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I'm using threading.Timer on python 2.74. This is the relevant piece of code:

__lock = threading.Lock()
def RegeneratePopulationData():
    print 'I feel regenerated!'

def __setRegenerationTimer(firstTime = False):
    global __regenerationTimer
    now = _getNow().date()
    nextRun = datetime(now.year, now.month, + 1, 2, 0)
    __regenerationTimer = threading.Timer((nextRun - _getNow()).total_seconds(), __setRegenerationTimer)
    print 'Regeneration timer set to run in %s' % (nextRun - _getNow())
    print __regenerationTimer.interval
    if not firstTime:

def _getNow():
        return + timedelta(hours = TIME_DIF)

This cause a TypeError exception to be thrown from I've searched the net for hours, and couldn't find a solution.

After changing the code at (for debugging purposes), around line 349, to:

            # than 20 times per second (or the timeout time remaining).
            print _time()
            print timeout
            endtime = _time() + timeout
            delay = 0.0005 # 500 us -> initial delay of 1 ms

This is the exception I'm getting:

Regeneration timer set to run in 2:52:12.337000
2013-08-27 21:07:47.663000
Exception in thread Thread-2:
Traceback (most recent call last):
  File "C:\Python27\lib\", line 812, in __bootstrap_inner
  File "C:\Python27\lib\", line 1082, in run
  File "C:\Python27\lib\", line 622, in wait
  File "C:\Python27\lib\", line 350, in wait
    endtime = _time() + timeout
TypeError: unsupported operand type(s) for +: 'float' and 'datetime.datetime'

I can't figure out why the interval is suddenly turning into datetime!

Can anyone please help?

share|improve this question
What's up with the double underscores? You usually only see those in class definitions, but there's no self in this code. – user2357112 Aug 27 '13 at 20:38
I was going to suggest that you add id(self) to your traces in to see if there is another object doing wait in your program. But you accepted @Marin's answer... does that mean the problem is fixed? – tdelaney Aug 27 '13 at 21:17
@tdelaney That's what I did eventually, and that was the problem. Since I wrongfully presented the problem as one stemming from, I accepted this answer so no one else would waste their time on this question... His final advice was to debug, and that was how I picked it up eventually. – Korem Aug 28 '13 at 5:45

1 Answer 1

up vote 2 down vote accepted

Your code doesn't show where timeout is coming from. It's not "suddenly becoming" anything. Whatever your code, at some point previously, a datetime.datetime was assigned to timeout. Either eliminate that condition, or handle it appropriately (perhaps by catching the exception).

Update: You're modifying standard library code, which is an awful idea. Directly or indirectly, you're passing in a datetime.datetime. Use pdb to figure out where. Run your code in the python console. When you trigger the exception do import pdb;, and you'll drop into the debugger at the site of the exception. You can explore from there.

share|improve this answer
My code doesn't touch the timeout variable. I've posted the entire relevant code. Everything else is done internally at which is, afaik, infrastructure python code. – Korem Aug 27 '13 at 20:31
@TalKremerman That's a terrible idea. Use the builtin python debugger to inspect values, and discover where timeout is assigned. – Marcin Aug 27 '13 at 20:34
I AM NOT modifying library code. – Korem Aug 27 '13 at 20:37
Your question says otherwise. Which is it? – Marcin Aug 27 '13 at 20:37
Most of the time, when you're vehemently sure something couldn't be the source of the problem, it's the source of the problem. Are you sure you're not passing a datetime? Are you sure this is the "relevant part"? Are you sure you didn't mess up your Python install by editing – user2357112 Aug 27 '13 at 20:43

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