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Let's say I have a file like this (pretend it were a matrix):

abcde
fghik
lmnop

I want to put this in a 2d list but with only columns up to index 3:

 #  0   1   2   3
 [['a','b','c','d'],
  ['f','g','h','i'],
  ['l','m','n','o']]

How does one do this using a list comprehension? I know I could loop, but I'm looking for a cleaner way.

f = open('file.txt')
lines = f.readlines()
matrix = [[a for a in b] for b in lines] # this gets all columns, up to 4

I could also use enumerate/if in the inner list comprehension to check for column. Is that the cleanest?

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3 Answers 3

up vote 7 down vote accepted

If I understand the question correctly, this should work (but perhaps I'm over simplifying). Note the [:4] in the inner comprehension:

f = open('file.txt')
lines = f.readlines()
matrix = [[a for a in b[:4]] for b in lines] # this gets all columns, up to 4
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Indeed it does. Forgot about slicing! –  ash Jan 3 '11 at 23:30

"but with only columns up to 3"? What is this supposed to mean? Based on your example, do you mean "only the first four columns"? If that's the case, simple:

with f as open('file.txt'):
    matrix = [list(line[:4]) for line in f]

Calling readlines is unnecessary (worse, harmful as it consumes much memory for large files), you can iterate the lines just file.

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Sorry, the columns were zero-indexed. Thanks for the tip on readlines, I will keep it in mind (though for my problem it no issue). –  ash Jan 3 '11 at 23:32
    
@Jasie: It may not be an issue now, but you never know how things could change in the future ;) Also, the code is shorter and more readable this way - there's very very rarely a reason to use readlines (and even then, list(file) does the same thing). –  delnan Jan 3 '11 at 23:35
    
I see. Is there an efficiency difference between list(file) and readlines()? –  ash Jan 4 '11 at 2:02
    
@Jasie: I wouldn't know. I never measured it, and I don't care to until you show me how my application is unresponsive because of this ;) Both should use simiar buffering etc, so differences should be negible. –  delnan Jan 4 '11 at 7:01

Slice each line up to the 3th column: matrix = [[a for a in b][:3] for b in lines]

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better still: matrix = [b[:3] for b in lines] –  albertov Jan 3 '11 at 23:22
    
The will give you a list of strings though, not a list of lists. –  sepp2k Jan 3 '11 at 23:24
    
You can just do list(b[:3]) (or at least move the [:3] inside the listcomp, to b so you don't replicate the rest of b). –  delnan Jan 3 '11 at 23:28
    
ok: separator=' ' # or '\t' or....; matrix = [b.split(separator)[:3] for b in lines –  albertov Jan 3 '11 at 23:28
    
Also a good solution, thanks. –  ash Jan 3 '11 at 23:31

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