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Kevin DuBois1678e2c2019-08-22 12:26:24 -07001/*
2 * Copyright 2019 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
Marin Shalamanovbed7fd32020-12-21 20:02:20 +010017// TODO(b/129481165): remove the #pragma below and fix conversion issues
18#pragma clang diagnostic push
19#pragma clang diagnostic ignored "-Wextra"
20
Kevin DuBois1678e2c2019-08-22 12:26:24 -070021#define ATRACE_TAG ATRACE_TAG_GRAPHICS
22//#define LOG_NDEBUG 0
23#include "VSyncPredictor.h"
24#include <android-base/logging.h>
Ady Abraham5e7371c2020-03-24 14:47:24 -070025#include <android-base/stringprintf.h>
Kevin DuBois1678e2c2019-08-22 12:26:24 -070026#include <cutils/compiler.h>
Kevin DuBoisecb1f0d2019-12-12 10:47:41 -080027#include <cutils/properties.h>
Kevin DuBois1678e2c2019-08-22 12:26:24 -070028#include <utils/Log.h>
29#include <utils/Trace.h>
30#include <algorithm>
31#include <chrono>
Kevin DuBois127a2d92019-12-04 13:52:52 -080032#include <sstream>
Ady Abraham5cc2e262021-03-25 13:09:17 -070033#include "RefreshRateConfigs.h"
Kevin DuBois1678e2c2019-08-22 12:26:24 -070034
Ady Abraham0bb6a472020-10-12 10:22:13 -070035#undef LOG_TAG
36#define LOG_TAG "VSyncPredictor"
37
Kevin DuBois1678e2c2019-08-22 12:26:24 -070038namespace android::scheduler {
Ady Abraham5e7371c2020-03-24 14:47:24 -070039using base::StringAppendF;
Kevin DuBoisecb1f0d2019-12-12 10:47:41 -080040
Kevin DuBois1678e2c2019-08-22 12:26:24 -070041static auto constexpr kMaxPercent = 100u;
42
43VSyncPredictor::~VSyncPredictor() = default;
44
45VSyncPredictor::VSyncPredictor(nsecs_t idealPeriod, size_t historySize,
46 size_t minimumSamplesForPrediction, uint32_t outlierTolerancePercent)
Kevin DuBoisc57f2c32019-12-20 16:32:29 -080047 : mTraceOn(property_get_bool("debug.sf.vsp_trace", true)),
Kevin DuBoisecb1f0d2019-12-12 10:47:41 -080048 kHistorySize(historySize),
Kevin DuBois1678e2c2019-08-22 12:26:24 -070049 kMinimumSamplesForPrediction(minimumSamplesForPrediction),
50 kOutlierTolerancePercent(std::min(outlierTolerancePercent, kMaxPercent)),
51 mIdealPeriod(idealPeriod) {
Kevin DuBoisc3e9e8e2020-01-07 09:06:52 -080052 resetModel();
Kevin DuBois1678e2c2019-08-22 12:26:24 -070053}
54
Kevin DuBoisecb1f0d2019-12-12 10:47:41 -080055inline void VSyncPredictor::traceInt64If(const char* name, int64_t value) const {
56 if (CC_UNLIKELY(mTraceOn)) {
57 ATRACE_INT64(name, value);
58 }
59}
60
Ady Abraham9c53ee72020-07-22 21:16:18 -070061inline size_t VSyncPredictor::next(size_t i) const {
Ady Abraham92fa2f42020-02-11 15:33:56 -080062 return (i + 1) % mTimestamps.size();
Kevin DuBois1678e2c2019-08-22 12:26:24 -070063}
64
65bool VSyncPredictor::validate(nsecs_t timestamp) const {
Ady Abraham92fa2f42020-02-11 15:33:56 -080066 if (mLastTimestampIndex < 0 || mTimestamps.empty()) {
Kevin DuBois1678e2c2019-08-22 12:26:24 -070067 return true;
68 }
69
Ady Abraham92fa2f42020-02-11 15:33:56 -080070 auto const aValidTimestamp = mTimestamps[mLastTimestampIndex];
Kevin DuBois1678e2c2019-08-22 12:26:24 -070071 auto const percent = (timestamp - aValidTimestamp) % mIdealPeriod * kMaxPercent / mIdealPeriod;
Ady Abraham99ca3362021-06-17 12:28:46 -070072 if (percent >= kOutlierTolerancePercent &&
73 percent <= (kMaxPercent - kOutlierTolerancePercent)) {
74 return false;
75 }
76
77 const auto iter = std::min_element(mTimestamps.begin(), mTimestamps.end(),
78 [timestamp](nsecs_t a, nsecs_t b) {
79 return std::abs(timestamp - a) < std::abs(timestamp - b);
80 });
81 const auto distancePercent = std::abs(*iter - timestamp) * kMaxPercent / mIdealPeriod;
