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This seems like something Python would have a shortcut for. I want to append an item to a list N times, effectively doing this:

l = []
x = 0
for i in range(100):
    l.append(x)

It would seem to me that there should be an "optimized" method for that, something like:

l.append_multiple(x, 100)

Is there?

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2  
Ended up going with l.extend([x] * 100) since it fit my situation best. Amber gets the answer credit for being the most comprehensive. Thanks! –  Toji Jan 11 '11 at 5:27
4  
Make sure you understand Python's reference semantics before using this for anything non-trivial. The x's appended to l are all the same x, so mutating one of them affects them all (all one of them, referred to 100 times). –  Karl Knechtel Jan 11 '11 at 9:35
    
For clarification: I am using it for integers, so my usage is safe. –  Toji Jan 11 '11 at 14:36

4 Answers 4

up vote 17 down vote accepted

For immutable data types:

l = [0] * 100
# [0, 0, 0, 0, 0, ...]

l = ['foo'] * 100
# ['foo', 'foo', 'foo', 'foo', ...]

For values that are stored by reference and you may wish to modify later (like sub-lists, or dicts):

l = [{} for x in range(100)]

(The reason why the first method is only a good idea for constant values, like ints or strings, is because only a shallow copy is does when using the <list>*<number> syntax, and thus if you did something like [{}]*100, you'd end up with 100 references to the same dictionary - so changing one of them would change them all. Since ints and strings are immutable, this isn't a problem for them.)

If you want to add to an existing list, you can use the extend() method of that list (in conjunction with the generation of a list of things to add via the above techniques):

a = [1,2,3]
b = [4,5,6]
a.extend(b)
# a is now [1,2,3,4,5,6]
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Use extend to add a list comprehension to the end.

l.extend([x for i in range(100)])

See the Python docs for more information.

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You could do this with a list comprehension

l = [x for i in range(10)];
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Itertools repeat combined with list extend.

from itertools import repeat
l = []
l.extend(repeat(x, 100))
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