static void test_002_003_execute(void) {
  systime_t time;
  msg_t msg;

  /* The function chSemWaitTimeout() is invoked, after return the system
     time, the counter and the returned message are tested.*/
  test_set_step(1);
  {
    time = chVTGetSystemTimeX();
    msg = chSemWaitTimeout(&sem1, MS2ST(1000));
    test_assert_time_window(time + MS2ST(1000),
                            time + MS2ST(1000) + 1,
                            "out of time window");
    test_assert_lock(chSemGetCounterI(&sem1) == 0,
                     "wrong counter value");
    test_assert(MSG_TIMEOUT == msg,
                "wrong timeout message");
  }

  /* The function chSemWaitTimeout() is invoked, after return the system
     time, the counter and the returned message are tested.*/
  test_set_step(2);
  {
    time = chVTGetSystemTimeX();
    msg = chSemWaitTimeout(&sem1, MS2ST(1000));
    test_assert_time_window(time + MS2ST(1000),
                            time + MS2ST(1000) + 1,
                            "out of time window");
    test_assert_lock(chSemGetCounterI(&sem1) == 0,
                     "wrong counter value");
    test_assert(MSG_TIMEOUT == msg,
                "wrong timeout message");
  }
}
Exemplo n.º 2
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static void rt_test_005_001_execute(void) {

  /* [5.1.1] The function chSemWait() is invoked, after return the
     counter and the returned message are tested.*/
  test_set_step(1);
  {
    msg_t msg;

    msg = chSemWait(&sem1);
    test_assert_lock(chSemGetCounterI(&sem1) == 0, "wrong counter value");
    test_assert(MSG_OK == msg, "wrong returned message");
  }

  /* [5.1.2] The function chSemSignal() is invoked, after return the
     counter is tested.*/
  test_set_step(2);
  {
    chSemSignal(&sem1);
    test_assert_lock(chSemGetCounterI(&sem1) == 1, "wrong counter value");
  }

  /* [5.1.3] The function chSemReset() is invoked, after return the
     counter is tested.*/
  test_set_step(3);
  {
    chSemReset(&sem1, 2);
    test_assert_lock(chSemGetCounterI(&sem1) == 2, "wrong counter value");
  }
}
static void test_002_002_execute(void) {

  /* The function chSemWait() is invoked, after return the counter and
     the returned message are tested. The semaphore is signaled by another
     thread.*/
  test_set_step(1);
  {
    msg_t msg;

    msg = chSemWait(&gsem1);
    test_assert_lock(chSemGetCounterI(&gsem1) == 0,
                     "wrong counter value");
    test_assert(MSG_OK == msg,
                "wrong returned message");
  }

  /* The function chSemWait() is invoked, after return the counter and
     the returned message are tested. The semaphore is reset by another
     thread.*/
  test_set_step(2);
  {
    msg_t msg;

    msg = chSemWait(&gsem2);
    test_assert_lock(chSemGetCounterI(&gsem2) == 0,
                     "wrong counter value");
    test_assert(MSG_RESET == msg,
                "wrong returned message");
  }
}
Exemplo n.º 4
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static void queues1_execute(void) {
  unsigned i;
  size_t n;

  /* Initial empty state */
  test_assert_lock(1, chIQIsEmptyI(&iq), "not empty");

  /* Queue filling */
  chSysLock();
  for (i = 0; i < TEST_QUEUES_SIZE; i++)
    chIQPutI(&iq, 'A' + i);
  chSysUnlock();
  test_assert_lock(2, chIQIsFullI(&iq), "still has space");
  test_assert_lock(3, chIQPutI(&iq, 0) == Q_FULL, "failed to report Q_FULL");

  /* Queue emptying */
  for (i = 0; i < TEST_QUEUES_SIZE; i++)
    test_emit_token(chIQGet(&iq));
  test_assert_lock(4, chIQIsEmptyI(&iq), "still full");
  test_assert_sequence(5, "ABCD");

  /* Queue filling again */
  chSysLock();
  for (i = 0; i < TEST_QUEUES_SIZE; i++)
    chIQPutI(&iq, 'A' + i);
  chSysUnlock();

