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It looks like this question has been asked dozens of times, but none of the answers have helped me out, so I'm afraid I'm asking it again (please don't hate me!). I have two lists of lists:

amm = [['0005FC66DF', '4403'", ',\n'], [" ['0001C52E02', '4406'", ',\n'],etc] 

and

data = [['07/11/2012', '09:53:36', 'Thing', '#0F', '0006E7895B', 'T', 'U\n'], ['05/13/2012', '09:54:27', 'Thing', '#0F', '0006E3DADA', 'T', 'U\n'], etc]. 

I want to see if the 5th element in a list in data is the same as the first element in a list in amm, and if so, I want to write the list from data to a new list of lists, amv. I have tried EVERYTHING. I started with

for i in data:
  if data[i][4] in amm:
    amv[i].append(i)

which didn't write anything to amv, so I tried

amv=[item for item in data if item[4] in[items for items in amm]]

which had the same problem, so I tried

   for i in data:
    for j in amm:
        if i[4] == j[0]:
             amv.append(j)

and a million (probably slightly more accurate) variations on these themes. This should be such a simple thing to do but it's just not working for me. Any help would be very, very much appreciated. Thanks in advance!

EDIT Sorry this wasn't very clear. What I'm trying to do is write a new list (amv) that contains all the lists in data that have their fifth element appear in amm. All of the scripts I've shown haven't added anything to the new list, amv. amv has always stayed empty, and I can't figure out why..

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Are these elements you're looking for ("0005FC66DF") unique across both data and amm? –  Tim Pietzcker Jun 28 '12 at 15:21
    
Your question neither explains what exactly you are trying to do, nor how your approaches fail. What's wrong with the e.g. the last code snippet (except that it is very inefficient)? –  Sven Marnach Jun 28 '12 at 15:21
    
They'll be repeated somewhere between 1 and few hundred times in data, but they should be unique in amm. About half of the ones in data will be in amm –  Snaaa Jun 28 '12 at 15:22
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1 Answer

up vote 1 down vote accepted
s = set(x[0] for x in amm)
amv = [x for x in data if x[4] in s]
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Well, probably. But since the OP says that the ids will be unique in amm, this should give exactly the same result as the last code snippet in the original post, which the OP claims does not work. –  Sven Marnach Jun 28 '12 at 15:30
    
That's still coming up with amv being blank :/ –  Snaaa Jun 28 '12 at 15:30
    
@Snaaa: If amv ends up empty, then simply none of the items in column 4 of data occurs in column 0 of amm. –  Sven Marnach Jun 28 '12 at 15:33
    
I've tried to convince myself that that's true, but printing the lists shows there are quite a few matches. I'll triple-check for typos –  Snaaa Jun 28 '12 at 15:35
    
malevisits=[] s = set(x[0] for x in allmales) malevisits.append([x for x in data if x[4] in s]) makes malevisits=[[]], if that helps.. –  Snaaa Jun 28 '12 at 15:38
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