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I want to get the union of 2 nested lists plus an index to the common values.

I have two lists like A = [[1,2,3],[4,5,6],[7,8,9]] and B = [[1,2,3,4],[3,3,5,7]] but the length of each list is about 100 000. To A belongs an index vector with len(A): I = [2,3,4]

What I want is to find all sublists in B where the first 3 elements are equal to a sublist in A. In this example I want to get B[0] returned ([1,2,3,4]) because its first three elements are equal to A[0]. In addition, I also want the index to A[0] in this example, that is I[0].

I tried different things, but nothing worked so far :(

First I tried this:

Common = []

for i in range(len(B)):

   if B[i][:3] in A:

      id = [I[x] for x,y in enumerate(A) if y == B[i][:3]][0]
         ctdCommon.append([int(id)] + B[i])   

But that takes ages, or never finishes

Then I transformed A and B into sets and took the union from both, which was very quick, but then I don't know how to get the corresponding indices

Does anyone have an idea?

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1 Answer 1

up vote 1 down vote accepted

Create an auxiliary dict (work is O(len(A)) -- assuming the first three items of a sublist in A uniquely identify it (otherwise you need a dict of lists):

aud = dict((tuple(a[:3]), i) for i, a in enumerate(A))

Use said dict to loop once on B (work is O(len(B))) to get B sublists and A indices:

result = [(b, aud[tuple(b[:3])]) for b in B if tuple(b[:3]) in aud]
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Well done for working out enough of what's being asked to produce an answer. My brain hurts trying to understand what it is he wants. –  MattH Mar 18 '10 at 15:18
    
That worked and superquick! Thank you so much! –  sbas Mar 18 '10 at 15:20

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