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I'm really new to programming, so I apologize if this is a really simple question, but i've been trying to print the first column in a matrix without the use of numpy, however it prints like so:

matrix = \
[[0, 1],
 [3, 7],
 [9, 4],
 [10, 3]]

print matrix[0:3][0]
[0, 1] 

I've also tried:

print matrix[:][0]
[0, 1]

print matrix[:3]
[[0, 1], [3, 7], [9, 4]]

print matrix[:3][0]
[[0, 1], [3, 7], [9, 4]]

The answer I'm trying to achieve is:

print matrix[code]
0, 3, 9, 10

or similar.

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I'm unsure why you thought matrix[:3] should print the result you gave - the slicing syntax is slicable[start:stop:step], (defaulting to 0, len(slicable) and 1 respectively if not given), so [:3] means, starting at 0, stopping at 3. –  Lattyware Apr 10 '13 at 23:02
    
Ah, too true. Thanks for the correction! –  Chucky Chan Apr 14 '13 at 0:07

2 Answers 2

up vote 3 down vote accepted

What you have is a list of lists - so there is no concept of a column there. There are two ways to do this, one is (as Pavel Anossov's answer shows) is to use a list comprehension.

One is to use zip() which can be used to transpose an iterable:

>>> list(zip(*matrix))
[(0, 3, 9, 10), (1, 7, 4, 3)]

I've made it a list here to make it easier to show the output. Note in 2.x, zip() gives a list rather than an iterator (although a lazy version is available as itertools.izip()).

Generally, I would use zip() if you plan on working with more than one column, and the list comprehension if you only need one.

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This is impossible with slicing without numpy. You can use a list comprehension:

print [row[0] for row in matrix]
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