |
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* best case aligned single block. |
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*/ |
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static void BM_pmsg_short_unaligned1(int iters) { |
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int pstore_fd = TEMP_FAILURE_RETRY(open("/dev/pmsg0", O_WRONLY)); |
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if (pstore_fd < 0) { |
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return; |
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} |
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|
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/* |
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* struct { |
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* // what we provide to pstore |
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* android_pmsg_log_header_t pmsg_header; |
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* // what we provide to socket |
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* android_log_header_t header; |
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* // caller provides |
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* union { |
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* struct { |
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* char prio; |
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* char payload[]; |
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* } string; |
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* struct { |
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* uint32_t tag |
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* char payload[]; |
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* } binary; |
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* }; |
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* }; |
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*/ |
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|
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struct timespec ts; |
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clock_gettime(android_log_clockid(), &ts); |
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|
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struct packet { |
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android_pmsg_log_header_t pmsg_header; |
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android_log_header_t header; |
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android_log_event_int_t payload; |
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}; |
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alignas(8) char buf[sizeof(struct packet) + 8]; |
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memset(buf, 0, sizeof(buf)); |
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struct packet* buffer = (struct packet*)((((uintptr_t)buf + 7) & ~7) + 1); |
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if ((((uintptr_t)&buffer->pmsg_header) & 7) != 1) { |
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fprintf(stderr, "&buffer=0x%p iters=%d\n", &buffer->pmsg_header, iters); |
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} |
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|
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buffer->pmsg_header.magic = LOGGER_MAGIC; |
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buffer->pmsg_header.len = |
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sizeof(android_pmsg_log_header_t) + sizeof(android_log_header_t); |
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buffer->pmsg_header.uid = getuid(); |
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buffer->pmsg_header.pid = getpid(); |
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|
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buffer->header.tid = gettid(); |
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buffer->header.realtime.tv_sec = ts.tv_sec; |
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buffer->header.realtime.tv_nsec = ts.tv_nsec; |
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|
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buffer->header.id = LOG_ID_EVENTS; |
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buffer->payload.header.tag = 0; |
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buffer->payload.payload.type = EVENT_TYPE_INT; |
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uint32_t snapshot = 0; |
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buffer->payload.payload.data = htole32(snapshot); |
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|
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StartBenchmarkTiming(); |
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for (int i = 0; i < iters; ++i) { |
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++snapshot; |
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buffer->payload.payload.data = htole32(snapshot); |
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write(pstore_fd, &buffer->pmsg_header, |
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sizeof(android_pmsg_log_header_t) + sizeof(android_log_header_t) + |
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sizeof(android_log_event_int_t)); |
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} |
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StopBenchmarkTiming(); |
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close(pstore_fd); |
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} |
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BENCHMARK(BM_pmsg_short_unaligned1); |
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|
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/* |
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* Measure the time it takes to submit the android logging data to pstore |
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* best case aligned single block. |
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*/ |
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static void BM_pmsg_long_aligned(int iters) { |
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int pstore_fd = TEMP_FAILURE_RETRY(open("/dev/pmsg0", O_WRONLY)); |
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if (pstore_fd < 0) { |
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return; |
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} |
|
|
|
/* |
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* struct { |
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* // what we provide to pstore |
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* android_pmsg_log_header_t pmsg_header; |
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* // what we provide to socket |
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* android_log_header_t header; |
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* // caller provides |
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* union { |
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* struct { |
