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Is there a cleaner way to write this:

for w in [w for w in words if w != '']:

I want to loop over a dictionary words, but only words that != ''. Thanks!

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"words that aren't whitespace", as a commentor below points out, isn't the same as != "". Use the isspace method if that's what you need. –  Mike Graham May 4 '10 at 4:58
    
Sorry, I misspoke, I don't mean whitespace (edited). –  ash May 4 '10 at 8:26

6 Answers 6

up vote 6 down vote accepted

You don't need a listcomp here. Just write:

for w in words:
    if w != '':
        # ...
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Alright. Worth a shot. –  ash May 4 '10 at 3:31
3  
Except List comprehension is the pythonic way of iterating.... –  Daniel Goldberg May 4 '10 at 3:33
1  
@Daniel Goldberg, who said that, i thought 'for' was for iterating, and as OP is doing it it is overkill, @dan04 +1, that is the correct way...IMO –  Anurag Uniyal May 4 '10 at 3:37
2  
If you don't want to have another indentation level, you could always have if w == "": continue or if not w: continue, which is something I see pretty often. –  Mike Graham May 4 '10 at 3:48
5  
@Goldberg: Listcomps are preferred over loops that do .append to a list, not over loops in general. –  dan04 May 4 '10 at 3:49

Assuming that you are after the keys, why not try:

[w for w in words if w]
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Testing that an element does not equal '' isn't going to filter out whitespace elements. If that's what you're after, you probably want to use str.isspace (or a regular expression).

If you use a list comprehension, you'll make an extra copy of the list as an intermediary object. Probably not a big deal, but a generator won't use the extra memory.

I'd do it like this, with a generator:

for word in (w for w in words if not w.isspace()):
    # do stuff
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I think your solution is sub optimal. You're iterating over the list words twice - once in the list comprehension to create the non-null terms and again in the loop to do the processing. It would be better if you used a genexp like so.

for w in (x for x in words if x): process(w)

That way, the genexp will lazily return a list of non-nulls.

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2  
for w in words: if x: process(w) seems simpler, shorter, and clearer to me. –  Mike Graham May 4 '10 at 3:49

filter(lambda w: w != '', words) or filter(None, words)

this is suggestion, it may not be the best solution for your problem.

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"filter(P, S) is almost always written clearer as [x for x in S if P(x)]" - Guido van Rossum. –  Noufal Ibrahim May 4 '10 at 3:39
    
@Nou I am partial towards functional stuff. at the same time guido really dislike them. they have their place, but probably not for OP problem –  Anycorn May 4 '10 at 3:41
    
Your first snippet is a SyntaxError (I think you mean !=not is something different). Using filter isn't somehow more functional than using a list comprehension (an idea we stole from no other but Haskell!), and using filter and map with lambdas seems downright silly to me. –  Mike Graham May 4 '10 at 3:46
1  
What do you mean by "functional stuff"? Do you mean the name filter? How is it semantically different from a list comprehension (which itself was borrowed from a pure functional language)? –  Noufal Ibrahim May 4 '10 at 4:05
    
@Nou python manual calls them functional tools, hence functional stuff. sometimes I use them because they make code little bit cleaner in certain cases. semantically, that probably not different. –  Anycorn May 4 '10 at 4:12

What does the body of the outer for loop do?

If it's a function call you could potentially just do:

[f(w) for w in words if w != '']

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