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In Matlab, slice can be a vector:

a = {'a','b','c','d','e','f','g'}; % cell array
b = a([1:3,5,7]);

How can I do the same thing in python?

a = ['a','b','c','d','e','f','g']
b = [a[i] for i in [0,1,2,4,6]]

but when 1:3 becomes 1:100, this will not work. Using range(2),4,6 returns ([0,1,2],4,6), not (0,1,2,4,6). Is there a fast and "pythonic" way?

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3 Answers 3

up vote 10 down vote accepted

If you want to do things that are similar to Matlab in Python, NumPy should always be your first guess. In this case, you need numpy.r_:

from numpy import array, r_
a = array(['a', 'b', 'c', 'd', 'e', 'f', 'g', 'h'])
print a[r_[1:3, 5, 7]]

['b' 'c' 'f' 'h']
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++, nice one, had no idea about r_ –  Eli Bendersky Apr 29 '11 at 4:27

Try

[a[i] for i in range(2) + [4, 6]]

If you use NumPy, then you have some more options:

import numpy as N
a = N.array(['a', 'b', 'c', 'd', 'e', 'f', 'g'])
b = a[range(2) + [4, 6]]
c = a.take(range(2) + [4, 6])
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1  
This will copy the list though. Wasteful with larger ranges. Use itertools.chain to avoid that. –  delnan Apr 28 '11 at 13:14

One way is using itertools.chain:

>>> b = [a[i] for i in itertools.chain(range(2), [5, 6])]
>>> b
['b', 'c', 'f', 'g']

Notes:

  1. Ranges adapted from Matlab (1-based indexing) to Python (0-based indexing)
  2. You may gain by changing range to xrange if you have Python 2.x, to avoid creating the whole range list on the fly. I don't think it will make a big performance difference, but it's nice to know about.
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