  /* Reading the whole thing */
  n = chIQReadTimeout(&iq, wa[1], TEST_QUEUES_SIZE * 2, TIME_IMMEDIATE);
  test_assert(6, n == TEST_QUEUES_SIZE, "wrong returned size");
  test_assert_lock(7, chIQIsEmptyI(&iq), "still full");

  /* Queue filling again */
  chSysLock();
  for (i = 0; i < TEST_QUEUES_SIZE; i++)
    chIQPutI(&iq, 'A' + i);
  chSysUnlock();

  /* Partial reads */
  n = chIQReadTimeout(&iq, wa[1], TEST_QUEUES_SIZE / 2, TIME_IMMEDIATE);
  test_assert(8, n == TEST_QUEUES_SIZE / 2, "wrong returned size");
  n = chIQReadTimeout(&iq, wa[1], TEST_QUEUES_SIZE / 2, TIME_IMMEDIATE);
  test_assert(9, n == TEST_QUEUES_SIZE / 2, "wrong returned size");
  test_assert_lock(10, chIQIsEmptyI(&iq), "still full");

  /* Testing reset */
  chSysLock();
  chIQPutI(&iq, 0);
  chIQResetI(&iq);
  chSysUnlock();
  test_assert_lock(11, chIQGetFullI(&iq) == 0, "still full");
  threads[0] = chThdCreateStatic(wa[0], WA_SIZE, chThdGetPriorityX()+1, thread1, NULL);
  test_assert_lock(12, chIQGetFullI(&iq) == 0, "not empty");
  test_wait_threads();

  /* Timeout */
  test_assert(13, chIQGetTimeout(&iq, 10) == Q_TIMEOUT, "wrong timeout return");
}
Exemplo n.º 5
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static void rt_test_005_006_execute(void) {
  binary_semaphore_t bsem;
  msg_t msg;

  /* [5.6.1] Creating a binary semaphore in "taken" state, the state is
     checked.*/
  test_set_step(1);
  {
    chBSemObjectInit(&bsem, true);
    test_assert_lock(chBSemGetStateI(&bsem) == true, "not taken");
  }

  /* [5.6.2] Resetting the binary semaphore in "taken" state, the state
     must not change.*/
  test_set_step(2);
  {
    chBSemReset(&bsem, true);
    test_assert_lock(chBSemGetStateI(&bsem) == true, "not taken");
  }

  /* [5.6.3] Starting a signaler thread at a lower priority.*/
  test_set_step(3);
  {
    threads[0] = chThdCreateStatic(wa[0], WA_SIZE,
                                   chThdGetPriorityX()-1, thread4, &bsem);
  }

  /* [5.6.4] Waiting for the binary semaphore to be signaled, the
     semaphore is expected to be taken.*/
  test_set_step(4);
  {
    msg = chBSemWait(&bsem);
    test_assert_lock(chBSemGetStateI(&bsem) == true, "not taken");
    test_assert(msg == MSG_OK, "unexpected message");
  }

  /* [5.6.5] Signaling the binary semaphore, checking the binary
     semaphore state to be "not taken" and the underlying counter
     semaphore counter to be one.*/
  test_set_step(5);
  {
    chBSemSignal(&bsem);
    test_assert_lock(chBSemGetStateI(&bsem) ==false, "still taken");
    test_assert_lock(chSemGetCounterI(&bsem.sem) == 1, "unexpected counter");
  }

  /* [5.6.6] Signaling the binary semaphore again, the internal state
     must not change from "not taken".*/
  test_set_step(6);
  {
    chBSemSignal(&bsem);
    test_assert_lock(chBSemGetStateI(&bsem) == false, "taken");
    test_assert_lock(chSemGetCounterI(&bsem.sem) == 1, "unexpected counter");
  }
}
Exemplo n.º 6
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static void queues2_execute(void) {
  unsigned i;
  size_t n;

  /* Initial empty state */
  test_assert_lock(1, chOQIsEmptyI(&oq), "not empty");

  /* Queue filling */
  for (i = 0; i < TEST_QUEUES_SIZE; i++)
    chOQPut(&oq, 'A' + i);
  test_assert_lock(2, chOQIsFullI(&oq), "still has space");

  /* Queue emptying */
  for (i = 0; i < TEST_QUEUES_SIZE; i++) {
    char c;

    chSysLock();
    c = chOQGetI(&oq);
    chSysUnlock();
    test_emit_token(c);
  }
  test_assert_lock(3, chOQIsEmptyI(&oq), "still full");
  test_assert_sequence(4, "ABCD");
  test_assert_lock(5, chOQGetI(&oq) == Q_EMPTY, "failed to report Q_EMPTY");