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* char prio; |
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* char payload[]; |
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* } string; |
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* struct { |
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* uint32_t tag |
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* char payload[]; |
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* } binary; |
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* }; |
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* }; |
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*/ |
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|
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struct timespec ts; |
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clock_gettime(android_log_clockid(), &ts); |
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|
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struct packet { |
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android_pmsg_log_header_t pmsg_header; |
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android_log_header_t header; |
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android_log_event_int_t payload; |
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}; |
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alignas(8) char buf[sizeof(struct packet) + 8 + LOGGER_ENTRY_MAX_PAYLOAD]; |
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memset(buf, 0, sizeof(buf)); |
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struct packet* buffer = (struct packet*)(((uintptr_t)buf + 7) & ~7); |
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if (((uintptr_t)&buffer->pmsg_header) & 7) { |
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fprintf(stderr, "&buffer=0x%p iters=%d\n", &buffer->pmsg_header, iters); |
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} |
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|
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buffer->pmsg_header.magic = LOGGER_MAGIC; |
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buffer->pmsg_header.len = |
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sizeof(android_pmsg_log_header_t) + sizeof(android_log_header_t); |
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buffer->pmsg_header.uid = getuid(); |
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buffer->pmsg_header.pid = getpid(); |
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|
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buffer->header.tid = gettid(); |
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buffer->header.realtime.tv_sec = ts.tv_sec; |
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buffer->header.realtime.tv_nsec = ts.tv_nsec; |
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|
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buffer->header.id = LOG_ID_EVENTS; |
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buffer->payload.header.tag = 0; |
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buffer->payload.payload.type = EVENT_TYPE_INT; |
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uint32_t snapshot = 0; |
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buffer->payload.payload.data = htole32(snapshot); |
|
|
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StartBenchmarkTiming(); |
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for (int i = 0; i < iters; ++i) { |
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++snapshot; |
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buffer->payload.payload.data = htole32(snapshot); |
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write(pstore_fd, &buffer->pmsg_header, LOGGER_ENTRY_MAX_PAYLOAD); |
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} |
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StopBenchmarkTiming(); |
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close(pstore_fd); |
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} |
|
BENCHMARK(BM_pmsg_long_aligned); |
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|
|
/* |
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* Measure the time it takes to submit the android logging data to pstore |
|
* best case aligned single block. |
|
*/ |
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static void BM_pmsg_long_unaligned1(int iters) { |
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int pstore_fd = TEMP_FAILURE_RETRY(open("/dev/pmsg0", O_WRONLY)); |
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if (pstore_fd < 0) { |
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return; |
|
} |
|
|
|
/* |
|
* struct { |
|
* // what we provide to pstore |
|
* android_pmsg_log_header_t pmsg_header; |
|
* // what we provide to socket |
|
* android_log_header_t header; |
|
* // caller provides |
|
* union { |
|
* struct { |
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* char prio; |
|
* char payload[]; |
|
* } string; |
|
* struct { |
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* uint32_t tag |
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* char payload[]; |
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* } binary; |
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* }; |
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* }; |
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*/ |
|
|
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struct timespec ts; |
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clock_gettime(android_log_clockid(), &ts); |
|
|
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struct packet { |
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android_pmsg_log_header_t pmsg_header; |
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android_log_header_t header; |
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android_log_event_int_t payload; |
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}; |
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alignas(8) char buf[sizeof(struct packet) + 8 + LOGGER_ENTRY_MAX_PAYLOAD]; |
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memset(buf, 0, sizeof(buf)); |
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struct packet* buffer = (struct packet*)((((uintptr_t)buf + 7) & ~7) + 1); |
|
if ((((uintptr_t)&buffer->pmsg_header) & 7) != 1) { |
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fprintf(stderr, "&buffer=0x%p iters=%d\n", &buffer->pmsg_header, iters); |
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} |
|
|
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buffer->pmsg_header.magic = LOGGER_MAGIC; |
|
buffer->pmsg_header.len = |
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sizeof(android_pmsg_log_header_t) + sizeof(android_log_header_t); |
|
buffer->pmsg_header.uid = getuid(); |
|
buffer->pmsg_header.pid = getpid(); |
|
|
|
buffer->header.tid = gettid(); |
|
buffer->header.realtime.tv_sec = ts.tv_sec; |
|
buffer->header.realtime.tv_nsec = ts.tv_nsec; |
|
