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How does a python programmer check if any value of a dictionary matches a condition (is greater than 0 in my case). I'm looking for the most "pythonic" way that has minimal performance-impact.

my dictionary:

pairs = { 'word1':0, 'word2':0, 'word3':2000, 'word4':64, 'word5':0, 'wordn':8 }

I used these 2 (monstrous?) methods so far.

1:

options = pairs.values() # extract values
for i in options:
    if i > 0:
        return True
return False

2:

options = sorted(pairs.items(), key=lambda e: e[1], reverse=True) # rank from max to min
if options[0][1] > 0:
    return True
else:
    return False
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Are you checking just one entry in the dictionary (like your text says) or all entries (like your code is doing)? –  smcg Sep 11 '12 at 18:55
    
@smcg: Sorry for my English. I meant all the entries;] –  Firebowl2000 Sep 11 '12 at 18:56
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1 Answer

up vote 10 down vote accepted

You can use any [docs]:

>>> pairs = { 'word1':0, 'word2':0, 'word3':2000, 'word4':64, 'word5':0, 'wordn':8 }
>>> any(v > 0 for v in pairs.itervalues())
True
>>> any(v > 3000 for v in pairs.itervalues())
False

See also all [docs]:

>>> all(v > 0 for v in pairs.itervalues())
False
>>> all(v < 3000 for v in pairs.itervalues())
True

Since you're using Python 2.7, .itervalues() is probably a little better than .values() because it doesn't create a new list.

share|improve this answer
    
Thanks DSM! That's very useful. –  Firebowl2000 Sep 11 '12 at 19:01
    
I would go as far as saying this is the pythonic way for doing this. –  Lukas Graf Sep 11 '12 at 19:18
    
I often wonder how much difference there really is between .values and .itervalues -- After all, you're not creating new objects, only new references ... I suppose it's worth asking how much memory a python reference actually takes ... (I usually just use values since that won't need to be changed when I move my code to py3k ... but maybe I shouldn't ...) Good answer though. This is definitely the way to go about this (+1) –  mgilson Sep 11 '12 at 19:29
    
@mgilson: Yeah, I tend to write .values() myself unless I have some reason to want the performance gain (I usually only see tens of percent) or the dictionary is really big. But whenever I don't use it someone comments on it, so you can't win. ;-) –  DSM Sep 11 '12 at 19:43
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