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list.append() is the obvious choice for adding to the end of a list. Here's a reasonable explanation for the missing list.prepend(). Assuming my list is short and performance concerns are negligible, is

list.insert(0, x)

or

list[0:0] = [x]

idiomatic?

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up vote 244 down vote accepted

The s.insert(0, x) form is the most common.

Whenever you see it though, it may be time to consider using a collections.deque instead of a list.

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If you can go the functional way, the following is pretty clear

[x] + l

where l is your list. Of course you haven't inserted x into l, rather you have created a new list with x preprended to it.

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10  
As you observe, that isn't prepending to a list. It's creating a new list. Thus it doesn't satisfy the question at all. – Chris Morgan Jun 5 '12 at 6:43
26  
While this doesn't answer the description in the title, I think that it's an ideomatic solution that solves the problem. list = [x] + list works pretty well for me. – Sethish Oct 4 '12 at 15:22
17  
@Sethish: The problem is that this only works if you don't have any other references to the list somewhere (because they would still point to the old list). – Florian Brucker Mar 27 '13 at 14:51
28  
@FlorianBrucker "If you can go the functional way" refers to a style of programming, where all objects are immutable. In such a style, any other "references to the list" are SUPPOSED to point to the old list. That is, they are not allowed to see a change ("immutable"). If that seems nonsensical, then google "functional programming" (if you care). – ToolmakerSteve Dec 13 '13 at 2:26
    
Creating a new list is less efficient than inserting at its beginning. %timeit c = range(10**7); c.insert(0, 'a') 1 loops, best of 3: 234 ms per loop and %timeit c = range(10**7); b = ['a'] + c 10 loops, best of 3: 265 ms per loop. Initialization is included because insert modifies a, subtract %timeit c = range(10**7) 10 loops, best of 3: 163 ms per loop. – Ioannis Filippidis Apr 22 '15 at 22:41

If someone finds this question like me, here are my performance tests of proposed methods:

Python 2.7.8

In [1]: %timeit ([1]*1000000).insert(0, 0)                                                                                                                                  
100 loops, best of 3: 4.62 ms per loop

In [2]: %timeit ([1]*1000000)[0:0] = [0]                                                                                                                                    
100 loops, best of 3: 4.55 ms per loop

In [3]: %timeit [0] + [1]*1000000                                                                                                                                           
100 loops, best of 3: 8.04 ms per loop

As you can see, insert and slice assignment are as almost twice as fast than explicit adding and are very close in results. As Raymond Hettinger noted insert is more common option and I, personally prefer this way to prepend to list.

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The first one is certainly a lot clearer and expresses the intent much better: you only want to insert a single element, not a whole list.

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What's the idiomatic syntax for prepending to a short python list?

The list.insert can be used this way.

list.insert(0, x)

But this is inefficient, because in Python, a list is an array of pointers, and Python must now take every pointer in the list and move it down one to insert the pointer to your object in the first slot, so this is really only efficient for rather short lists, as you ask.

As Raymond said, consider a collections.deque, which has many of the methods of a list, but also has an appendleft method (as well as popleft). The deque is a double-ended queue - no matter the length, it always takes the same amount of time to preprend something. In big O notation, O(1) versus the O(n) time for lists. Here's the usage:

>>> import collections
>>> d = collections.deque('1234')
>>> d
deque(['1', '2', '3', '4'])
>>> d.appendleft('0')
>>> d
deque(['0', '1', '2', '3', '4'])
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Can you please explain the inefficiency mentioned above? If you are always inserting at the 0th position in a linked list, then it should always be a constant time operation because you are taking the existing HEAD and assigning it to your the NEXT of your new element and point HEAD to your new element. And None of the other pointers are touched. Isn't that true in this case? – Nabheet Oct 12 '15 at 22:56
1  
@Nabheet A Python list is an array of pointers, not a linked list, while a deque is a doubly-linked list. I have updated my answer to make this more explicit. – Aaron Hall Oct 12 '15 at 23:23

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