|
|
buffer->header.id = LOG_ID_EVENTS; |
|
buffer->payload.header.tag = 0; |
|
buffer->payload.payload.type = EVENT_TYPE_INT; |
|
uint32_t snapshot = 0; |
|
buffer->payload.payload.data = htole32(snapshot); |
|
|
|
StartBenchmarkTiming(); |
|
for (int i = 0; i < iters; ++i) { |
|
++snapshot; |
|
buffer->payload.payload.data = htole32(snapshot); |
|
write(pstore_fd, &buffer->pmsg_header, LOGGER_ENTRY_MAX_PAYLOAD); |
|
} |
|
StopBenchmarkTiming(); |
|
close(pstore_fd); |
|
} |
|
BENCHMARK(BM_pmsg_long_unaligned1); |
|
|
|
/* |
|
* Measure the time it takes to form sprintf plus time using |
|
* discrete acquisition (StartBenchmarkTiming() -> StopBenchmarkTiming()) |
|
* under light load. Expect this to be a syscall period (2us) or sprintf |
|
* time if zero-syscall time. |
|
*/ |
|
/* helper function */ |
|
static void test_print(const char* fmt, ...) { |
|
va_list ap; |
|
char buf[1024]; |
|
|
|
va_start(ap, fmt); |
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vsnprintf(buf, sizeof(buf), fmt, ap); |
|
va_end(ap); |
|
} |
|
|
|
#define logd_yield() sched_yield() // allow logd to catch up |
|
#define logd_sleep() usleep(50) // really allow logd to catch up |
|
|
|
/* performance test */ |
|
static void BM_sprintf_overhead(int iters) { |
|
for (int i = 0; i < iters; ++i) { |
|
StartBenchmarkTiming(); |
|
test_print("BM_sprintf_overhead:%d", i); |
|
StopBenchmarkTiming(); |
|
logd_yield(); |
|
} |
|
} |
|
BENCHMARK(BM_sprintf_overhead); |
|
|
|
/* |
|
* Measure the time it takes to submit the android printing logging call |
|
* using discrete acquisition discrete acquisition (StartBenchmarkTiming() -> |
|
* StopBenchmarkTiming()) under light load. Expect this to be a dozen or so |
|
* syscall periods (40us) plus time to run *printf |
|
*/ |
|
static void BM_log_print_overhead(int iters) { |
|
for (int i = 0; i < iters; ++i) { |
|
StartBenchmarkTiming(); |
|
__android_log_print(ANDROID_LOG_INFO, "BM_log_overhead", "%d", i); |
|
StopBenchmarkTiming(); |
|
logd_yield(); |
|
} |
|
} |
|
BENCHMARK(BM_log_print_overhead); |
|
|
|
/* |
|
* Measure the time it takes to submit the android event logging call |
|
* using discrete acquisition (StartBenchmarkTiming() -> StopBenchmarkTiming()) |
|
* under light load. Expect this to be a long path to logger to convert the |
|
* unknown tag (0) into a tagname (less than 200us). |
|
*/ |
|
static void BM_log_event_overhead(int iters) { |
|
for (unsigned long long i = 0; i < (unsigned)iters; ++i) { |
|
StartBenchmarkTiming(); |
|
// log tag number 0 is not known, nor shall it ever be known |
|
__android_log_btwrite(0, EVENT_TYPE_LONG, &i, sizeof(i)); |
|
StopBenchmarkTiming(); |
|
logd_yield(); |
|
} |
|
} |
|
BENCHMARK(BM_log_event_overhead); |
|
|
|
/* |
|
* Measure the time it takes to submit the android event logging call |
|
* using discrete acquisition (StartBenchmarkTiming() -> StopBenchmarkTiming()) |
|
* under light load with a known logtag. Expect this to be a dozen or so |
|
* syscall periods (less than 40us) |
|
*/ |
|
static void BM_log_event_overhead_42(int iters) { |
|
for (unsigned long long i = 0; i < (unsigned)iters; ++i) { |
|
StartBenchmarkTiming(); |
|
// In system/core/logcat/event.logtags: |
|
// # These are used for testing, do not modify without updating |
|
// # tests/framework-tests/src/android/util/EventLogFunctionalTest.java. |
|
// # system/core/liblog/tests/liblog_benchmark.cpp |
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// # system/core/liblog/tests/liblog_test.cpp |
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// 42 answer (to life the universe etc|3) |
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__android_log_btwrite(42, EVENT_TYPE_LONG, &i, sizeof(i)); |
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StopBenchmarkTiming(); |
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logd_yield(); |
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} |
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} |
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BENCHMARK(BM_log_event_overhead_42); |
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static void BM_log_event_overhead_null(int iters) { |
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set_log_null(); |
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BM_log_event_overhead(iters); |
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set_log_default(); |
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} |
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BENCHMARK(BM_log_event_overhead_null); |
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/* |
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* Measure the time it takes to submit the android event logging call |
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* using discrete acquisition (StartBenchmarkTiming() -> StopBenchmarkTiming()) |
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* under very-light load (<1% CPU utilization). |
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*/ |
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static void BM_log_light_overhead(int iters) { |
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for (unsigned long long i = 0; i < (unsigned)iters; ++i) { |
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StartBenchmarkTiming(); |
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__android_log_btwrite(0, EVENT_TYPE_LONG, &i, sizeof(i)); |
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StopBenchmarkTiming(); |
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usleep(10000); |
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} |
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} |
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BENCHMARK(BM_log_light_overhead); |
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static void BM_log_light_overhead_null(int iters) { |
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set_log_null(); |
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BM_log_light_overhead(iters); |
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set_log_default(); |
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} |
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BENCHMARK(BM_log_light_overhead_null); |
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static void caught_latency(int /*signum*/) { |
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unsigned long long v = 0xDEADBEEFA55A5AA5ULL; |
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LOG_FAILURE_RETRY(__android_log_btwrite(0, EVENT_TYPE_LONG, &v, sizeof(v))); |
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} |
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static unsigned long long caught_convert(char* cp) { |
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unsigned long long l = cp[0] & 0xFF; |
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l |= (unsigned long long)(cp[1] & 0xFF) << 8; |
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l |= (unsigned long long)(cp[2] & 0xFF) << 16; |
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l |= (unsigned long long)(cp[3] & 0xFF) << 24; |
