I have a method in python (2.7) that does foo, and gives up after 5 minutes if foo didn't work.

def keep_trying(self):
    timeout = 300  #empirically derived, appropriate timeout
    end_time = time.time() + timeout
    while (time.time() < end_time):
        result = self.foo()
        if (result == 'success'):
            break
        time.sleep(2)
    else:
        raise MyException('useful msg here')

I know some possible results from foo(), so I am using mock to fake those return values. The problem is, I don't want the test to run 5 minutes before it gets to see the exception.

Is there a way to override that local value of timeout? I'd like that to be just a few seconds so that I can see the loop try a couple times, then give up and raise.

The following does not work:

@patch.object(myClass.keep_trying, 'timeout')
@patch.object(myClass, 'foo')
def test_keep_trying(self, mock_foo, mock_timeout):
    mock_foo.return_value = 'failed'
    mock_timeout.return_value = 10 # raises AttributeError
    mock_timeout = 10 # raises AttributeError
    ...
up vote 12 down vote accepted

Rather than trying to mock the value if timeout, you'll want to mock the return value of time.time().

e.g.

@patch.object(time, 'time')
def test_keep_trying(self, mock_time):
    mock_time.side_effect = iter([100, 200, 300, 400, 500, 600, 700, 800])
    ...

Now the first time time.time() is called, you'll get the value of 100, so it should timeout when after a few turns of your while loop. You can also mock time.sleep and just count how many times it gets called to make sure that part of the code is working properly.


Another approach (which isn't completely orthogonal to the one above) is to allow the user to pass an optional timeout keyword to the function:

def keep_trying(self, timeout=300):
    ...

This allows you to specify whatever timeout you want in the tests (and in future code which doesn't want to wait 5 minutes ;-).

  • mock_time it is! – anregen Feb 24 '15 at 4:38
  • Actually, i used @patch.object(myClass.time, 'time') to keep the mock.side_effect local to that one module. – anregen Feb 24 '15 at 4:41

You can't mock a function's local variable. To make your code easier to test, change it to, e.g:

def keep_trying(self, timeout=300):
    end_time = time.time() + timeout
    # etc, as above

so it becomes trivial for tests to run it with a shorter timeout!

  • And I was just editing that into my answer ... :-) – mgilson Feb 24 '15 at 4:27
  • 3
    The original function is part of a published API, so I don't want to change the signature, and I don't want the users to have access to adjust that timeout. – anregen Feb 24 '15 at 4:37
  • 3
    Python works as a gentleman's agreement and certain conventions - if you make the argument have a single leading underscore - your users will know that the argument should not be used - and any decent documentation system will allow you to omit private arguments, methods, fields etc anyway, so only a very determined user will find the argument in the first place. – Tony Suffolk 66 Feb 24 '15 at 20:25

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