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In Python I have a list of strings, some of which may be the empty string. What's the best way to get the first non-empty string?

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Do you want the reference to the first empty string or do you want to remove all empty strings from a list? Was this list generated from a split string by any chance? –  Andrew Hare Jul 16 '09 at 14:32
    
Generated from regex: matches = re.findall(r"foo(\d+)|bar(\d+)") - I want the first non-empty string, but would be interested in how to remove all empty strings too (the regex might get longer). –  Simon D Jul 16 '09 at 14:34
    
title of your question do not correspond to the body of your question. Fix one of them. –  SilentGhost Jul 16 '09 at 14:34
    
Changed it, thanks –  Simon D Jul 16 '09 at 14:37

6 Answers 6

up vote 11 down vote accepted
next(s for s in list_of_string if s)

Edit: py3k proof version as advised by Stephan202 in comments, thanks.

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[] is called list comprehension. –  SilentGhost Jul 16 '09 at 14:37
    
wouldn't work in py3k –  SilentGhost Jul 16 '09 at 14:38
2  
py3k version: next(s for s in list_of_string if s). –  Stephan202 Jul 16 '09 at 14:42
2  
btw, it'll raise StopIteration if all strings are empty. –  SilentGhost Jul 16 '09 at 15:07
1  
@Fred: It's all very confusing really: next(generator) works in 2.6 and 3.x; generator.__next__() works in 3.x; generator.next() works in 2.x –  John Machin Jul 16 '09 at 15:27

To remove all empty strings,

[s for s in list_of_strings if s]

To get the first non-empty string, simply create this list and get the first element, or use the lazy method as suggested by wuub.

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one line FTW! I love it. –  Randolpho Jul 16 '09 at 14:35
5  
A bit inefficient, though! If you have one million non-empty stings after just an empty one, you'll spend time and memory generating a list of one million string, only to get the first one... At least, use a generator! –  Mapio Jul 16 '09 at 15:06
def get_nonempty(list_of_strings):
    for s in list_of_strings:
        if s:
            return s
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1  
Far less elegent than the Generator comprehension suggested above, also adds more complexity to the soruce file. –  Daniel Goldberg Jul 18 '09 at 13:23
1  
elegance in the eyes of the beholder, Daniel. It works flawlessly unlike the accepted answer's version: that's what matters –  SilentGhost Jul 19 '09 at 21:44

Here's a short way:

filter(None, list_of_strings)[0]

EDIT:

Here's a slightly longer way that is better:

from itertools import ifilter
ifilter(None, list_of_strings).next()
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Why is the second way better? –  Simon D Jul 16 '09 at 15:06
    
This only works in Python 2.x, and is less efficient than the generator example, because filter iterates over the whole list, irrespective of contents. In py3k filter returns a filter object, which is unsubscriptable. –  Stephan202 Jul 16 '09 at 15:10
    
@Fred: The first way will go through and filter out every empty string, create a new list, and select the first result. The second way will step through the list filtering out empty strings until it finds the first empty one and will return that. No intermediate list would be created. For example, if you have a list of 10,000 strings and only the first one is empty, the first method creates a new list of 9,999 strings in memory while the second does not. –  Steve Losh Jul 16 '09 at 15:12
1  
@Stephan202: The "slightly longer way" is equivalent to the generator example, I think. –  Steve Losh Jul 16 '09 at 15:14
    
+1 for an answer that works in Python 2.x and 1.5.2 :-) -- unfortunately not in 3.x –  John Machin Jul 16 '09 at 15:16

to get the first non empty string in a list, you just have to loop over it and check if its not empty. that's all there is to it.

arr = ['','',2,"one"]
for i in arr:
    if i:
        print i
        break
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Based on your question I'll have to assume a lot, but to "get" the first non-empty string:

(i for i, s in enumerate(x) if s).next()

which returns its index in the list. The 'x' binding points to your list of strings.

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