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l |= (unsigned long long)(cp[4] & 0xFF) << 32; |
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l |= (unsigned long long)(cp[5] & 0xFF) << 40; |
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l |= (unsigned long long)(cp[6] & 0xFF) << 48; |
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l |= (unsigned long long)(cp[7] & 0xFF) << 56; |
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return l; |
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} |
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static const int alarm_time = 3; |
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/* |
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* Measure the time it takes for the logd posting call to acquire the |
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* timestamp to place into the internal record. Expect this to be less than |
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* 4 syscalls (3us). |
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*/ |
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static void BM_log_latency(int iters) { |
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pid_t pid = getpid(); |
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struct logger_list* logger_list = |
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android_logger_list_open(LOG_ID_EVENTS, ANDROID_LOG_RDONLY, 0, pid); |
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if (!logger_list) { |
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fprintf(stderr, "Unable to open events log: %s\n", strerror(errno)); |
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exit(EXIT_FAILURE); |
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} |
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signal(SIGALRM, caught_latency); |
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alarm(alarm_time); |
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for (int j = 0, i = 0; i < iters && j < 10 * iters; ++i, ++j) { |
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log_time ts; |
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LOG_FAILURE_RETRY((ts = log_time(CLOCK_REALTIME), |
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android_btWriteLog(0, EVENT_TYPE_LONG, &ts, sizeof(ts)))); |
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for (;;) { |
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log_msg log_msg; |
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int ret = android_logger_list_read(logger_list, &log_msg); |
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alarm(alarm_time); |
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if (ret <= 0) { |
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iters = i; |
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break; |
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} |
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if ((log_msg.entry.len != (4 + 1 + 8)) || |
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(log_msg.id() != LOG_ID_EVENTS)) { |
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continue; |
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} |
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char* eventData = log_msg.msg(); |
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if (!eventData || (eventData[4] != EVENT_TYPE_LONG)) { |
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continue; |
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} |
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log_time tx(eventData + 4 + 1); |
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if (ts != tx) { |
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if (0xDEADBEEFA55A5AA5ULL == caught_convert(eventData + 4 + 1)) { |
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iters = i; |
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break; |
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} |
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continue; |
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} |
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uint64_t start = ts.nsec(); |
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uint64_t end = log_msg.nsec(); |
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if (end >= start) { |
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StartBenchmarkTiming(start); |
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StopBenchmarkTiming(end); |
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} else { |
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--i; |
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} |
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break; |
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} |
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} |
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signal(SIGALRM, SIG_DFL); |
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alarm(0); |
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android_logger_list_free(logger_list); |
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} |
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BENCHMARK(BM_log_latency); |
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static void caught_delay(int /*signum*/) { |
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unsigned long long v = 0xDEADBEEFA55A5AA6ULL; |
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LOG_FAILURE_RETRY(__android_log_btwrite(0, EVENT_TYPE_LONG, &v, sizeof(v))); |
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} |
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/* |
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* Measure the time it takes for the logd posting call to make it into |
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* the logs. Expect this to be less than double the process wakeup time (2ms). |
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*/ |
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static void BM_log_delay(int iters) { |
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pid_t pid = getpid(); |
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struct logger_list* logger_list = |
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android_logger_list_open(LOG_ID_EVENTS, ANDROID_LOG_RDONLY, 0, pid); |
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if (!logger_list) { |
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fprintf(stderr, "Unable to open events log: %s\n", strerror(errno)); |
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exit(EXIT_FAILURE); |
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} |
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signal(SIGALRM, caught_delay); |
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alarm(alarm_time); |
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StartBenchmarkTiming(); |
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for (int i = 0; i < iters; ++i) { |
