Lee Shombert | 3e4d9f2 | 2022-09-18 18:02:31 -0700 | [diff] [blame^] | 1 | /* |
| 2 | * Copyright (C) 2022 The Android Open Source Project |
| 3 | * |
| 4 | * Licensed under the Apache License, Version 2.0 (the "License"); |
| 5 | * you may not use this file except in compliance with the License. |
| 6 | * You may obtain a copy of the License at |
| 7 | * |
| 8 | * http://www.apache.org/licenses/LICENSE-2.0 |
| 9 | * |
| 10 | * Unless required by applicable law or agreed to in writing, software |
| 11 | * distributed under the License is distributed on an "AS IS" BASIS, |
| 12 | * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. |
| 13 | * See the License for the specific language governing permissions and |
| 14 | * limitations under the License. |
| 15 | */ |
| 16 | |
| 17 | #include <unistd.h> |
| 18 | #include <string.h> |
| 19 | |
| 20 | #include <map> |
| 21 | #include <atomic> |
| 22 | |
| 23 | #include <utils/Log.h> |
| 24 | #include <androidfw/ResourceTimer.h> |
| 25 | |
| 26 | // The following block allows compilation on windows, which does not have getuid(). |
| 27 | #ifdef _WIN32 |
| 28 | #ifdef ERROR |
| 29 | #undef ERROR |
| 30 | #endif |
| 31 | #define getuid() (getUidWindows_) |
| 32 | #endif |
| 33 | |
| 34 | namespace android { |
| 35 | |
| 36 | namespace { |
| 37 | |
| 38 | #ifdef _WIN32 |
| 39 | // A temporary to confuse lint into thinking that getuid() on windows might return something other |
| 40 | // than zero. |
| 41 | int getUidWindows_ = 0; |
| 42 | #endif |
| 43 | |
| 44 | // The number of nanoseconds in a microsecond. |
| 45 | static const unsigned int US = 1000; |
| 46 | // The number of nanoseconds in a second. |
| 47 | static const unsigned int S = 1000 * 1000 * 1000; |
| 48 | |
| 49 | // Return the difference between two timespec values. The difference is in nanoseconds. If the |
| 50 | // return value would exceed 2s (2^31 nanoseconds) then UINT_MAX is returned. |
| 51 | unsigned int diffInNs(timespec const &a, timespec const &b) { |
| 52 | timespec r = { 0, 0 }; |
| 53 | r.tv_nsec = a.tv_nsec - b.tv_nsec; |
| 54 | if (r.tv_nsec < 0) { |
| 55 | r.tv_sec = -1; |
| 56 | r.tv_nsec += S; |
| 57 | } |
| 58 | r.tv_sec = r.tv_sec + (a.tv_sec - b.tv_sec); |
| 59 | if (r.tv_sec > 2) return UINT_MAX; |
| 60 | unsigned int result = (r.tv_sec * S) + r.tv_nsec; |
| 61 | if (result > 2 * S) return UINT_MAX; |
| 62 | return result; |
| 63 | } |
| 64 | |
| 65 | } |
| 66 | |
| 67 | ResourceTimer::ResourceTimer(Counter api) |
| 68 | : active_(enabled_.load()), |
| 69 | api_(api) { |
| 70 | if (active_) { |
| 71 | clock_gettime(CLOCK_MONOTONIC, &start_); |
| 72 | } |
| 73 | } |
| 74 | |
| 75 | ResourceTimer::~ResourceTimer() { |
| 76 | record(); |
| 77 | } |
| 78 | |
| 79 | void ResourceTimer::enable() { |
| 80 | if (!enabled_.load()) counter_ = new GuardedTimer[ResourceTimer::counterSize]; |
| 81 | enabled_.store(true); |
| 82 | } |
| 83 | |
| 84 | void ResourceTimer::cancel() { |
| 85 | active_ = false; |
| 86 | } |
| 87 | |
| 88 | void ResourceTimer::record() { |
| 89 | if (!active_) return; |
| 90 | |
| 91 | struct timespec end; |
| 92 | clock_gettime(CLOCK_MONOTONIC, &end); |
| 93 | // Get the difference in microseconds. |
| 94 | const unsigned int ticks = diffInNs(end, start_); |