82 if (distancePercent < kOutlierTolerancePercent) {
83 // duplicate timestamp
84 return false;
85 }
86 return true;
Kevin DuBois1678e2c2019-08-22 12:26:24 -070087}
88
Kevin DuBois2fd3cea2019-11-14 08:52:45 -080089nsecs_t VSyncPredictor::currentPeriod() const {
Ady Abraham9c53ee72020-07-22 21:16:18 -070090 std::lock_guard lock(mMutex);
Ady Abraham0bb6a472020-10-12 10:22:13 -070091 return mRateMap.find(mIdealPeriod)->second.slope;
Kevin DuBois2fd3cea2019-11-14 08:52:45 -080092}
93
Kevin DuBois02d5ed92020-01-27 11:05:46 -080094bool VSyncPredictor::addVsyncTimestamp(nsecs_t timestamp) {
Ady Abraham9c53ee72020-07-22 21:16:18 -070095 std::lock_guard lock(mMutex);
Kevin DuBois1678e2c2019-08-22 12:26:24 -070096
97 if (!validate(timestamp)) {
Kevin DuBois241d0ee2020-06-26 17:00:15 -070098 // VSR could elect to ignore the incongruent timestamp or resetModel(). If ts is ignored,
Ady Abraham43a3e692020-11-13 12:43:39 -080099 // don't insert this ts into mTimestamps ringbuffer. If we are still
100 // in the learning phase we should just clear all timestamps and start
101 // over.
102 if (mTimestamps.size() < kMinimumSamplesForPrediction) {
Ady Abraham4c56b642021-06-08 15:03:33 -0700103 // Add the timestamp to mTimestamps before clearing it so we could
104 // update mKnownTimestamp based on the new timestamp.
105 mTimestamps.push_back(timestamp);
Ady Abraham43a3e692020-11-13 12:43:39 -0800106 clearTimestamps();
107 } else if (!mTimestamps.empty()) {
Kevin DuBois241d0ee2020-06-26 17:00:15 -0700108 mKnownTimestamp =
109 std::max(timestamp, *std::max_element(mTimestamps.begin(), mTimestamps.end()));
110 } else {
111 mKnownTimestamp = timestamp;
112 }
Kevin DuBois02d5ed92020-01-27 11:05:46 -0800113 return false;
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700114 }
115
Ady Abraham92fa2f42020-02-11 15:33:56 -0800116 if (mTimestamps.size() != kHistorySize) {
117 mTimestamps.push_back(timestamp);
118 mLastTimestampIndex = next(mLastTimestampIndex);
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700119 } else {
Ady Abraham92fa2f42020-02-11 15:33:56 -0800120 mLastTimestampIndex = next(mLastTimestampIndex);
121 mTimestamps[mLastTimestampIndex] = timestamp;
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700122 }
123
Ady Abraham92fa2f42020-02-11 15:33:56 -0800124 if (mTimestamps.size() < kMinimumSamplesForPrediction) {
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700125 mRateMap[mIdealPeriod] = {mIdealPeriod, 0};
Kevin DuBois02d5ed92020-01-27 11:05:46 -0800126 return true;
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700127 }
128
129 // This is a 'simple linear regression' calculation of Y over X, with Y being the
130 // vsync timestamps, and X being the ordinal of vsync count.
131 // The calculated slope is the vsync period.
132 // Formula for reference:
133 // Sigma_i: means sum over all timestamps.
134 // mean(variable): statistical mean of variable.
135 // X: snapped ordinal of the timestamp
136 // Y: vsync timestamp
137 //
138 // Sigma_i( (X_i - mean(X)) * (Y_i - mean(Y) )
139 // slope = -------------------------------------------
140 // Sigma_i ( X_i - mean(X) ) ^ 2
141 //
142 // intercept = mean(Y) - slope * mean(X)
143 //
Ady Abraham92fa2f42020-02-11 15:33:56 -0800144 std::vector<nsecs_t> vsyncTS(mTimestamps.size());
145 std::vector<nsecs_t> ordinals(mTimestamps.size());
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700146
147 // normalizing to the oldest timestamp cuts down on error in calculating the intercept.
