short rtimer_arch_now(void)
{
  short t1, t2;
  do {
    t1 = TA1R;
    t2 = TA1R;
  } while(t1 != t2);
  return t1;
}

TA1R is a The Timer_A Register. I still dont get why there is a loop. If they want to return the time whydont they simply return TA1R. What is the loop for?

  • TA1R can change values between the times it is read as it is a register. – Peter L. Aug 6 '13 at 0:36
up vote 13 down vote accepted

It tries to avoid the case when you ask the current time but it returns the value right before the time ticks. So it only returns the current time if the reading is stable.

  • 8
    You bet me by a tick – TheBlastOne Aug 6 '13 at 0:40
  • Yep. That makes sense now – user2578666 Aug 6 '13 at 0:47

The code is attempting to wait until TA1R changes and then return the old value of TA1R.

This code will only work if TA1R was declared as volatile, otherwise the compiler can optimize the loop away.

  • What if subsequent reads of the timer (t1 and t2) continually return different values? This doesn't seem a robust solution if the timer has a high frequency. – jozzas Aug 6 '13 at 0:40
  • 4
    Also, your answer is incorrect - note the != in while (t1 != t2) – Timothy Jones Aug 6 '13 at 0:41
  • agreed that this is not a robust solution. – markgz Aug 6 '13 at 0:41
  • whoops, I didn't notice the != in the while loop, so perreal's answer is correct. The code is avoiding returning the value when the timer has just changed. – markgz Aug 6 '13 at 0:43

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