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I have found some answers to this question before, but they seem to be obsolete for the current python versions (or at least they don't work for me).

I want to check if a substring is contained in a list of strings. I only need the boolean result.

I found this solution:

word_to_check = 'or'
wordlist = ['yellow','orange','red']
result = any(word_to_check in word for word in worldlist)

From this code I would expect to get a 'True' value. If the word was 'der', then the output should be 'False'.

However, the result is a generator function, and I can't find a way to get the 'True' value.

Any idea?

Thanks!

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3  
The code you posted works fine (except for wordlist/worldlist). I'm guessing you forgot the any() call when you tried it before. –  Lattyware May 5 '13 at 0:51
    
I missed that you already used any. –  Ashwini Chaudhary May 5 '13 at 0:52
4  
Don't do from numpy import *. Just import numpy or also common import numpy as np. –  Mark Tolonen May 5 '13 at 0:55
2  
This problem comes up for me all the time when using ipython --pylab, which "helpfully" imports * from numpy for you. In that case you can directly use __builtin__.any without having to import __builtin__ like in Ashwini's answer, since __builtin__ shows up in interactive shells automatically. Also @DSM: apparently the behavior of numpy.any changed (for the worse) in 1.7. –  Dougal May 5 '13 at 1:03
1  
Also, see the new answer below that shows a much faster alternative approach by combining the words into a single string. –  Raymond Hettinger May 5 '13 at 5:08

3 Answers 3

up vote 6 down vote accepted

You can import any from __builtin__ in case it was replaced by some other any:

>>> from  __builtin__ import any as b_any
>>> lis= ['yellow','orange','red']
>>> word= "or"
>>> b_any(word in x for x in lis)
True

Noe that in py3x __builtin__ has been renamed to builtins.

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1  
You can work around the issue with numpy.any if a list comp is used instead of a generator: np.any([word in x for x in lis]). –  Mark Tolonen May 5 '13 at 1:06
    
@MarkTolonen np.any is going to be slow then as it generates the whole list first. –  Ashwini Chaudhary May 5 '13 at 1:14
    
Relatively slower yes, noticeably slower...only the OP can say, but not for his example :) –  Mark Tolonen May 5 '13 at 6:42

The code you posted using any() is correct and should work unless you've redefined it somewhere.

That said, there is a simple and fast solution to be had by using the substring search on a single combined string:

>>> wordlist = ['yellow','orange','red']
>>> combined = '\t'.join(wordlist)

>>> 'or' in combined
True
>>> 'der' in combined
False

This should work much faster than the approach using any. The join character can be any character that doesn't occur in one of the words in the wordlist.

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+1 for the most readable solution in my opinion –  starbeamrainbowlabs Apr 7 '14 at 17:44

Other probable solution is:

#!/usr/bin/python

colors = ['yellow','orange','red'] 
foo = "or" 
result = [i for i in colors if foo in i]  
print result

Output:

Orange
share|improve this answer
    
That looks like a great way to find the objects with the substring, and could be used also for the True/False objective checking the length of the resulting array. –  Álvaro May 5 '13 at 2:44

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