Ady Abraham92fa2f42020-02-11 15:33:56 -0800148 auto const oldest_ts = *std::min_element(mTimestamps.begin(), mTimestamps.end());
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700149 auto it = mRateMap.find(mIdealPeriod);
Ady Abraham0bb6a472020-10-12 10:22:13 -0700150 auto const currentPeriod = it->second.slope;
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700151 // TODO (b/144707443): its important that there's some precision in the mean of the ordinals
Kevin DuBois0049f8b2020-03-11 10:30:11 -0700152 // for the intercept calculation, so scale the ordinals by 1000 to continue
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700153 // fixed point calculation. Explore expanding
154 // scheduler::utils::calculate_mean to have a fixed point fractional part.
Kevin DuBois0049f8b2020-03-11 10:30:11 -0700155 static constexpr int64_t kScalingFactor = 1000;
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700156
Ady Abraham92fa2f42020-02-11 15:33:56 -0800157 for (auto i = 0u; i < mTimestamps.size(); i++) {
158 traceInt64If("VSP-ts", mTimestamps[i]);
Kevin DuBoisecb1f0d2019-12-12 10:47:41 -0800159
Ady Abraham92fa2f42020-02-11 15:33:56 -0800160 vsyncTS[i] = mTimestamps[i] - oldest_ts;
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700161 ordinals[i] = ((vsyncTS[i] + (currentPeriod / 2)) / currentPeriod) * kScalingFactor;
162 }
163
164 auto meanTS = scheduler::calculate_mean(vsyncTS);
165 auto meanOrdinal = scheduler::calculate_mean(ordinals);
Ady Abraham9c53ee72020-07-22 21:16:18 -0700166 for (size_t i = 0; i < vsyncTS.size(); i++) {
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700167 vsyncTS[i] -= meanTS;
168 ordinals[i] -= meanOrdinal;
169 }
170
171 auto top = 0ll;
172 auto bottom = 0ll;
Ady Abraham9c53ee72020-07-22 21:16:18 -0700173 for (size_t i = 0; i < vsyncTS.size(); i++) {
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700174 top += vsyncTS[i] * ordinals[i];
175 bottom += ordinals[i] * ordinals[i];
176 }
177
178 if (CC_UNLIKELY(bottom == 0)) {
179 it->second = {mIdealPeriod, 0};
Ady Abraham92fa2f42020-02-11 15:33:56 -0800180 clearTimestamps();
Kevin DuBois02d5ed92020-01-27 11:05:46 -0800181 return false;
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700182 }
183
Kevin DuBois0049f8b2020-03-11 10:30:11 -0700184 nsecs_t const anticipatedPeriod = top * kScalingFactor / bottom;
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700185 nsecs_t const intercept = meanTS - (anticipatedPeriod * meanOrdinal / kScalingFactor);
186
Ady Abraham92fa2f42020-02-11 15:33:56 -0800187 auto const percent = std::abs(anticipatedPeriod - mIdealPeriod) * kMaxPercent / mIdealPeriod;
188 if (percent >= kOutlierTolerancePercent) {
189 it->second = {mIdealPeriod, 0};
190 clearTimestamps();
191 return false;
192 }
193
Kevin DuBoisecb1f0d2019-12-12 10:47:41 -0800194 traceInt64If("VSP-period", anticipatedPeriod);
195 traceInt64If("VSP-intercept", intercept);
196
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700197 it->second = {anticipatedPeriod, intercept};
198
199 ALOGV("model update ts: %" PRId64 " slope: %" PRId64 " intercept: %" PRId64, timestamp,
200 anticipatedPeriod, intercept);
Kevin DuBois02d5ed92020-01-27 11:05:46 -0800201 return true;
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700202}
203
Ady Abraham0bb6a472020-10-12 10:22:13 -0700204nsecs_t VSyncPredictor::nextAnticipatedVSyncTimeFromLocked(nsecs_t timePoint) const {
205 auto const [slope, intercept] = getVSyncPredictionModelLocked();
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700206
Ady Abraham92fa2f42020-02-11 15:33:56 -0800207 if (mTimestamps.empty()) {
Kevin DuBoisecb1f0d2019-12-12 10:47:41 -0800208 traceInt64If("VSP-mode", 1);
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700209 auto const knownTimestamp = mKnownTimestamp ? *mKnownTimestamp : timePoint;
210 auto const numPeriodsOut = ((timePoint - knownTimestamp) / mIdealPeriod) + 1;
211 return knownTimestamp + numPeriodsOut * mIdealPeriod;
212 }
213
Ady Abraham92fa2f42020-02-11 15:33:56 -0800214 auto const oldest = *std::min_element(mTimestamps.begin(), mTimestamps.end());
Kevin DuBois127a2d92019-12-04 13:52:52 -0800215
216 // See b/145667109, the ordinal calculation must take into account the intercept.
