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I have 3 lists:

neighbour = []
scanned = [[],[]]   
localisation = [[],[],[]] 

I want to test each item in the 0th sublist (column) of the scanned list to see if it is equivalent to any of the items in the neighbour list.

If it is equivalent I want to append both sublists of scanned to the 1st and 2nd sublists of localisation.

I believe this test will check if an item in the 0th sublist in scanned matches any items in the neighbour sublist:

for i in scanned[0]:
    for j in neighbour:
        if i == j:

but I am not sure how to append both sublists of scanned to the 1st and 2nd sublists of localisation.

Any ideas?

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1  
look at python sets. –  Paulo Scardine Apr 3 '13 at 19:55
1  
Can you give an example output? –  user2032433 Apr 3 '13 at 20:03

2 Answers 2

Well, I'd probably structure your lists a different way, but I'll get to that in a minute.

To do what you want to do, you need to iterate in a more old-school way:

neighbour = ['a', 'b', 'c']
scanned = [['a', 'b'],[1, 2]]   
localisation = [[],[],[]] 

for i in range(len(scanned[0])):
    if scanned[0][i] in neighbour:
        localisation[1].append(scanned[0][i])
        localisation[2].append(scanned[1][i])
print localisation
>>> [[], ['a', 'b'], [1, 2]]

This is assuming I'm (finally) understanding what you want correctly. However, it looks like scanned is actually two lists where each element in one list is related somehow to the same-indexed element in the other. Your life would probably be made a fair bit easier by using a dict instead:

# The keys from the dict are from scanned[0]; the values are from scanned[1]
scanned = {'a':1, 'b':2}

Now everything that has to do with these lists is way easier (including whatever else you have to do with them), because you don't have to keep track of your indices separately:

neighbour = ['a', 'b', 'c']
scanned = {'a':1, 'b':2}
localisation = [[], [], []] 

for s in scanned:
    if s in neighbour:
        localisation[1].append(s)
        localisation[2].append(scanned[s])

print localisation
>>> [[], ['a', 'b'], [1, 2]]
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localisation[1].append(scanned[1][i]) I think. Correct me if I got it wrong, not sure if I understood the question. –  user2032433 Apr 3 '13 at 20:01
    
@MarkusMeskanen I think you're right; I'm not positive I know what exactly he wants either. Definitely a typo on my part though. –  Henry Keiter Apr 3 '13 at 20:06
    
Hi I want the 0th sublist of localisation to be declared elsewhere but the rest is exactly what I meant, sorry my post was a bit awkwardly worded - I'm just starting out with python so I'm unsure of all the correct terms. –  mark mcmurray Apr 3 '13 at 20:24
    
@markmcmurray I've rewritten my answer to match up with my current understanding of your question: can you confirm for me that this is correct? –  Henry Keiter Apr 3 '13 at 20:43
    
I think it's the extend one as opposed to the append. If scanned[0][i] appears in neighbour then add scanned[0][i] to localisation[1][k] and add scanned[1][i] to localisation[2][k] –  mark mcmurray Apr 3 '13 at 20:57

Is your problem related to NLP Stemming? If so, take a look at Python NLTK.

To generate a list of matching elements for each sublist in scanned:

for l in scanned:
    localisation.append(set(l).intersection(neighbour))

Your definition is a bit confuse, I'm not sure if I understood what you want. Supposing len(scanned[0]) == len(scanned[1]):

matches = set(neighbour).intersection(scanned[0])
for match in matches:
    i = scanned.index(match)
    localisation.append((match, scanned[0][i], scanned[1][i]))

In this case a dict is better than a list of lists.

neighbour = ['Good morning', 'Good afternoon']
scanned = {'Good morning': 'Buenos dias', 'Good night': 'Buenas noches'}
localisation = []

matches = set(neighbour).intersection(scanned.keys())
for match in matches:
    localisation.append((match, scanned[match]))

Please provide a sample input and expected output.

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