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I'm basically trying to extract some data from multidimension list into a new list. While this code does what I want, but I'm wondering if there are better ways to get this result without looping through original list?

aa = [
    ["a", "aa", "aaa"],
    ["b", "bb", "bbb"],
    ["c", "cc", "ccc"],
]
b = []
for a in aa:
    b.append(a[1])
b
>> Result: ['aaa', 'bbb', 'ccc']
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3  
Your current code should actually return ['aa', 'bb', 'cc']. Is this intentional, or did you mean to have a[2] instead of a[1]. –  Haidro Mar 2 '13 at 5:04
    
Ah yes, I think I copied the wrong part of the result –  Panupat Mar 2 '13 at 5:47

4 Answers 4

up vote 3 down vote accepted
>>> aa = [["a", "aa", "aaa"],
          ["b", "bb", "bbb"],
          ["c", "cc", "ccc"]]
>>> b = zip(*aa)[2]
>>> print b
['aaa', 'bbb', 'ccc']

I'm pretty sure zip still iterates through the list, but this is a much more succint way of getting the desired result.

Note that in Python 3, zip returns an iterator, so you need to convert to a list first

list(zip(*aa))[2]

or use a list comprehension

[i[2] for i in aa]
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Here's a way with list comprehensions:

>>> aa = [
["a", "aa", "aaa"],
["b", "bb", "bbb"],
["c", "cc", "ccc"],
]
>>> b = [i[2] for i in aa]
>>> print b
['aaa', 'bbb', 'ccc']
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You could also do it with Numpy:

>>> >>> a = numpy.array([
...     ["a", "aa", "aaa"],
...     ["b", "bb", "bbb"],
...     ["c", "cc", "ccc"],
... ])
>>> a[:,2]
    array(['aaa', 'bbb', 'ccc'], 
      dtype='|S3')
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you could use list comprehension:

b = [aa[i][2] for i in range(len(aa))] 

or faster and shorter as blender has suggested

b = [a[2] for a in aa]
share|improve this answer
    
Why not [a[2] for a in aa]? –  Blender Mar 2 '13 at 4:59

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