217 auto const zeroPoint = oldest + intercept;
218 auto const ordinalRequest = (timePoint - zeroPoint + slope) / slope;
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700219 auto const prediction = (ordinalRequest * slope) + intercept + oldest;
220
Kevin DuBoisecb1f0d2019-12-12 10:47:41 -0800221 traceInt64If("VSP-mode", 0);
222 traceInt64If("VSP-timePoint", timePoint);
223 traceInt64If("VSP-prediction", prediction);
224
Kevin DuBois127a2d92019-12-04 13:52:52 -0800225 auto const printer = [&, slope = slope, intercept = intercept] {
226 std::stringstream str;
227 str << "prediction made from: " << timePoint << "prediction: " << prediction << " (+"
228 << prediction - timePoint << ") slope: " << slope << " intercept: " << intercept
229 << "oldestTS: " << oldest << " ordinal: " << ordinalRequest;
230 return str.str();
231 };
232
233 ALOGV("%s", printer().c_str());
234 LOG_ALWAYS_FATAL_IF(prediction < timePoint, "VSyncPredictor: model miscalculation: %s",
235 printer().c_str());
236
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700237 return prediction;
238}
239
Ady Abraham0bb6a472020-10-12 10:22:13 -0700240nsecs_t VSyncPredictor::nextAnticipatedVSyncTimeFrom(nsecs_t timePoint) const {
Ady Abraham9c53ee72020-07-22 21:16:18 -0700241 std::lock_guard lock(mMutex);
Ady Abraham0bb6a472020-10-12 10:22:13 -0700242 return nextAnticipatedVSyncTimeFromLocked(timePoint);
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700243}
244
Ady Abraham0bb6a472020-10-12 10:22:13 -0700245/*
Ady Abraham5cc2e262021-03-25 13:09:17 -0700246 * Returns whether a given vsync timestamp is in phase with a frame rate.
247 * If the frame rate is not a divider of the refresh rate, it is always considered in phase.
248 * For example, if the vsync timestamps are (16.6,33.3,50.0,66.6):
249 * isVSyncInPhase(16.6, 30) = true
250 * isVSyncInPhase(33.3, 30) = false
251 * isVSyncInPhase(50.0, 30) = true
Ady Abraham0bb6a472020-10-12 10:22:13 -0700252 */
Ady Abraham5cc2e262021-03-25 13:09:17 -0700253bool VSyncPredictor::isVSyncInPhase(nsecs_t timePoint, Fps frameRate) const {
Ady Abraham0bb6a472020-10-12 10:22:13 -0700254 struct VsyncError {
255 nsecs_t vsyncTimestamp;
256 float error;
257
258 bool operator<(const VsyncError& other) const { return error < other.error; }
259 };
260
Ady Abraham5cc2e262021-03-25 13:09:17 -0700261 std::lock_guard lock(mMutex);
262 const auto divider =
263 RefreshRateConfigs::getFrameRateDivider(Fps::fromPeriodNsecs(mIdealPeriod), frameRate);
Ady Abraham6de88c42020-11-10 20:16:03 -0800264 if (divider <= 1 || timePoint == 0) {
Ady Abraham0bb6a472020-10-12 10:22:13 -0700265 return true;
266 }
267
268 const nsecs_t period = mRateMap[mIdealPeriod].slope;
269 const nsecs_t justBeforeTimePoint = timePoint - period / 2;
270 const nsecs_t dividedPeriod = mIdealPeriod / divider;
271
272 // If this is the first time we have asked about this divider with the
273 // current vsync period, it is considered in phase and we store the closest
274 // vsync timestamp
275 const auto knownTimestampIter = mRateDividerKnownTimestampMap.find(dividedPeriod);
276 if (knownTimestampIter == mRateDividerKnownTimestampMap.end()) {
277 const auto vsync = nextAnticipatedVSyncTimeFromLocked(justBeforeTimePoint);
278 mRateDividerKnownTimestampMap[dividedPeriod] = vsync;
279 return true;
280 }
281
282 // Find the next N vsync timestamp where N is the divider.
