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Let's assume there is a list a = [1, 3, 5, 6, 8].

I want to apply some transformation on that list and I want to avoid doing it sequentially, so something like map(someTransformationFunction, a) would normally do the trick, but what if the transformation needs to have knowledge of the index of each object?

For example let's say that each element must be multiplied by its position. So the list should be transformed to a = [0, 3, 10, 18, 32].

Is there a way to do that?

share|improve this question
    
Good question. I'm expecting an answer which passes exactly the list alone.. – Avinash Raj Feb 18 at 12:15
    
@AvinashRaj: why would that be? If you want to have the index for each value, pass in the index. That's way more efficient than trying to determine the index afterwards, and for duplicate values, even impossible. – Martijn Pieters Feb 18 at 13:20
up vote 32 down vote accepted

Use the enumerate() function to add indices:

map(function, enumerate(a))

Your function will be passed a tuple, with (index, value). In Python 2, you can specify that Python unpack the tuple for you in the function signature:

map(lambda (i, el): i * el, enumerate(a))

Note the (i, el) tuple in the lambda argument specification. You can do the same in a def statement:

def mapfunction((i, el)):
    return i * el

map(mapfunction, enumerate(a))

To make way for other function signature features such as annotations, tuple unpacking in function arguments has been removed from Python 3.

Demo:

>>> a = [1, 3, 5, 6, 8]
>>> def mapfunction((i, el)):
...     return i * el
...
>>> map(lambda (i, el): i * el, enumerate(a))
[0, 3, 10, 18, 32]
>>> map(mapfunction, enumerate(a))
[0, 3, 10, 18, 32]
share|improve this answer
1  
+1 for highlighting the trick with tuple assignment in a function definition. I have never seen that before. – kwinkunks Feb 18 at 12:34
    
So that example applies only to python2? – LetsPlayYahtzee Feb 18 at 13:16
2  
@LetsPlayYahtzee: Yes, in Python 3, use one argument (which will be a tuple); lambda i_el: i_el[0] * i_el[1]; in a def statement you can unpack that on a separate line; def mapfunction(i_el):, newline-and-indent-more, i, el = i_el, newline, match indent, return i * el. – Martijn Pieters Feb 18 at 13:18

You can use enumerate():

a = [1, 3, 5, 6, 8]

answer = map(lambda (idx, value): idx*value, enumerate(a))
print(answer)

Output

[0, 3, 10, 18, 32]
share|improve this answer

To extend Martijn Pieters' excellent answer, you could also use list comprehensions in combination with enumerate:

>>> a = [1, 3, 5, 6, 8]
>>> [i * v for i, v in enumerate(a)]
[0, 3, 10, 18, 32]

or

[mapfunction(i, v) for i, v in enumerate(a)]

I feel list comprehensions are often more readable than map/lambda constructs. When using a named mapping function that accepts the (i, v) tuple directly, map probably wins though.

share|improve this answer
    
you are right, in the later case the map notation makes more sense. In my case using a named function with map was the right choice, since practically the function had to do a little more than just multiplying by the index. – LetsPlayYahtzee Feb 18 at 14:59

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