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What is the most efficient way to create list of the same number with n elements?

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marked as duplicate by Wooble, Jaime, tcaswell, Jack Humphries, p.s.w.g Mar 31 '13 at 14:51

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Are you really asking for the "most efficient way", or would any correct way suffice? –  Robᵩ Mar 31 '13 at 0:14

1 Answer 1

up vote 7 down vote accepted
number = 1
elements = 1000

thelist = [number] * elements

>>> [1] * 10
[1, 1, 1, 1, 1, 1, 1, 1, 1, 1]

NB: Don't try to duplicate mutable objects (notably lists of lists) like that, or this will happen:

In [23]: a = [[0]] * 10

In [24]: a
Out[24]: [[0], [0], [0], [0], [0], [0], [0], [0], [0], [0]]

In [25]: a[0][0] = 1

In [26]: a
Out[26]: [[1], [1], [1], [1], [1], [1], [1], [1], [1], [1]]

If you are using numpy, for multidimensional lists numpy.repeat is your best bet. It can repeat arrays of all shapes over separate axes.

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2  
The question is tagged numpy too, so maybe mention numpy.repeat(1, 10)? (Although it'll be slower than multiplying a list until n is really big.) –  DSM Mar 30 '13 at 23:05
2  
Note that this may have unexpected results (depending on how much you know of how Python variables work) with mutable types - it produces a list of references to the same object. –  Lattyware Mar 30 '13 at 23:08
    
To honor the numpy tag, a = np.empty((elements,), dtype=np.int); a.fill(number) is much faster than [number] * elements for higher values of elements. But the return is not a real list. –  Jaime Mar 31 '13 at 2:46
1  
@Jaime: Also note that empty + fill is faster than repeat –  Warren Weckesser Mar 31 '13 at 2:55

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