  /* Writing the whole thing */
  n = chOQWriteTimeout(&oq, wa[1], TEST_QUEUES_SIZE * 2, TIME_IMMEDIATE);
  test_assert(6, n == TEST_QUEUES_SIZE, "wrong returned size");
  test_assert_lock(7, chOQIsFullI(&oq), "not full");
  threads[0] = chThdCreateStatic(wa[0], WA_SIZE, chThdGetPriorityX()+1, thread2, NULL);
  test_assert_lock(8, chOQGetFullI(&oq) == TEST_QUEUES_SIZE, "not empty");
  test_wait_threads();

  /* Testing reset */
  chSysLock();
  chOQResetI(&oq);
  chSysUnlock();
  test_assert_lock(9, chOQGetFullI(&oq) == 0, "still full");

  /* Partial writes */
  n = chOQWriteTimeout(&oq, wa[1], TEST_QUEUES_SIZE / 2, TIME_IMMEDIATE);
  test_assert(10, n == TEST_QUEUES_SIZE / 2, "wrong returned size");
  n = chOQWriteTimeout(&oq, wa[1], TEST_QUEUES_SIZE / 2, TIME_IMMEDIATE);
  test_assert(11, n == TEST_QUEUES_SIZE / 2, "wrong returned size");
  test_assert_lock(12, chOQIsFullI(&oq), "not full");

  /* Timeout */
  test_assert(13, chOQPutTimeout(&oq, 0, 10) == Q_TIMEOUT, "wrong timeout return");
}
Exemplo n.º 7
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static void rt_test_005_004_execute(void) {

  /* [5.4.1] A thread is created, it goes to wait on the semaphore.*/
  test_set_step(1);
  {
    threads[0] = chThdCreateStatic(wa[0], WA_SIZE, chThdGetPriorityX()+1, thread1, "A");
  }

  /* [5.4.2] The semaphore counter is increased by two, it is then
     tested to be one, the thread must have completed.*/
  test_set_step(2);
  {
    chSysLock();
    chSemAddCounterI(&sem1, 2);
    chSchRescheduleS();
    chSysUnlock();
    test_wait_threads();
    test_assert_lock(chSemGetCounterI(&sem1) == 1, "invalid counter");
    test_assert_sequence("A", "invalid sequence");
  }
}
Exemplo n.º 8
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static void mbox1_execute(void) {
  msg_t msg1, msg2;
  unsigned i;

  /*
   * Testing initial space.
   */
  test_assert_lock(1, chMBGetFreeCountI(&mb1) == MB_SIZE, "wrong size");

  /*
   * Testing enqueuing and backward circularity.
   */
  for (i = 0; i < MB_SIZE - 1; i++) {
    msg1 = chMBPost(&mb1, 'B' + i, TIME_INFINITE);
    test_assert(2, msg1 == MSG_OK, "wrong wake-up message");
  }
  msg1 = chMBPostAhead(&mb1, 'A', TIME_INFINITE);
  test_assert(3, msg1 == MSG_OK, "wrong wake-up message");

  /*
   * Testing post timeout.
   */
  msg1 = chMBPost(&mb1, 'X', 1);
  test_assert(4, msg1 == MSG_TIMEOUT, "wrong wake-up message");
  chSysLock();
  msg1 = chMBPostI(&mb1, 'X');
  chSysUnlock();
  test_assert(5, msg1 == MSG_TIMEOUT, "wrong wake-up message");
  msg1 = chMBPostAhead(&mb1, 'X', 1);
  test_assert(6, msg1 == MSG_TIMEOUT, "wrong wake-up message");
  chSysLock();
  msg1 = chMBPostAheadI(&mb1, 'X');
  chSysUnlock();
  test_assert(7, msg1 == MSG_TIMEOUT, "wrong wake-up message");

  /*
   * Testing final conditions.
   */
  test_assert_lock(8, chMBGetFreeCountI(&mb1) == 0, "still empty");
  test_assert_lock(9, chMBGetUsedCountI(&mb1) == MB_SIZE, "not full");
  test_assert_lock(10, mb1.rdptr == mb1.wrptr, "pointers not aligned");

