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In Python, the only way I can find to concatenate two lists is list.extend, which modifies the first list. Is there any concatenation function that returns its result without modifying its arguments?

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marked as duplicate by Community May 11 at 17:15

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8 Answers 8

up vote 371 down vote accepted

Yes: list1+list2. This gives a new list that is the concatenation of list1 and list2.

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Well, that explains it. I was looking for a function name, not an operator (Yes, I know that operators are implemented by hidden functions.) –  Ryan Thompson Dec 3 '10 at 19:07
Actually you can do this by using the a non hidden function: import operator, operator.add(list1, list2) –  e-satis Apr 13 '11 at 12:28
@NPE What if I want to concatenate an arbitrary number of list? How can I define the function? Thanks. –  twlkyao Feb 18 '14 at 14:46
@twlkyao: Why not post a separate question? –  NPE Feb 18 '14 at 14:49
reduce(operator.add, [[1,2], [3,4], [5,6]]) == [1,2,3,4,5,6]. Or you can use itertools.chain instead of operator.add –  Paul Hollingsworth Sep 26 '14 at 12:26

Depending on how you're going to use it once it's created itertools.chain might be your best bet:

>>> import itertools
>>> a = [1, 2, 3]
>>> b = [4, 5, 6]
>>> c = itertools.chain(a, b)

This creates a generator for the items in the combined list, which has the advantage that no new list needs to be created, but you can still use c as though it were the concatenation of the two lists:

>>> for i in c:
...     print i

If your lists are large and efficiency is a concern then this and other methods from the itertools module are very handy to know.

Note that this example uses up the items in c, so you'd need to reinitialise it before you can reuse it. Of course you can just use list(c) to create the full list, but that will create a new list in memory.

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just say that itertools.chain returns a generator... –  Ant Dec 3 '10 at 12:47

you could always create a new list which is a result of adding two lists.

>>> k = [1,2,3] + [4,7,9]
>>> k
[1, 2, 3, 4, 7, 9]

Lists are mutable sequences so I guess it makes sense to modify the original lists by extend or append.

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It only makes sense to modify the original lists if you don't need the unmodified lists any more, so in this case it wouldn't make sense. –  Scott Griffiths Dec 3 '10 at 10:55

You can also use sum, if you give it a start argument:

>>> list1, list2, list3 = [1,2,3], ['a','b','c'], [7,8,9]
>>> all_lists = sum([list1, list2, list3], [])
>>> all_lists
[1, 2, 3, 'a', 'b', 'c', 7, 8, 9]

This works in general for anything that has the + operator:

>>> sum([(1,2), (1,), ()], ())
(1, 2, 1)

>>> sum([Counter('123'), Counter('345'), Counter('567')], Counter())
Counter({'3': 2, '5': 2, '1': 1, '2': 1, '4': 1, '7': 1, '6': 1})

>>> sum([True, True, False], False)

With the notable exception of strings:

>>> sum(['123', '345', '567'], '')
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
TypeError: sum() can't sum strings [use ''.join(seq) instead]
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How about list1 + list2?

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one minute is the difference between 300 votes –  Vall3y Apr 28 at 8:23

Just to let you know:

When you write list1 + list2, you are calling the __add__ method of list1, which returns a new list. in this way you can also deal with myobject + list1 by adding the __add__ method to your personal class.

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And if you have more than two lists to concatenate:

import operator
list1, list2, list3 = [1,2,3], ['a','b','c'], [7,8,9]
reduce(operator.add, [list1, list2, list3])

# or with an existing list
all_lists = [list1, list2, list3]
reduce(operator.add, all_lists)

It doesn't actually save you any time (intermediate lists are still created) but nice if you have a variable number of lists to flatten, e.g., *args.

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how about list.extend()? So it could be list1.extend(list2)

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That modifies list1. –  Ryan Thompson May 2 '13 at 23:58
This method is mentioned in the question and the OP specified that he did not want to modify the original list (which this method does). –  dreamlax May 7 '13 at 5:49

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