| 95 | ScopedTimer t(counter_[toIndex(api_)]); |
| 96 | t->record(ticks); |
| 97 | active_ = false; |
| 98 | } |
| 99 | |
| 100 | bool ResourceTimer::copy(int counter, Timer &dst, bool reset) { |
| 101 | ScopedTimer t(counter_[counter]); |
| 102 | if (t->count == 0) { |
| 103 | dst.reset(); |
| 104 | if (reset) t->reset(); |
| 105 | return false; |
| 106 | } |
| 107 | Timer::copy(dst, *t, reset); |
| 108 | return true; |
| 109 | } |
| 110 | |
| 111 | void ResourceTimer::reset() { |
| 112 | for (int i = 0; i < counterSize; i++) { |
| 113 | ScopedTimer t(counter_[i]); |
| 114 | t->reset(); |
| 115 | } |
| 116 | } |
| 117 | |
| 118 | ResourceTimer::Timer::Timer() { |
| 119 | // Ensure newly-created objects are zeroed. |
| 120 | memset(buckets, 0, sizeof(buckets)); |
| 121 | reset(); |
| 122 | } |
| 123 | |
| 124 | ResourceTimer::Timer::~Timer() { |
| 125 | for (int d = 0; d < MaxDimension; d++) { |
| 126 | delete[] buckets[d]; |
| 127 | } |
| 128 | } |
| 129 | |
| 130 | void ResourceTimer::Timer::freeBuckets() { |
| 131 | for (int d = 0; d < MaxDimension; d++) { |
| 132 | delete[] buckets[d]; |
| 133 | buckets[d] = 0; |
| 134 | } |
| 135 | } |
| 136 | |
| 137 | void ResourceTimer::Timer::reset() { |
| 138 | count = total = mintime = maxtime = 0; |
| 139 | memset(largest, 0, sizeof(largest)); |
| 140 | memset(&pvalues, 0, sizeof(pvalues)); |
| 141 | // Zero the histogram, keeping any allocated dimensions. |
| 142 | for (int d = 0; d < MaxDimension; d++) { |
| 143 | if (buckets[d] != 0) memset(buckets[d], 0, sizeof(int) * MaxBuckets); |
| 144 | } |
| 145 | } |
| 146 | |
| 147 | void ResourceTimer::Timer::copy(Timer &dst, Timer &src, bool reset) { |
| 148 | dst.freeBuckets(); |
| 149 | dst = src; |
| 150 | // Clean up the histograms. |
| 151 | if (reset) { |
| 152 | // Do NOT free the src buckets because they being used by dst. |
| 153 | memset(src.buckets, 0, sizeof(src.buckets)); |
| 154 | src.reset(); |
| 155 | } else { |
| 156 | for (int d = 0; d < MaxDimension; d++) { |
| 157 | if (src.buckets[d] != nullptr) { |
| 158 | dst.buckets[d] = new int[MaxBuckets]; |
| 159 | memcpy(dst.buckets[d], src.buckets[d], sizeof(int) * MaxBuckets); |
| 160 | } |
| 161 | } |
| 162 | } |
| 163 | } |
| 164 | |
| 165 | void ResourceTimer::Timer::record(int ticks) { |
| 166 | // Record that the event happened. |
| 167 | count++; |
| 168 | |
| 169 | total += ticks; |
| 170 | if (mintime == 0 || ticks < mintime) mintime = ticks; |
| 171 | if (ticks > maxtime) maxtime = ticks; |
| 172 | |
| 173 | // Do not add oversized events to the histogram. |
| 174 | if (ticks != UINT_MAX) { |
| 175 | for (int d = 0; d < MaxDimension; d++) { |
| 176 | if (ticks < range[d]) { |
| 177 | if (buckets[d] == 0) { |
| 178 | buckets[d] = new int[MaxBuckets]; |
| 179 | memset(buckets[d], 0, sizeof(int) * MaxBuckets); |
| 180 | } |
| 181 | if (ticks < width[d]) { |
| 182 | // Special case: never write to bucket 0 because it complicates the percentile logic. |
| 183 | // However, this is always the smallest possible value to it is very unlikely to ever |
| 184 | // affect any of the percentile results. |
| 185 | buckets[d][1]++; |
| 186 | } else { |
| 187 | buckets[d][ticks / width[d]]++; |
| 188 | } |
| 189 | break; |
| 190 | } |
| 191 | } |
| 192 | } |
| 193 | |
