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I was wondering, if there is way in Python to modify collections without creating new ones. E.g.:

lst = [1, 2, 3, 4, 5, 6]
new_lst = [i for i in lst if i > 3]

Works just fine, but a new collection is created. Is there a reason, that Python collections lack a filter() method (or similar) that would modify the collection object in place?

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If you really, absolutely must modify it in place, why not examine each value, and pop(i) the ones you dislike? –  Gustav Bertram Nov 7 '11 at 14:14
1  
On the "lack" of other methods, it's because in Python "There should be one-- and preferably only one --obvious way to do it." The list slicing operation in the answer below is the preferred way of doing in-place modification. It should come naturally orthogonal since lst[index] accesses a single element, lst[start:stop] accesses a span/slice of elements. –  shimofuri Nov 7 '11 at 14:17
1  
BasicWolf In fact you're right: as far as I know, there is no method or function that processes an in-place transformation and the question "why so ?" is valid. The fact that it's possible to write snippets that do such transformations isn't a justifying reason, otherwise it would be sufficient that we can write our own snippets to do reversing of sequences to justify that there wouldn't be reversed() as a built-in function. But there is reversed() in built-in features.... I upvote because your question comes to appear as stimulating reflection. –  eyquem Nov 7 '11 at 18:07
    
@eyquem I think the reason for that is straigthforward. Since their isn't an efficient way to filter a Python list in-place, no way to do it is provided -- it would encourage people to try and do it in-place when it's better not to. There is however a very efficient way to iterate over it in reverse, so a solution is provided. –  agf Nov 9 '11 at 23:14
    
Still, there are lots of unordered collections. E.g. filtering a set or a dict. –  BasicWolf Nov 10 '11 at 7:39

6 Answers 6

up vote 5 down vote accepted

The other answers are correct; if you want all the names pointing to the old list to point to the new list you can use slice assignment.

However, that's not truly in-place creation; the new list is first created elsewhere. The link in Sven's answer is good.

The reason there isn't one that truly operates in-place is that while making a new list like that is O(n), each truly in-place item removal would be O(k) by itself, where k is the length of the list from the removal point on. The only way to avoid that with Python lists is to use some temporary storage, which is what you're doing by using slice assignment.

An example of an in-place O(n) filter on a collections.deque, in case you don't need to store your data in a list:

from collections import deque

def dequefilter(deck, condition):
    for _ in xrange(len(deck)):
        item = deck.popleft()
        if condition(item):
            deck.append(item)

deck = deque((1, 2, 3, 4, 5))
dequefilter(deck, lambda x: x > 2) # or operator.gt(2)
print deck
# deque([3, 4, 5])
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Thank you very much, agf (and the other guys :) I was really wondering about the reason. –  BasicWolf Nov 7 '11 at 14:08
    
It would be possible to implement a low-level in-place filter function which takes linear time, by using read and write pointers into the list. –  larsmans Nov 7 '11 at 14:09
    
Btw, in case of linked lists - filtering will take O(n) for the whole list. I suppose you meant O(k) for vector-like structures? –  BasicWolf Nov 7 '11 at 14:12
    
@BasicWolf, Python's lists are vector-like structures, so the statement about O(k) is true for Python lists and a naive delete every element we don't want approach. There are no native linked-list structures in Python; you can obviously code them if you need them but using the built-in types is almost always preferable. –  Duncan Nov 7 '11 at 14:26
1  
@agf: The slice assignment is a single byte-code instruction. When using CPython with threading, it will be atomic due to the GIL. –  Sven Marnach Nov 7 '11 at 20:57

If you want to do this in place, just use

lst[:] = [i for i in lst if i > 3]

This won't be faster or save any memory, but it changes the object in place, if this is the semantics you need.

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So what is the point in this code? lst = [...] has the same effect, hasn't it? –  BasicWolf Nov 7 '11 at 14:04
2  
If you are inside a function and don't want to return the new list for some reason you need to modify it in-place so the changes are available outside. –  ThiefMaster Nov 7 '11 at 14:05
2  
@BasicWolf: the main difference is that this does not allocate a new list, so if the list is shared between clients, it is modified everywhere. –  larsmans Nov 7 '11 at 14:06
    
Got it, thank you guys. –  BasicWolf Nov 7 '11 at 14:09
    
It's strange that you explained in your other cited answer that the right member of the assignement instruction is first evaluated (hence a new object is created elsewhere in the memory) and that in this answer your write that this instruction changes the list in place. It is not pure in-place changing , in my opinion. Saying that id(lst) remains the same after the assignement than before would be a more correct description but wouldn't correspond to the question anyway, alas –  eyquem Nov 7 '11 at 16:10

Correcting @larsmans original solution, you could either do

i = 0
while i < len(lst):
    if lst[i] <= 3:
        del lst[i]
    else
        i += 1

or

i = len(lst)
while i > 0:
    if lst[i-1] <= 3:
        del lst[i-1]
    i -= 1

Reason is the "index shift" which happens with the del. If I del at a ceratin index, I have to re-examine that index because it now holds a different value.

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While this corrects larsman's solution, it doesn't improve it -- it's still quadratic time. –  agf Nov 7 '11 at 14:49
    
hm, that depends on the definition. It does not improve its performants, but its usability. A correctly working solution is a better one than a faulty one, and IMHO "improve" mainly means "make better". –  glglgl Nov 7 '11 at 14:53
    
Nevertheless, I changed it in order to be clear. –  glglgl Nov 7 '11 at 14:54
1  
Sometimes, I don't understand people. At this minute I write, Sven's answer, that isn't an exact answer for the question, has been upvoted 7 times, while this glglgl's answer that gives a correct answer in the same time it corrects another erroneous answer has no upvote. Moreover, beginning with i = len(lst] and decrementing i avoids to computes len(lst) at each turn of the loop, and that's tricky. Instead of being upvoted, this good answer receives a critical remark that is not in cause in the question (because concerning the speed). Personally , I evidently +1 –  eyquem Nov 7 '11 at 17:05

Because it's not needed.

lst[:] = [i for i in lst if i > 3]
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The lst[:] solution by @Sven Marnach is one option. You can also perform this operation in-place, using constant extra memory, with

>>> i = 0
>>> while i < len(lst):
...  if lst[i] <= 3:
...   del lst[i]
...  else:
...   i += 1
... 
>>> lst
[4, 5, 6]

... but this solution is not very readable and takes quadratic time due to all the element shifting involved.

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But each del lst[i] takes linear time, which is why this doesn't exist by default. –  agf Nov 7 '11 at 14:06
    
@agf: where I wrote constant the second time, I meant quadratic. Updated, thanks. –  larsmans Nov 7 '11 at 14:08
1  
When I try this with the original list, my resulting list becomes [2, 4, 5, 6]. Writing an own answer. –  glglgl Nov 7 '11 at 14:18
1  
It took me 10 minutes to understand that this answer had been edited after glglgl's comment without signaling it :( –  eyquem Nov 7 '11 at 16:54
    
Thx for hint - I refer now to the old version of his post, honouring his edit. –  glglgl Nov 7 '11 at 17:15

I think it's in place transformation;

lst = [1,2,3,4,5,6,7,8,9,10,11]
to_exclude = [8,4,11,9]
print 'lst == %s\nto_exclude == %s' % (lst,to_exclude)

for i in xrange(len(lst)-1,-1,-1):
    if lst[i] in to_exclude:
        lst.pop(i)

print '\nlst ==',lst

result

lst == [1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11]
to_exclude == [8, 4, 11, 9]

lst == [1, 2, 3, 5, 6, 7, 10]
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