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log_time ts(CLOCK_REALTIME); |
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LOG_FAILURE_RETRY(android_btWriteLog(0, EVENT_TYPE_LONG, &ts, sizeof(ts))); |
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for (;;) { |
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log_msg log_msg; |
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int ret = android_logger_list_read(logger_list, &log_msg); |
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alarm(alarm_time); |
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if (ret <= 0) { |
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iters = i; |
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break; |
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} |
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if ((log_msg.entry.len != (4 + 1 + 8)) || |
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(log_msg.id() != LOG_ID_EVENTS)) { |
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continue; |
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} |
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char* eventData = log_msg.msg(); |
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if (!eventData || (eventData[4] != EVENT_TYPE_LONG)) { |
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continue; |
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} |
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log_time tx(eventData + 4 + 1); |
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if (ts != tx) { |
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if (0xDEADBEEFA55A5AA6ULL == caught_convert(eventData + 4 + 1)) { |
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iters = i; |
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break; |
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} |
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continue; |
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} |
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break; |
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} |
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} |
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signal(SIGALRM, SIG_DFL); |
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alarm(0); |
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StopBenchmarkTiming(); |
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android_logger_list_free(logger_list); |
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} |
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BENCHMARK(BM_log_delay); |
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/* |
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* Measure the time it takes for __android_log_is_loggable. |
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*/ |
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static void BM_is_loggable(int iters) { |
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static const char logd[] = "logd"; |
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StartBenchmarkTiming(); |
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for (int i = 0; i < iters; ++i) { |
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__android_log_is_loggable_len(ANDROID_LOG_WARN, logd, strlen(logd), |
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ANDROID_LOG_VERBOSE); |
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} |
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StopBenchmarkTiming(); |
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} |
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BENCHMARK(BM_is_loggable); |
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/* |
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* Measure the time it takes for android_log_clockid. |
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*/ |
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static void BM_clockid(int iters) { |
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StartBenchmarkTiming(); |
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for (int i = 0; i < iters; ++i) { |
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android_log_clockid(); |
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} |
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StopBenchmarkTiming(); |
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} |
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BENCHMARK(BM_clockid); |
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/* |
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* Measure the time it takes for __android_log_security. |
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*/ |
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static void BM_security(int iters) { |
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StartBenchmarkTiming(); |
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for (int i = 0; i < iters; ++i) { |
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__android_log_security(); |
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} |
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StopBenchmarkTiming(); |
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} |
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BENCHMARK(BM_security); |
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// Keep maps around for multiple iterations |
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static std::unordered_set<uint32_t> set; |
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static EventTagMap* map; |
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static bool prechargeEventMap() { |
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if (map) return true; |
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fprintf(stderr, "Precharge: start\n"); |
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map = android_openEventTagMap(NULL); |
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for (uint32_t tag = 1; tag < USHRT_MAX; ++tag) { |
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size_t len; |
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if (android_lookupEventTag_len(map, &len, tag) == NULL) continue; |
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set.insert(tag); |
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} |
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fprintf(stderr, "Precharge: stop %zu\n", set.size()); |
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return true; |
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} |
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/* |
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* Measure the time it takes for android_lookupEventTag_len |
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*/ |
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static void BM_lookupEventTag(int iters) { |
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prechargeEventMap(); |
