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I am writing a code in Python 2.7 in which I have defined a list of strings. I then want to search this list's elements for a set of letters. These letters must be in random order. i.e. search the list for every single letter from input. I have been google'ing around but i haven't found a solution.

Here's what i got:

wordlist = ['mississippi','miss','lake','que']

letters = str(aqk)

for item in wordlist:
    if item.find(letters) != -1:
        print item

This is an example. Here the only output should be 'lake' and 'que' since these words contain 'a','q' and 'k'. How can I rewrite my code so that this will be done?

Thanks in advance!

Alex

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Please up-vote the answers that are correct and select your favorite form the below. I believe most of these will work. –  Matt Alcock Feb 25 '12 at 12:28
    
I wish I could, but i have not acquired enough reputation yet to do so... –  Alex Feb 25 '12 at 17:12

5 Answers 5

up vote 5 down vote accepted

It would be easy using set():

wordlist = ['mississippi','miss','lake','que']

letters = set('aqk')

for word in wordlist:
    if letters & set(word):
        print word

Output:

lake
que

Note: The & operator does an intersection between the two sets.

share|improve this answer
    
If the wordlist is fixed and this test is run with different sets of letters, pre-converting wordlist to wordsetlist (as in wordsetlist = map(set, wordlist)) should pay off quickly. –  Paul McGuire Feb 25 '12 at 12:40
    
Thank you! This solved my problem. –  Alex Feb 25 '12 at 16:26
    
I thought of another thing like it. What if I wanted the output to be the exact input, but not necessarily arranged in the same way? –  Alex Feb 25 '12 at 16:54
for item in wordlist:
    for character in letters:
        if character in item:
            print item
            break
share|improve this answer
    
Sorry, this prints item if any character in letters is in item; the OP wants to test if all characters in letters are in item. (The OP's example has the same bug.) –  Paul McGuire Feb 25 '12 at 12:37
    
Thanks for your suggestion anyways! –  Alex Feb 25 '12 at 14:14
    
@PaulMcGuire Well, the example confused me as well. Thought he meant a, q OR k... –  Ioan Alexandru Cucu Feb 25 '12 at 18:02

Here goes your solution:

for item in wordlist:
  b = False
  for c in letters:
    b = b | (item.find(c) != -1)
  if b:
    print item
share|improve this answer
1  
item.find(c) != -1 is so last century :) - c in item would be the more Pythonic way to do this in these modern times; it's also about 4 times faster in my simple tests. python -m timeit "'abcdefghijkl'.find('d') != -1" vs. python -m timeit "'d' in 'abcdefghijkl'" gives respective times of .231 usec vs. .0602 usec. Also, you don't do any short-circuiting in your loop - ideally, once you have a failed search, there is no point in searching for any of the other characters in letters. Instead of reimplementing all, try replacing your code with b = all(c in item for c in letters). –  Paul McGuire Feb 25 '12 at 12:28
    
All true. Thus - I didn't get any upvotes .I personally also like the others solutions more. However, this was the best I could do using my knowledge. –  Boris Strandjev Feb 25 '12 at 12:36
    
No problem, you certainly get points for implementing what the OP said he wanted, even though he posted a buggy example! But recent Python versions have added some very nice idioms like in, any, all, and generator expressions, so that your code will collapse down to a very clean list comprehension, as in the submission from @KarlKnechtel. These new idioms are powerful and worth learning and adopting, even I dare say, retrofitting to existing code, for their uniformity, improved performance, built-in short-circuiting, and code reduction without obfuscation. –  Paul McGuire Feb 25 '12 at 12:50
    
+1 for implementing what the OP said, not what the OP did! –  Paul McGuire Feb 25 '12 at 12:52
    
One last point - if letters is the empty string, your code will return no items; the set example and all will both return all of the items. This is an interesting edge case, and I know there was quite a bit of discussion on how this should go when any and all were added. In short, all will default to True if the generator expression is empty; any will default to False. These were chosen based on analogous constructs in logic and set theory. –  Paul McGuire Feb 25 '12 at 12:59
[word for word in wordlist if any(letter in word for letter in 'aqk')]
share|improve this answer
    
I think you want all, not any. –  Paul McGuire Feb 25 '12 at 12:22
    
(I see now that you and @Ioan implemented the OP's example code, which has the same bug - the description however says to "search the list for every single letter in input.") –  Paul McGuire Feb 25 '12 at 12:43

Using sets and the in syntax to check.

wordlist = ['mississippi','miss','lake','que']

letters = set('aqk')

for word in wordlist:
   if word in letters:
       print word
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