283 // One of these vsyncs will be in phase. We return the one which is
284 // the most aligned with the last known in phase vsync
285 std::vector<VsyncError> vsyncs(static_cast<size_t>(divider));
286 const nsecs_t knownVsync = knownTimestampIter->second;
287 nsecs_t point = justBeforeTimePoint;
288 for (size_t i = 0; i < divider; i++) {
289 const nsecs_t vsync = nextAnticipatedVSyncTimeFromLocked(point);
290 const auto numPeriods = static_cast<float>(vsync - knownVsync) / (period * divider);
291 const auto error = std::abs(std::round(numPeriods) - numPeriods);
292 vsyncs[i] = {vsync, error};
293 point = vsync + 1;
294 }
295
296 const auto minVsyncError = std::min_element(vsyncs.begin(), vsyncs.end());
297 mRateDividerKnownTimestampMap[dividedPeriod] = minVsyncError->vsyncTimestamp;
298 return std::abs(minVsyncError->vsyncTimestamp - timePoint) < period / 2;
299}
300
301VSyncPredictor::Model VSyncPredictor::getVSyncPredictionModel() const {
302 std::lock_guard lock(mMutex);
303 const auto model = VSyncPredictor::getVSyncPredictionModelLocked();
304 return {model.slope, model.intercept};
305}
306
307VSyncPredictor::Model VSyncPredictor::getVSyncPredictionModelLocked() const {
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700308 return mRateMap.find(mIdealPeriod)->second;
309}
310
311void VSyncPredictor::setPeriod(nsecs_t period) {
312 ATRACE_CALL();
313
Ady Abraham9c53ee72020-07-22 21:16:18 -0700314 std::lock_guard lock(mMutex);
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700315 static constexpr size_t kSizeLimit = 30;
316 if (CC_UNLIKELY(mRateMap.size() == kSizeLimit)) {
317 mRateMap.erase(mRateMap.begin());
318 }
319
320 mIdealPeriod = period;
321 if (mRateMap.find(period) == mRateMap.end()) {
322 mRateMap[mIdealPeriod] = {period, 0};
323 }
324
Kevin DuBoisc3e9e8e2020-01-07 09:06:52 -0800325 clearTimestamps();
326}
327
328void VSyncPredictor::clearTimestamps() {
Ady Abraham92fa2f42020-02-11 15:33:56 -0800329 if (!mTimestamps.empty()) {
Kevin DuBois241d0ee2020-06-26 17:00:15 -0700330 auto const maxRb = *std::max_element(mTimestamps.begin(), mTimestamps.end());
331 if (mKnownTimestamp) {
332 mKnownTimestamp = std::max(*mKnownTimestamp, maxRb);
333 } else {
334 mKnownTimestamp = maxRb;
335 }
336
Ady Abraham92fa2f42020-02-11 15:33:56 -0800337 mTimestamps.clear();
338 mLastTimestampIndex = 0;
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700339 }
340}
341
Kevin DuBoisb818bfa2020-07-10 14:29:36 -0700342bool VSyncPredictor::needsMoreSamples() const {
Ady Abraham9c53ee72020-07-22 21:16:18 -0700343 std::lock_guard lock(mMutex);
Kevin DuBoisb818bfa2020-07-10 14:29:36 -0700344 return mTimestamps.size() < kMinimumSamplesForPrediction;
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700345}
346
Kevin DuBoisc3e9e8e2020-01-07 09:06:52 -0800347void VSyncPredictor::resetModel() {
Ady Abraham9c53ee72020-07-22 21:16:18 -0700348 std::lock_guard lock(mMutex);
Kevin DuBoisc3e9e8e2020-01-07 09:06:52 -0800349 mRateMap[mIdealPeriod] = {mIdealPeriod, 0};
350 clearTimestamps();
351}
352
Ady Abraham5e7371c2020-03-24 14:47:24 -0700353void VSyncPredictor::dump(std::string& result) const {
Ady Abraham9c53ee72020-07-22 21:16:18 -0700354 std::lock_guard lock(mMutex);
Ady Abraham5e7371c2020-03-24 14:47:24 -0700355 StringAppendF(&result, "\tmIdealPeriod=%.2f\n", mIdealPeriod / 1e6f);
356 StringAppendF(&result, "\tRefresh Rate Map:\n");
357 for (const auto& [idealPeriod, periodInterceptTuple] : mRateMap) {
358 StringAppendF(&result,
359 "\t\tFor ideal period %.2fms: period = %.2fms, intercept = %" PRId64 "\n",
Ady Abraham0bb6a472020-10-12 10:22:13 -0700360 idealPeriod / 1e6f, periodInterceptTuple.slope / 1e6f,
361 periodInterceptTuple.intercept);
Ady Abraham5e7371c2020-03-24 14:47:24 -0700362 }
363}
364
Kevin DuBois1678e2c2019-08-22 12:26:24 -0700365} // namespace android::scheduler
Ady Abrahamb0dbdaa2020-01-06 16:19:42 -0800366
Marin Shalamanovbed7fd32020-12-21 20:02:20 +0100367// TODO(b/129481165): remove the #pragma below and fix conversion issues
368#pragma clang diagnostic pop // ignored "-Wextra"