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std::unordered_set<uint32_t>::const_iterator it = set.begin(); |
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StartBenchmarkTiming(); |
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for (int i = 0; i < iters; ++i) { |
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size_t len; |
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android_lookupEventTag_len(map, &len, (*it)); |
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++it; |
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if (it == set.end()) it = set.begin(); |
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} |
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StopBenchmarkTiming(); |
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} |
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BENCHMARK(BM_lookupEventTag); |
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/* |
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* Measure the time it takes for android_lookupEventTag_len |
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*/ |
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static uint32_t notTag = 1; |
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static void BM_lookupEventTag_NOT(int iters) { |
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prechargeEventMap(); |
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while (set.find(notTag) != set.end()) { |
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++notTag; |
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if (notTag >= USHRT_MAX) notTag = 1; |
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} |
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StartBenchmarkTiming(); |
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for (int i = 0; i < iters; ++i) { |
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size_t len; |
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android_lookupEventTag_len(map, &len, notTag); |
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} |
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StopBenchmarkTiming(); |
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++notTag; |
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if (notTag >= USHRT_MAX) notTag = 1; |
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} |
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BENCHMARK(BM_lookupEventTag_NOT); |
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/* |
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* Measure the time it takes for android_lookupEventFormat_len |
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*/ |
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static void BM_lookupEventFormat(int iters) { |
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prechargeEventMap(); |
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std::unordered_set<uint32_t>::const_iterator it = set.begin(); |
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StartBenchmarkTiming(); |
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for (int i = 0; i < iters; ++i) { |
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size_t len; |
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android_lookupEventFormat_len(map, &len, (*it)); |
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++it; |
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if (it == set.end()) it = set.begin(); |
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} |
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StopBenchmarkTiming(); |
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} |
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BENCHMARK(BM_lookupEventFormat); |
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/* |
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* Measure the time it takes for android_lookupEventTagNum plus above |
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*/ |
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static void BM_lookupEventTagNum(int iters) { |
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prechargeEventMap(); |
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std::unordered_set<uint32_t>::const_iterator it = set.begin(); |
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for (int i = 0; i < iters; ++i) { |
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size_t len; |
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const char* name = android_lookupEventTag_len(map, &len, (*it)); |
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std::string Name(name, len); |
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const char* format = android_lookupEventFormat_len(map, &len, (*it)); |
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std::string Format(format, len); |
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StartBenchmarkTiming(); |
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android_lookupEventTagNum(map, Name.c_str(), Format.c_str(), |
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ANDROID_LOG_UNKNOWN); |
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StopBenchmarkTiming(); |
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++it; |
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if (it == set.end()) it = set.begin(); |
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} |
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} |
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BENCHMARK(BM_lookupEventTagNum); |
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// Must be functionally identical to liblog internal __send_log_msg. |
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static void send_to_control(char* buf, size_t len) { |
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int sock = socket_local_client("logd", ANDROID_SOCKET_NAMESPACE_RESERVED, |
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SOCK_STREAM); |
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if (sock < 0) return; |
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size_t writeLen = strlen(buf) + 1; |
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ssize_t ret = TEMP_FAILURE_RETRY(write(sock, buf, writeLen)); |
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if (ret <= 0) { |
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close(sock); |
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return; |
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} |
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while ((ret = read(sock, buf, len)) > 0) { |
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if (((size_t)ret == len) || (len < PAGE_SIZE)) { |
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break; |
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} |
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len -= ret; |
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buf += ret; |
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struct pollfd p = {.fd = sock, .events = POLLIN, .revents = 0 }; |
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ret = poll(&p, 1, 20); |