  /*
   * Testing dequeuing.
   */
  for (i = 0; i < MB_SIZE; i++) {
    msg1 = chMBFetch(&mb1, &msg2, TIME_INFINITE);
    test_assert(11, msg1 == MSG_OK, "wrong wake-up message");
    test_emit_token(msg2);
  }
  test_assert_sequence(12, "ABCDE");

  /*
   * Testing buffer circularity.
   */
  msg1 = chMBPost(&mb1, 'B' + i, TIME_INFINITE);
  test_assert(13, msg1 == MSG_OK, "wrong wake-up message");
  msg1 = chMBFetch(&mb1, &msg2, TIME_INFINITE);
  test_assert(14, msg1 == MSG_OK, "wrong wake-up message");
  test_assert(15, mb1.buffer == mb1.wrptr, "write pointer not aligned to base");
  test_assert(16, mb1.buffer == mb1.rdptr, "read pointer not aligned to base");

  /*
   * Testing fetch timeout.
   */
  msg1 = chMBFetch(&mb1, &msg2, 1);
  test_assert(17, msg1 == MSG_TIMEOUT, "wrong wake-up message");
  chSysLock();
  msg1 = chMBFetchI(&mb1, &msg2);
  chSysUnlock();
  test_assert(18, msg1 == MSG_TIMEOUT, "wrong wake-up message");

  /*
   * Testing final conditions.
   */
  test_assert_lock(19, chMBGetFreeCountI(&mb1) == MB_SIZE, "not empty");
  test_assert_lock(20, chMBGetUsedCountI(&mb1) == 0, "still full");
  test_assert_lock(21, mb1.rdptr == mb1.wrptr, "pointers not aligned");

  /*
   * Testing I-Class.
   */
  chSysLock();
  msg1 = chMBPostI(&mb1, 'A');
  test_assert(22, msg1 == MSG_OK, "wrong wake-up message");
  msg1 = chMBPostI(&mb1, 'B');
  test_assert(23, msg1 == MSG_OK, "wrong wake-up message");
  msg1 = chMBPostI(&mb1, 'C');
  test_assert(24, msg1 == MSG_OK, "wrong wake-up message");
  msg1 = chMBPostI(&mb1, 'D');
  test_assert(25, msg1 == MSG_OK, "wrong wake-up message");
  msg1 = chMBPostI(&mb1, 'E');
  chSysUnlock();
  test_assert(26, msg1 == MSG_OK, "wrong wake-up message");
  test_assert(27, mb1.rdptr == mb1.wrptr, "pointers not aligned");
  for (i = 0; i < MB_SIZE; i++) {
    chSysLock();
    msg1 = chMBFetchI(&mb1, &msg2);
    chSysUnlock();
    test_assert(28, msg1 == MSG_OK, "wrong wake-up message");
    test_emit_token(msg2);
  }
  test_assert_sequence(29, "ABCDE");
  test_assert_lock(30, chMBGetFreeCountI(&mb1) == MB_SIZE, "not empty");
  test_assert_lock(31, chMBGetUsedCountI(&mb1) == 0, "still full");
  test_assert(32, mb1.rdptr == mb1.wrptr, "pointers not aligned");

  chSysLock();
  msg1 = chMBPostAheadI(&mb1, 'E');
  test_assert(33, msg1 == MSG_OK, "wrong wake-up message");
  msg1 = chMBPostAheadI(&mb1, 'D');
  test_assert(34, msg1 == MSG_OK, "wrong wake-up message");
  msg1 = chMBPostAheadI(&mb1, 'C');
  test_assert(35, msg1 == MSG_OK, "wrong wake-up message");
  msg1 = chMBPostAheadI(&mb1, 'B');
  test_assert(36, msg1 == MSG_OK, "wrong wake-up message");
  msg1 = chMBPostAheadI(&mb1, 'A');
  chSysUnlock();
  test_assert(37, msg1 == MSG_OK, "wrong wake-up message");
  test_assert(38, mb1.rdptr == mb1.wrptr, "pointers not aligned");
  for (i = 0; i < MB_SIZE; i++) {
    chSysLock();
    msg1 = chMBFetchI(&mb1, &msg2);
    chSysUnlock();
    test_assert(39, msg1 == MSG_OK, "wrong wake-up message");
    test_emit_token(msg2);
  }
  test_assert_sequence(40, "ABCDE");
  test_assert_lock(41, chMBGetFreeCountI(&mb1) == MB_SIZE, "not empty");
  test_assert_lock(42, chMBGetUsedCountI(&mb1) == 0, "still full");
  test_assert(43, mb1.rdptr == mb1.wrptr, "pointers not aligned");

