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Possible Duplicate:
Remove items from a list while iterating in Python

I have a fairly embedded list: specifically, it is a list of lists of tuples. To simplify things, the entire list is a list of sentences. Within each sentence, each word is made into a tuple, containing information about that word. The last tuple in each sentence contains information about the speaker, but can be removed, if need be.

I'd like to search through these tuples, and, if a certain value is found, then remove the entire sentence.

Here is a sample list:

sentenceList = [[('the', 'det', '1|2|DET'), ('duck', 'n', '2|3|SUBJ'), ('xxx', 'unk', '3|0|ROOT'), ('*MOT', 373)],
                [('yyy', 'unk', '1|0|ROOT'), ('*CHI', 375)], 
                [('what', 'pro', '1|2|OBJ'), ('happen-PAST', 'v', '2|0|ROOT'), ('to', 'prep', '3|2|JCT'), ('the', 'det', '4|5|DET'), ('duck', 'n', '5|3|POBJ'), ('*MOT', 378)], 
                [('boom', 'int', '1|0|ROOT'), ('*CHI', 379)]]

If a sentence contains either 'xxx' or 'yyy', I'd like to remove the entire sentence. The code I tried was:

wordList = ['xxx','yyy']
for sentence in sentenceList:
    for wordTuple in sentence:
        for entry in wordTuple:
            if entry in wordList:
                del sentence

This should delete the entire sentence, i.e:

[('the', 'det', '1|2|DET'), ('duck', 'n', '2|3|SUBJ'), ('xxx', 'unk', '3|0|ROOT'), ('*MOT', 373)], [('yyy', 'unk', '1|0|ROOT'), ('*CHI', 375)]

However, this code doesn't seem to be accomplishing the task. Any idea how to fix it? Thanks!

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marked as duplicate by casperOne Aug 2 '12 at 20:25

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
I'm guessing the problem is that you're deleting a member of a list (sentence) from that list (sentenceList) while you're iterating over the list. This answer should help you with ways to deal with that problem. – Sam Mussmann Aug 1 '12 at 19:35
    
Thanks @SamMussmann! I came across that, but wasn't sure how to adapt it to my specific scenario. – Adam_G Aug 1 '12 at 19:42
    
I've added an answer with an adaptation of that answer to your problem. I hope that's helpful. :-) – Sam Mussmann Aug 1 '12 at 21:56
up vote 1 down vote accepted

It's dangerous to try modifying a list while you're iterating over it with for. What you really want is a while loop:

contrived_data = [[(1, 1, 1), ('hello', 'bar')], [(222, 3, 4), ('norweigan', 'blue')], [('anthrax', 'ripple'), (42, 'life')]]

looking_for = (1, 'life')

index = 0
while index < len(contrived_data):
    for two_pull in contrived_data[index]:
        for item in looking_for:
            if item in two_pull:
                print(contrived_data.pop(index))
                index -= 1
                break # Only jumps out of the innermost loop
    index += 1

And that should more efficient for larger datasets than copying your original list.

share|improve this answer
    
How would this work for a list (or set) of words, though? Since this only checks for "1", how could I alter it to check for a bunch of values? – Adam_G Aug 1 '12 at 20:04
    
This also seems to throw "IndexError: pop index out of range." Am I doing something wrong? – Adam_G Aug 1 '12 at 20:22
    
I added another loop there, along with the appropriate break. Does the update still throw the exception? Make sure your indentation level is correct on everything. And, if it still breaks, post your updated code and I'll see what I can do. – Wayne Werner Aug 1 '12 at 21:24
    
Wouldn't you want to do the for over two_pull and then check if item is in looking_for? Your way involves iterating over two_pull for each item in looking_for. And if you make looking_for a set, then item in looking_for won't require Python to iterate through looking_for. – Sam Mussmann Aug 1 '12 at 23:04
wordList = set(('xxx','yyy'))
for sentence in sentenceList[:]:
    removed = False
    for wordTuple in sentence:
        for entry in wordTuple:
            if entry in wordList:
                sentenceList.remove(sentence)
                removed = True
                break
            # end of if
        # end for each entry
        if removed:
            break
    # end for each word tuple
# end for each sentence

Notes:

  • iterate over a (shallow) copy of the list to avoid the errors that arise from modifying the collection you're traversing
  • remove the object from the list, instead of simply removing the variable name from the local namespace
  • this isn't efficient for large datasets
share|improve this answer
    
a set would be a better datastructure for wordList. – mgilson Aug 1 '12 at 19:39
    
Thanks! This certainly does the trick. A couple of questions: (1) What does adding "[:]" to SentenceList do? (2) Any quick suggestions for how to make the code more efficient? I will be applying it to large datasets. (3) For @mgilson, how do I declare it as a set? – Adam_G Aug 1 '12 at 19:42
    
Adding [:] makes a shallow copy of the list. You can make a set like wordList = set(['xxx', 'yyy']). – Sam Mussmann Aug 1 '12 at 19:44
    
@SamMussmann: Cool! Thank you! – Adam_G Aug 1 '12 at 19:46
2  
[:] is slice syntax. Take a look at my answer for a more efficient method. And just set(mylist) will return a copy of your list turned into a set. I think it's a shallow copy though (so if you have a list inside of the original list, modifying it in one place will change it in the other too. That's kind of a lie, but it's the quickest way to explain it) – Wayne Werner Aug 1 '12 at 19:47

This answer is similar. To apply it, we need a predicate (function of one argument that returns only True or False) that determines whether the entry should stay or not.

Given that we have the target words in a set called wordList:

wordList = set(('xxx', 'yyy'))

This predicate should work:

def keep_sentence(sentence):
    for wordTuple in sentence:
        for entry in wordTuple:
            if entry in wordList:
                return False
    return True  # Only executed if we didn't return false earlier

Now that we have a predicate, we can replace the contents of sentenceList with only the sentences that keep_sentence tells us we should keep:

sentenceList[:] = [x for x in sentenceList if keep_sentence(x)]

As far as applying this to large datasets -- there's probably not going to be a much faster algorithm than this (or one of the other answers) without parallelizing your code. Why? In order to check that each sentence doesn't contain one of the target words, we have to look at each word in each sentence. You may be able to reduce the amount of time you spend on each sentence by some constant factor, but that's not going to help a huge amount.

If you're interested in this, you might want to check out the multiprocessing module, especially process pools.

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