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if ((ret <= 0) || !(p.revents & POLLIN)) { |
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break; |
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} |
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} |
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close(sock); |
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} |
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static void BM_lookupEventTagNum_logd_new(int iters) { |
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fprintf(stderr, |
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"WARNING: " |
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"This test can cause logd to grow in size and hit DOS limiter\n"); |
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// Make copies |
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static const char empty_event_log_tags[] = "# content owned by logd\n"; |
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static const char dev_event_log_tags_path[] = "/dev/event-log-tags"; |
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std::string dev_event_log_tags; |
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if (android::base::ReadFileToString(dev_event_log_tags_path, |
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&dev_event_log_tags) && |
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(dev_event_log_tags.length() == 0)) { |
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dev_event_log_tags = empty_event_log_tags; |
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} |
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static const char data_event_log_tags_path[] = |
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"/data/misc/logd/event-log-tags"; |
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std::string data_event_log_tags; |
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if (android::base::ReadFileToString(data_event_log_tags_path, |
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&data_event_log_tags) && |
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(data_event_log_tags.length() == 0)) { |
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data_event_log_tags = empty_event_log_tags; |
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} |
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for (int i = 0; i < iters; ++i) { |
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char buffer[256]; |
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memset(buffer, 0, sizeof(buffer)); |
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log_time now(CLOCK_MONOTONIC); |
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char name[64]; |
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snprintf(name, sizeof(name), "a%" PRIu64, now.nsec()); |
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snprintf(buffer, sizeof(buffer), "getEventTag name=%s format=\"(new|1)\"", |
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name); |
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StartBenchmarkTiming(); |
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send_to_control(buffer, sizeof(buffer)); |
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StopBenchmarkTiming(); |
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} |
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// Restore copies (logd still know about them, until crash or reboot) |
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if (dev_event_log_tags.length() && |
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!android::base::WriteStringToFile(dev_event_log_tags, |
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dev_event_log_tags_path)) { |
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fprintf(stderr, |
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"WARNING: " |
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"failed to restore %s\n", |
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dev_event_log_tags_path); |
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} |
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if (data_event_log_tags.length() && |
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!android::base::WriteStringToFile(data_event_log_tags, |
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data_event_log_tags_path)) { |
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fprintf(stderr, |
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"WARNING: " |
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"failed to restore %s\n", |
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data_event_log_tags_path); |
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} |
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fprintf(stderr, |
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"WARNING: " |
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"Restarting logd to make it forget what we just did\n"); |
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system("stop logd ; start logd"); |
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} |
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BENCHMARK(BM_lookupEventTagNum_logd_new); |
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static void BM_lookupEventTagNum_logd_existing(int iters) { |
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prechargeEventMap(); |
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std::unordered_set<uint32_t>::const_iterator it = set.begin(); |
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for (int i = 0; i < iters; ++i) { |
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size_t len; |
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const char* name = android_lookupEventTag_len(map, &len, (*it)); |
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std::string Name(name, len); |
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const char* format = android_lookupEventFormat_len(map, &len, (*it)); |
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std::string Format(format, len); |
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char buffer[256]; |
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snprintf(buffer, sizeof(buffer), "getEventTag name=%s format=\"%s\"", |
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Name.c_str(), Format.c_str()); |
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StartBenchmarkTiming(); |
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send_to_control(buffer, sizeof(buffer)); |
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StopBenchmarkTiming(); |
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++it; |
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if (it == set.end()) it = set.begin(); |
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} |
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} |
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BENCHMARK(BM_lookupEventTagNum_logd_existing);
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