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I have a list of characters and list of indexes

myList = ['a','b','c','d']
toRemove = [0,2]

and I'd like to get this in one operation

myList = ['b','d']

I could do this but is there is a way to do it faster?

toRemove.reverse()
for i in toRemove:
    myList.pop(i)
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1  
The example implementation you give is incorrect, or perhaps your spec is. That algorithm removes the item at index 0, then removes the item which was moved to index 2 due to the removal (that is, 'd'). –  delnan Jun 7 '12 at 22:14
    
I used toRemove.reverse so the first element to be removed is on index 2 and I do then remove the element on index 0. This works only when the toRemove list is sorted. –  Youcha Jun 7 '12 at 22:31

5 Answers 5

up vote 3 down vote accepted

If you wanted to, you could use numpy.

import numpy as np

myList = ['a','b','c','d']
toRemove = [0,2]

new_list = np.delete(myList, toRemove)

Result:

>>> new_list
array(['b', 'd'], 
      dtype='|S1')

Note that new_list is a numpy array.

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2  
Don't you think Numpy is a bit of overkill just for a simple 'delete array' problem? –  Name McChange Jun 7 '12 at 22:30
1  
Maybe the OP is using numpy already and the lists in question are millions of elements? If so it is probably the fastest answer. –  Nick Craig-Wood Jun 7 '12 at 22:31
    
@SuperDisk, I think numpy way is pretty convenient, and could be useful. Of course this task is easy without 'numpy', but numpy option is worth mentioning. –  Akavall Jun 7 '12 at 22:34
    
I have numpy, that's exactly what I was looking for. Thanks. –  Youcha Jun 7 '12 at 22:36
1  
@Youcha No offense, but you should probably specify what modules you are using next time :) –  Name McChange Jun 7 '12 at 22:39

Concise answer

>>> myList = ['a','b','c','d']
>>> toRemove = [0,2]
>>> 
>>> [v for i, v in enumerate(myList) if i not in toRemove]
['b', 'd']
>>> 
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2  
Make toRemove a set and this is actually a very good algorithm. It's O(m) instead of O(n * m) where n = len(toRemove); m = len(myList) as it does not repeatedly copy half of the array each time it removes an item. –  delnan Jun 7 '12 at 22:17
    
Making toRemove a set is probably a good idea but depends on how long toRemove and myList is as to whether it will be an improvement. I didn't write that originally as I was going for concise! –  Nick Craig-Wood Jun 7 '12 at 22:29

You could use a list comprehension as other answers have suggested, but to make it truly faster I would suggest using a set for the set of indices you want removed.

>>> myList = ['a','b','c','d']
>>> toRemove = set([0,2])
>>> [x for i,x in enumerate(myList) if i not in toRemove]
['b', 'd']

Checking every element in myList against every element in toRemove is O(n*m) (where n is the length of myList and m is the length of toRemove). If you use a set, checking for membership is O(1), so the whole procedure becomes O(n). Keep in mind though, the difference in speed will not be noticeable unless toRemove is really big (say more than a thousand).

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One-liner:

>>>[myList[x] for x in range(len(myList)) if not x in [0,2]]
['b', 'd']
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You could write a function to do it for you.

def removethese(list, *args):
    for arg in args:
        del list[arg]

Then do

mylist = ['a', 'b', 'c', 'd', 'e']
removethese(mylist, 0, 1, 4)

mylist now is ['c', 'd']

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This implementation is as incorrect as OP's (assuming, again, that the spec is correct). –  delnan Jun 7 '12 at 22:18

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