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This is probably a simple question that I am just missing but I have two lists containing strings and I want to "bounce" one, element by element, against the other returning the index of the matches. I expect there to be multiple matches and want all of the indices. I know that list.index() gets the first and you can easily get the last. For example:

list1=['AS144','401M','31TP01']

list2=['HDE342','114','M9553','AS144','AS144','401M']

Then I would iterate through list1 comparing to list2 and output:
[0,0,0,1,1,0] , [3,4] or etc for the first iteration
[0,0,0,0,0,1] , [6] for second
and [0,0,0,0,0,0] or [] for third

EDIT: Sorry for any confusion. I would like to get the results in a way such that I can then use them like this- I have a third list lets call list3 and I would like to get the values from that list in the indices that are outputed. ie list3[previousindexoutput]=list of cooresponding values

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7 Answers

up vote 0 down vote accepted
[([int(item1 == item2) for item2 in list2], [n for n, item2 in enumerate(list2) if item1 == item2]) for item1 in list1]
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I know it has been ages, but I wonder why you did not care to even post a sentence about the solution. It would have helped me greatly! –  teutara Apr 23 '13 at 8:19
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Personally I'd start with:

matches = [item for item in list1 if item in list2]

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This is very good and I feel like it could be easily modified to give index values instead of list of the values that match. –  Kosig Feb 8 '11 at 20:20
    
@Kosig: Well, of course, that was the point; if you want the indexes of matches, you do stuff like indices = [list1.index(i) for i in list2] or vice versa. –  porgarmingduod Feb 8 '11 at 20:35
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I'd cache list2 in a set first, because otherwise, you're getting O(n*n) performance. –  recursive Feb 8 '11 at 22:49
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This does not answer the question. See my comment below.

As a start:

list(i[0] == i[1] for i in zip(list1, list2))
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This returns [False, False, False] for me. –  gary Feb 8 '11 at 20:00
    
Oh, sorry. I misunderstood the question. My code returns a list with True or False if the items at the same index of the two lists are the same. E.g. for list1 = [1, 2, 3] and list2 = [1, 2, 4] it returns [True, True, False]. Vote my answer down if you like :-) –  Dennis Benzinger Feb 8 '11 at 20:05
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I'm not sure how you want these packaged up, but this does the work:

def matches(lst, value):
    return [l == value for l in lst]

all_matches = [matches(list2, v) for l in list1]
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This should do what you want and it can be easily turned into a generator:

>>> [[i for i in range(len(list2)) if item1 == list2[i]] for item1 in list1]
[[3, 4], [5], []]

Here is a version with a slightly different output format:

>>> [(i, j) for i in range(len(list1)) for j in range(len(list2)) if list1[i] == list2[j]]
[(0, 3), (0, 4), (1, 5)]
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This will give a list of lists with True/False values instead of 1/0:

matches = [ [ list1[i] == list2[j] for j in range(0, len(list2)) ] for i in range(0, len(list1)) ]

Edit: If you're using 2.5 or later, this should give 1's & 0's:

matches = [ [ 1 if list1[i] == list2[j] else 0 for j in range(0, len(list2)) ] for i in range(0, len(list1)) ]
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Yes. The second is exactly what I was looking for. However now I have those indices, how do I get their cooresponding values from another list? –  Kosig Feb 8 '11 at 20:31
    
@Kosig: I'm not clear on what else you want. What do you mean by "how do I get their cooresponding (sic) values from another list?" Is there a different list that you've not mentioned in the question? Or do you want to access the original values in list1/list2? Are you trying to use the matches list for that? –  GreenMatt Feb 8 '11 at 23:29
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def findInstances(list1, list2):
    """For each item in list1,
    return a list of offsets to its occurences in list2
    """

    for i in list1:
        yield [pos for pos,j in enumerate(list2) if i==j]

list1 = ['AS144','401M','31TP01']
list2 = ['HDE342','114','M9553','AS144','AS144','401M']

res = list(findInstances(list1, list2))

results in

[[3, 4], [5], []]
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