200 lines
5.8 KiB
C++
200 lines
5.8 KiB
C++
#include <stdio.h>
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#include <stdlib.h>
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#include <hardware/sensors.h>
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#include <pthread.h>
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#include <cutils/atomic.h>
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#include "SensorEventQueue.h"
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// Unit tests for the SensorEventQueue.
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// Run it like this:
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//
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// m sensorstests && \
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// out/host/linux-x86/nativetest64/sensorstests/sensorstests
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bool checkWritableBufferSize(SensorEventQueue* queue, int requested, int expected) {
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sensors_event_t* buffer;
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int actual = queue->getWritableRegion(requested, &buffer);
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if (actual != expected) {
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printf("Expected buffer size was %d; actual was %d\n", expected, actual);
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return false;
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}
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return true;
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}
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bool checkSize(SensorEventQueue* queue, int expected) {
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int actual = queue->getSize();
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if (actual != expected) {
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printf("Expected queue size was %d; actual was %d\n", expected, actual);
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return false;
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}
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return true;
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}
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bool checkInt(const char* msg, int expected, int actual) {
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if (actual != expected) {
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printf("%s; expected %d; actual was %d\n", msg, expected, actual);
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return false;
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}
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return true;
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}
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bool testSimpleWriteSizeCounts() {
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printf("testSimpleWriteSizeCounts\n");
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SensorEventQueue* queue = new SensorEventQueue(10);
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if (!checkSize(queue, 0)) return false;
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if (!checkWritableBufferSize(queue, 11, 10)) return false;
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if (!checkWritableBufferSize(queue, 10, 10)) return false;
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if (!checkWritableBufferSize(queue, 9, 9)) return false;
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queue->markAsWritten(7);
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if (!checkSize(queue, 7)) return false;
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if (!checkWritableBufferSize(queue, 4, 3)) return false;
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if (!checkWritableBufferSize(queue, 3, 3)) return false;
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if (!checkWritableBufferSize(queue, 2, 2)) return false;
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queue->markAsWritten(3);
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if (!checkSize(queue, 10)) return false;
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if (!checkWritableBufferSize(queue, 1, 0)) return false;
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printf("passed\n");
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return true;
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}
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bool testWrappingWriteSizeCounts() {
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printf("testWrappingWriteSizeCounts\n");
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SensorEventQueue* queue = new SensorEventQueue(10);
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queue->markAsWritten(9);
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if (!checkSize(queue, 9)) return false;
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// dequeue from the front
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queue->dequeue();
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queue->dequeue();
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if (!checkSize(queue, 7)) return false;
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if (!checkWritableBufferSize(queue, 100, 1)) return false;
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// Write all the way to the end.
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queue->markAsWritten(1);
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if (!checkSize(queue, 8)) return false;
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// Now the two free spots in the front are available.
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if (!checkWritableBufferSize(queue, 100, 2)) return false;
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// Fill the queue again
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queue->markAsWritten(2);
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if (!checkSize(queue, 10)) return false;
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printf("passed\n");
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return true;
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}
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struct TaskContext {
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bool success;
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SensorEventQueue* queue;
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};
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static pthread_mutex_t mutex = PTHREAD_MUTEX_INITIALIZER;
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static pthread_cond_t dataAvailableCond = PTHREAD_COND_INITIALIZER;
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int FULL_QUEUE_CAPACITY = 5;
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int FULL_QUEUE_EVENT_COUNT = 31;
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void *fullQueueWriterTask(void* ptr) {
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TaskContext* ctx = (TaskContext*)ptr;
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SensorEventQueue* queue = ctx->queue;
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ctx->success = true;
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int totalWaits = 0;
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int totalWrites = 0;
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sensors_event_t* buffer;
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while (totalWrites < FULL_QUEUE_EVENT_COUNT) {
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pthread_mutex_lock(&mutex);
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if (queue->waitForSpace(&mutex)) {
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totalWaits++;
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printf(".");
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}
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int writableSize = queue->getWritableRegion(FULL_QUEUE_CAPACITY, &buffer);
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queue->markAsWritten(writableSize);
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totalWrites += writableSize;
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for (int i = 0; i < writableSize; i++) {
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printf("w");
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}
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pthread_cond_broadcast(&dataAvailableCond);
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pthread_mutex_unlock(&mutex);
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}
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printf("\n");
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ctx->success =
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checkInt("totalWrites", FULL_QUEUE_EVENT_COUNT, totalWrites) &&
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checkInt("totalWaits", FULL_QUEUE_EVENT_COUNT - FULL_QUEUE_CAPACITY, totalWaits);
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return NULL;
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}
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bool fullQueueReaderShouldRead(int queueSize, int totalReads) {
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if (queueSize == 0) {
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return false;
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}
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int totalWrites = totalReads + queueSize;
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return queueSize == FULL_QUEUE_CAPACITY || totalWrites == FULL_QUEUE_EVENT_COUNT;
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}
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void* fullQueueReaderTask(void* ptr) {
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TaskContext* ctx = (TaskContext*)ptr;
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SensorEventQueue* queue = ctx->queue;
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int totalReads = 0;
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while (totalReads < FULL_QUEUE_EVENT_COUNT) {
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pthread_mutex_lock(&mutex);
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// Only read if there are events,
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// and either the queue is full, or if we're reading the last few events.
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while (!fullQueueReaderShouldRead(queue->getSize(), totalReads)) {
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pthread_cond_wait(&dataAvailableCond, &mutex);
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}
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queue->dequeue();
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totalReads++;
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printf("r");
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pthread_mutex_unlock(&mutex);
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}
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printf("\n");
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ctx->success = ctx->success && checkInt("totalreads", FULL_QUEUE_EVENT_COUNT, totalReads);
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return NULL;
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}
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// Test internal queue-full waiting and broadcasting.
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bool testFullQueueIo() {
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printf("testFullQueueIo\n");
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SensorEventQueue* queue = new SensorEventQueue(FULL_QUEUE_CAPACITY);
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TaskContext readerCtx;
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readerCtx.success = true;
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readerCtx.queue = queue;
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TaskContext writerCtx;
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writerCtx.success = true;
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writerCtx.queue = queue;
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pthread_t writer, reader;
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pthread_create(&reader, NULL, fullQueueReaderTask, &readerCtx);
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pthread_create(&writer, NULL, fullQueueWriterTask, &writerCtx);
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pthread_join(writer, NULL);
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pthread_join(reader, NULL);
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if (!readerCtx.success || !writerCtx.success) return false;
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printf("passed\n");
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return true;
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}
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int main(int argc __attribute((unused)), char **argv __attribute((unused))) {
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if (testSimpleWriteSizeCounts() &&
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testWrappingWriteSizeCounts() &&
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testFullQueueIo()) {
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printf("ALL PASSED\n");
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} else {
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printf("SOMETHING FAILED\n");
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}
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return EXIT_SUCCESS;
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}
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