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I have a list in Python, and I want to check if any elements are negative. Specman has the has() method for lists which does:

x: list of uint;
if (x.has(it < 0)) {
    // do something
};

Where it is a Specman keyword mapped to each element of the list in turn.

I find this rather elegant. I looked through the Python documentation and couldn't find anything similar. The best I could come up with was:

if (True in [t < 0 for t in x]):
    # do something

I find this rather inelegant. Is there a better way to do this in Python?

share|improve this question
    
fixed the title :-) –  Nathan Fellman Aug 27 '09 at 17:55
    
OK, deleted my comment. –  Peter Mortensen Aug 27 '09 at 17:58

3 Answers 3

up vote 40 down vote accepted

any():

if any(t < 0 for t in x):
    # do something

Also, if you're going to use "True in ...", make it a generator expression so it doesn't take O(n) memory:

if (True in (t < 0 for t in x)):
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Beat me to it by 18 seconds. Yes, any() is the correct answer here. –  Daniel Pryden Aug 27 '09 at 17:40
4  
On the simple questions you have to be fast and lucky to get da points. :-) –  Ken Aug 27 '09 at 17:40
1  
If it's that simple maybe I should add a newbie tag to this :-) –  Nathan Fellman Aug 27 '09 at 17:41

Use any().

if any(t < 0 for t in x):
    # do something
share|improve this answer
    
+1 for having the correct answer, only 18 seconds too late. –  Michael Deardeuff Aug 27 '09 at 19:53

Python has a built in any() function for exactly this purpose.

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2.5+ only. Otherwise you have to make a function, maybe using ifilter and exceptions, or bool(set((x for x if cond))) or the like. –  Gregg Lind Sep 1 '09 at 3:57
    
Rather than a complicated ifilter thingie, just do: def any(it): for el in it: if el: return True; return False –  Rory Jan 12 '12 at 10:55

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