| 194 | // The list of largest times is sorted with the biggest value at index 0 and the smallest at |
| 195 | // index MaxLargest-1. The incoming tick count should be added to the array only if it is |
| 196 | // larger than the current value at MaxLargest-1. |
| 197 | if (ticks > largest[Timer::MaxLargest-1]) { |
| 198 | for (size_t i = 0; i < Timer::MaxLargest; i++) { |
| 199 | if (ticks > largest[i]) { |
| 200 | if (i < Timer::MaxLargest-1) { |
| 201 | for (size_t j = Timer::MaxLargest - 1; j > i; j--) { |
| 202 | largest[j] = largest[j-1]; |
| 203 | } |
| 204 | } |
| 205 | largest[i] = ticks; |
| 206 | break; |
| 207 | } |
| 208 | } |
| 209 | } |
| 210 | } |
| 211 | |
| 212 | void ResourceTimer::Timer::Percentile::compute( |
| 213 | int cumulative, int current, int count, int width, int time) { |
| 214 | nominal = time; |
| 215 | nominal_actual = (cumulative * 100) / count; |
| 216 | floor = nominal - width; |
| 217 | floor_actual = ((cumulative - current) * 100) / count; |
| 218 | } |
| 219 | |
| 220 | void ResourceTimer::Timer::compute() { |
| 221 | memset(&pvalues, 0, sizeof(pvalues)); |
| 222 | |
| 223 | float l50 = count / 2.0; |
| 224 | float l90 = (count * 9.0) / 10.0; |
| 225 | float l95 = (count * 95.0) / 100.0; |
| 226 | float l99 = (count * 99.0) / 100.0; |
| 227 | |
| 228 | int sum = 0; |
| 229 | for (int d = 0; d < MaxDimension; d++) { |
| 230 | if (buckets[d] == 0) continue; |
| 231 | for (int j = 0; j < MaxBuckets && sum < count; j++) { |
| 232 | // Empty buckets don't contribute to the answers. Skip them. |
| 233 | if (buckets[d][j] == 0) continue; |
| 234 | sum += buckets[d][j]; |
| 235 | // A word on indexing. j is never zero in the following lines. buckets[0][0] corresponds |
| 236 | // to a delay of 0us, which cannot happen. buckets[n][0], for n > 0 overlaps a value in |
| 237 | // buckets[n-1], and the code would have stopped there. |
| 238 | if (sum >= l50 && pvalues.p50.nominal == 0) { |
| 239 | pvalues.p50.compute(sum, buckets[d][j], count, width[d], j * width[d]); |
| 240 | } |
| 241 | if (sum >= l90 && pvalues.p90.nominal == 0) { |
| 242 | pvalues.p90.compute(sum, buckets[d][j], count, width[d], j * width[d]); |
| 243 | } |
| 244 | if (sum >= l95 && pvalues.p95.nominal == 0) { |
| 245 | pvalues.p95.compute(sum, buckets[d][j], count, width[d], j * width[d]); |
| 246 | } |
| 247 | if (sum >= l99 && pvalues.p99.nominal == 0) { |
| 248 | pvalues.p99.compute(sum, buckets[d][j], count, width[d], j * width[d]); |
| 249 | } |
| 250 | } |
| 251 | } |
| 252 | } |
| 253 | |
| 254 | char const *ResourceTimer::toString(ResourceTimer::Counter counter) { |
| 255 | switch (counter) { |
| 256 | case Counter::GetResourceValue: |
| 257 | return "GetResourceValue"; |
| 258 | case Counter::RetrieveAttributes: |
| 259 | return "RetrieveAttributes"; |
| 260 | }; |
| 261 | return "Unknown"; |
| 262 | } |
| 263 | |
| 264 | std::atomic<bool> ResourceTimer::enabled_(false); |
| 265 | std::atomic<ResourceTimer::GuardedTimer *> ResourceTimer::counter_(nullptr); |
| 266 | |
| 267 | const int ResourceTimer::Timer::range[] = { 100 * US, 1000 * US, 10*1000 * US, 100*1000 * US }; |
| 268 | const int ResourceTimer::Timer::width[] = { 1 * US, 10 * US, 100 * US, 1000 * US }; |
| 269 | |
| 270 | |
| 271 | } // namespace android |