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Suppose I have two lists of the same size in Python, the first:

[100, 200, 300, 400]

and I want the other to be:

[0, 100, 300, 600] 

which is each element in the 2nd list equals the sum of all previous elements in the first.

Is there a built-in Python function that does such an operation on a list? Or do I have to think about an algorithm to do it?

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marked as duplicate by jonrsharpe, Ashwini Chaudhary May 24 at 11:00

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I don't think such a function exists. You can write a simple function to do that –  JarWiz May 24 at 10:23
1  
Nope, no built-in for that in 2.x. –  jonrsharpe May 24 at 10:24
1  
Are you intentionally ignoring the last element of the first list? A more logical result would be [0, 100, 300, 600, 1000], or even simply [100, 300, 600, 1000]. –  user4815162342 May 24 at 10:41

1 Answer 1

If you use Python 3.2+, you can use itertools.accumulate:

>>> import itertools
>>>
>>> a_list = [100, 200, 300, 400]
>>> list(itertools.accumulate([0] + a_list[:-1]))
[0, 100, 300, 600]

UPDATE

To avoid creation of temporary list, use itertools.islice, itertools.chain:

>>> from itertools import chain, accumulate, islice
>>>
>>> a_list = [100, 200, 300, 400]
>>> list(accumulate(chain([0], islice(a_list, 0, len(a_list) - 1))))
[0, 100, 300, 600]
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1  
accumulate(chain([0], islice(a_list, 0, -1)) would avoid creation of two temporary lists, for people who care about that kind of things. BTW ignoring the last element of the list seems like a mistake in the question, for which I've asked the submitter for clarification. –  user4815162342 May 24 at 10:42
    
@user4815162342, Thank you for comment. I updated the answer according to you. BTW, itertools.islice does not accept negative index. –  falsetru May 24 at 10:46
    
Thanks for the update. The price for increased efficiency is (as is frequently the case) less readable code. But I still believe the OP didn't really intend to ignore the last element of the input list. :) –  user4815162342 May 24 at 10:48

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