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I need to create a list with n indices of 1 followed by a 10 all in a single line of code (it has to be submitted online on a single line). I tried: (n*[1]).append(10) but that returns a None type. Is this doable? Thanks.

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5 Answers 5

up vote 6 down vote accepted

Python methods that cause side-effects (read: mutate the object) often evaluate to None - which is to reinforce the fact that they exist to cause such side-effects (read: object mutations). list.append is one such example of this pattern (although another good example is list.sort vs sorted).

Compare the usage in the question with:

l = n * [1]
l.append(10)   # returns None ..
print l        # .. but list was mutated
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2  
+1 for the explanation of why OP got None. We need more of this on SO, instead of giving other solutions –  Haidro Sep 20 '13 at 23:19
    
@Haidro Thanks! I think it's important to find/explore a combination between the two, but didn't want to repeat the other answers :D –  user2246674 Sep 20 '13 at 23:20
    
Sometimes I come to answer, and end up learning something. Thanks! –  Alex Baldwin Sep 20 '13 at 23:46

Try the following:

n*[1] + [10]
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Ahhhh... I way over complicated that. Thank you. –  Kevin Chan Sep 20 '13 at 22:54

It is as simple as:

[1] * n + [10]
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alternatively, use a list comprehension

n=10
[1 if i < n else 10 for i in range(n+1)]

#or a map (although depending on python version it may return a generator)
map(lambda x:1 if x < n else 10,range(n+1))
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I think this will give a result that has one too few 1s in it. You'd want if i < n and range(n+1), I think. –  Blckknght Sep 20 '13 at 23:22
    
ahh your right i didnt read the question close enough –  Joran Beasley Sep 20 '13 at 23:24

What about:

[1 for _ in range(n)] + [10]

Reason I didn't use the n * [1] + [10] method is not only because it has been submitted, but also because in the case where the object you want to spread across the list is mutable; so for example you want to create a list of n lists. If you use the n * [1] + [10] method, each list in the list will refer to the same list. So when you operate on just one of the lists, all the other lists are affected as well.

Example

>>> list_of_lists = [[]] * 10
>>> list_of_lists[0].append(9)
>>> print list_of_lists

Output:

[[9], [9], [9], [9], [9], [9], [9], [9], [9], [9]]

See this question for why this happens

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This is a very good point about the * list operator. –  user2246674 Sep 21 '13 at 17:48

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