  /*
   * Testing reset.
   */
  chMBReset(&mb1);

  /*
   * Re-testing final conditions.
   */
  test_assert_lock(44, chMBGetFreeCountI(&mb1) == MB_SIZE, "not empty");
  test_assert_lock(45, chMBGetUsedCountI(&mb1) == 0, "still full");
  test_assert_lock(46, mb1.buffer == mb1.wrptr, "write pointer not aligned to base");
  test_assert_lock(47, mb1.buffer == mb1.rdptr, "read pointer not aligned to base");
}
Exemplo n.º 9
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static void test_008_001_execute(void) {
  msg_t msg1, msg2;
  unsigned i;

  /* [8.1.1] Testing the mailbox size.*/
  test_set_step(1);
  {
    test_assert_lock(chMBGetFreeCountI(&mb1) == MB_SIZE, "wrong size");
  }

  /* [8.1.2] Resetting the mailbox, conditions are checked, no errors
     expected.*/
  test_set_step(2);
  {
    chMBReset(&mb1);
    test_assert_lock(chMBGetFreeCountI(&mb1) == MB_SIZE, "not empty");
    test_assert_lock(chMBGetUsedCountI(&mb1) == 0, "still full");
    test_assert_lock(mb1.buffer == mb1.wrptr, "write pointer not aligned to base");
    test_assert_lock(mb1.buffer == mb1.rdptr, "read pointer not aligned to base");
  }

  /* [8.1.3] Filling the mailbox using chMBPost() and chMBPostAhead()
     once, no errors expected.*/
  test_set_step(3);
  {
    for (i = 0; i < MB_SIZE - 1; i++) {
      msg1 = chMBPost(&mb1, 'B' + i, TIME_INFINITE);
      test_assert(msg1 == MSG_OK, "wrong wake-up message");
    }
    msg1 = chMBPostAhead(&mb1, 'A', TIME_INFINITE);
    test_assert(msg1 == MSG_OK, "wrong wake-up message");
  }

  /* [8.1.4] Testing intermediate conditions. Data pointers must be
     aligned, semaphore counters are checked.*/
  test_set_step(4);
  {
    test_assert_lock(chMBGetFreeCountI(&mb1) == 0, "still empty");
    test_assert_lock(chMBGetUsedCountI(&mb1) == MB_SIZE, "not full");
    test_assert_lock(mb1.rdptr == mb1.wrptr, "pointers not aligned");
  }

  /* [8.1.5] Emptying the mailbox using chMBFetch(), no errors
     expected.*/
  test_set_step(5);
  {
    for (i = 0; i < MB_SIZE; i++) {
      msg1 = chMBFetch(&mb1, &msg2, TIME_INFINITE);
      test_assert(msg1 == MSG_OK, "wrong wake-up message");
      test_emit_token(msg2);
    }
    test_assert_sequence("ABCD", "wrong get sequence");
  }

  /* [8.1.6] Posting and then fetching one more message, no errors
     expected.*/
  test_set_step(6);
  {
    msg1 = chMBPost(&mb1, 'B' + i, TIME_INFINITE);
    test_assert(msg1 == MSG_OK, "wrong wake-up message");
    msg1 = chMBFetch(&mb1, &msg2, TIME_INFINITE);
    test_assert(msg1 == MSG_OK, "wrong wake-up message");
  }

  /* [8.1.7] Testing final conditions. Data pointers must be aligned to
     buffer start, semaphore counters are checked.*/
  test_set_step(7);
  {
    test_assert_lock(chMBGetFreeCountI(&mb1) == MB_SIZE, "not empty");
    test_assert_lock(chMBGetUsedCountI(&mb1) == 0, "still full");
    test_assert(mb1.buffer == mb1.wrptr, "write pointer not aligned to base");
    test_assert(mb1.buffer == mb1.rdptr, "read pointer not aligned to base");
  }
}