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Say I have a list that looks like this:

['item1', 'item2', 'item3', 'item4', 'item5', 'item6', 'item7', 'item8', 'item9', 'item10']

Using Python, how would I grab pairs from it, where each item is included in a pair with both the item before and after it?

['item1', 'item2']
['item2', 'item3']
['item3', 'item4']
['item4', 'item5']
['item5', 'item6']
['item6', 'item7']
['item7', 'item8']
['item8', 'item9']
['item9', 'item10']

Seems like something i could hack together, but I'm wondering if someone has an elegant solution they've used before?

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possible duplicate of Python: Looping through all but the last item of a list –  tzot Jun 14 '10 at 6:47
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4 Answers

up vote 11 down vote accepted

A quick and simple way of doing it would be something like:

a = ['item1', 'item2', 'item3', 'item4', 'item5', 'item6', 'item7', 'item8', 'item9', 'item10']

print zip(a, a[1:])

Which will produce the following:

[('item1', 'item2'), ('item2', 'item3'), ('item3', 'item4'), ('item4', 'item5'), ('item5', 'item6'), ('item6', 'item7'), ('item7', 'item8'), ('item8', 'item9'), ('item9', 'item10')]
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Even more compact than the list comprehension. I've never even seen zip before. –  tommyk May 13 '10 at 20:10
    
Very nice. I didn't realize that zip would effectively reduce down the list like that. –  Hank Gay May 13 '10 at 20:29
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Check out the pairwise recipe in the itertools documentation.

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This should do the trick:

[(foo[i], foo[i+1]) for i in xrange(len(foo) - 1)]
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Indeed it does, bravo! I knew there was something I could do with a list comprehension, but just wasn't sure how to approach it. Thanks! –  tommyk May 13 '10 at 20:06
    
this produces tuples not lists as the OP asked for –  joaquin May 13 '10 at 20:13
    
The OP actually only asked for pairs, but if you would prefer a list over a tuple, you just change to [foo[i], foo[i+1]] in the comprehension. –  Hank Gay May 13 '10 at 20:25
    
what about foo[i:i+1]? I'd think that may be faster. –  phkahler May 14 '10 at 1:25
1  
That doesn't actually work because [a:b] indexes from a to b-1, which only results in one number. This does work: [foo[i:i+2] for x in xrange(len(foo) - 1)] –  Jonathan Sternberg May 14 '10 at 3:11
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this is also do the trick:

list_of_tupples = map(None,the_list[::2], the_list[1::2])
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