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I'm posing this question mostly out of curiosity. I've written some code that is doing some very time intensive work. So, before executing my workhorse function, I wrapped it up in a couple of calls to time.clock(). It looks something like this:

t1 = time.clock()
print this_function_takes_forever(how_long_parameter = 20)
t2 = time.clock()
print t2 - t1

This worked fine. My function returned correctly and t2 - t1 gave me a result of 972.29, or about 16 minutes.

However, when I changed my code to this

t1 = time.clock()
print this_function_takes_forever(how_long_parameter = 80)
t2 = time.clock()
print t2 - t1

My function still returned fine, but the result of t2 - t1 was:

None
-1741

I'm curious as to what implementation detail causes this. Both the None, and the negative number are perplexing to me. Does it have something to do with a signed type? How does this explain the None?

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You have written the worlds first time machine. Congratulations! –  Chris Diver Jul 20 '10 at 17:58
4  
Do you know aboutish how long the function took ? e.g. on linux, clock() might wrap around after 72 minutes. –  nos Jul 20 '10 at 18:00
    
Maybe DST ends early in your timezone :p –  KennyTM Jul 20 '10 at 18:03
    
@nos I am on a linux box, and the code took about an hour and 10 minutes to complete. So, right around the 72 minute mark... –  Wilduck Jul 20 '10 at 18:04
    
It's probably not possible to tell why your function returned None without seeing the code. Of course presumably it's a lot of code if it takes 16 minutes to run! My guess is your function may have "fallen out" of your normal execution path, bypassing all of the return statements and thus returning None, which is the default. Can't do much better without code, I'm afraid. –  Wayne Werner Jul 20 '10 at 18:07
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3 Answers 3

up vote 17 down vote accepted

The Python docs say:

On Unix, return the current processor time as a floating point number expressed in seconds. The precision, and in fact the very definition of the meaning of “processor time”, depends on that of the C function of the same name

The manpage of the referenced C function then explains the issue:

Note that the time can wrap around. On a 32-bit system where CLOCKS_PER_SEC equals 1000000 this function will return the same value approximately every 72 minutes.

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The None has a very simple answer, your function does not return a value. Actually I gather that is does under normal circumstances, but not when how_long_parameter = 80. Because your function seems to be returning early (probably because execution reaches the end of the function where there is an implicit return None in Python) the negative time might be because your function takes almost no time to complete in this case? So look for the bug in your function and correct it.

The actual answer as to why you get a negative time depends on the operating system you are using, because clock() is implemented differently on different platforms. On Windows it uses QueryPerformanceCounter(), on *nix it uses the C function clock().

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You're right. On both the fact that my function doesn't return anything for that parameter, and that that was a very simple answer. Thanks. –  Wilduck Jul 20 '10 at 18:08
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A quick guess... Looks like an overflow. The default data type is probably a signed data type (putting the first bit to 1 on a signed integer gives a negative number).

Try putting the result of the substraction in a variable (double), and then printing that.

If it still prints like that, you can try converting it from double to string, and then using 'print' function on the string.

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There's no signed shorts in python... –  Eloff Jul 20 '10 at 17:59
    
Ok, I've generalized the description. The concept would be the same. –  Wadih M. Jul 20 '10 at 18:00
    
@Eloff: But time.clock() takes result from the system... –  KennyTM Jul 20 '10 at 18:00
    
If the code snippet is running on the same system, i wouldn't see a scenario where t2 is smaller than t1. Unless python behaves completely differently. –  Wadih M. Jul 20 '10 at 18:04
    
@Wadih, no the result wont be the same, because time.clock() returns a double, unless your theory is that the underlying python or platform implementation has an overflow bug, which may well be possible, but I find it highly dubious. –  Eloff Jul 20 '10 at 18:06
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