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I'm iterating over a list of tuples in Python, and am attempting to remove them if they meet certain criteria.

for tup in somelist:
    if determine(tup):
         code_to_remove_tup

What should I use in place of code_to_remove_tup? I can't figure out how to remove the item in this fashion.

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11 Answers 11

up vote 283 down vote accepted

A list comprehension is best for this kind of loop.

somelist = [x for x in somelist if determine(x)]

EDIT: Jobs' comment says that he wants the 'determine' to say what should be deleted. That would then be just.

somelist = [x for x in somelist if not determine(x)]

EDIT:

somelist[:] = [x for x in somelist if not determine(x)]

Brandon Corfman is correct, you will lose reference to the original list unless you do it this way ( see Alex Martelli's answer for details).

Also, I liked Cides' suggestion that uses itertools. However there is no non iterator filterfalse, so it will have to be.

from itertools import ifilterfalse
somelist[:] = list(ifilterfalse(determine, somelist))
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1  
Technically, he wants it to be the same list, so it'd be somelist = [x for x in somelist if determine(x)]. – JAB Jul 30 '09 at 15:53
1  
He's requesting to remove all items matched, not keep only those matched. Otherwise this is the best solution. – job Jul 30 '09 at 17:45
20  
BTW, if another variable is referring to somelist, then you may want to modify the list in-place so that any references to it will be updated as well, i.e. somelist[:] = [x for x in somelist if determine(x)] – Brandon Jul 30 '09 at 19:02
9  
somelist[:] = ifilterfalse(determine, somelist) You don't need list here. – J.F. Sebastian Apr 24 '11 at 0:15
2  
@RostislavKondratenko: list_ass_slice() function that implements somelist[:]= calls PySequence_Fast() internally. This function always returns a list i.e., @Alex Martelli's solution that already uses a list instead of a generator is most probably more efficient – J.F. Sebastian May 7 '15 at 20:48

I needed to do something similar and in my case the problem was memory - I needed to merge multiple dataset objects within a list, after doing some stuff with them, as a new object, and needed to get rid of each entry I was merging to avoid duplicating all of them and blowing up memory. In my case having the objects in a dictionary instead of a list worked fine:

```

k = range(5)
v = ['a','b','c','d','e']
d = {key:val for key,val in zip(k, v)}

print d
for i in range(5):
    print d[i]
    d.pop(i)
print d

```

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The official Python 2 tutorial 4.2. "for Statements" says:

If you need to modify the sequence you are iterating over while inside the loop (for example to duplicate selected items), it is recommended that you first make a copy. Iterating over a sequence does not implicitly make a copy. The slice notation makes this especially convenient:

>>> for w in words[:]:  # Loop over a slice copy of the entire list.
...     if len(w) > 6:
...         words.insert(0, w)
...
>>> words
['defenestrate', 'cat', 'window', 'defenestrate']

which is what was suggested at: http://stackoverflow.com/a/1207427/895245

The Python 2 documentation 7.3. "The for statement" gives the same advice:

Note: There is a subtlety when the sequence is being modified by the loop (this can only occur for mutable sequences, i.e. lists). An internal counter is used to keep track of which item is used next, and this is incremented on each iteration. When this counter has reached the length of the sequence the loop terminates. This means that if the suite deletes the current (or a previous) item from the sequence, the next item will be skipped (since it gets the index of the current item which has already been treated). Likewise, if the suite inserts an item in the sequence before the current item, the current item will be treated again the next time through the loop. This can lead to nasty bugs that can be avoided by making a temporary copy using a slice of the whole sequence, e.g.,

for x in a[:]:
    if x < 0: a.remove(x)

Java rant

I feel that this particular Python API is significantly inferior to the Java counterpart ListIterator, which makes it crystal clear that you cannot modify a list being iterated except with the iterator itself, and gives you efficient ways to do so without copying the list.

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You can try for-looping in reverse so for some_list you'll do something like:

list_len = len(some_list)
for i in range(list_len):
    reverse_i = list_len - 1 - i
    cur = some_list[reverse_i]

    # some logic with cur element

    if some_condition:
        some_list.pop(reverse_i)

This way the index is aligned and doesn't suffer from the list updates (regardless whether you pop cur element or not).

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You need to take a copy of the list and iterate over it first, or the iteration will fail with what may be unexpected results.

For example (depends on what type of list):

for tup in somelist[:]:
    etc....

An example:

>>> somelist = range(10)
>>> for x in somelist:
...     somelist.remove(x)
>>> somelist
[1, 3, 5, 7, 9]

>>> somelist = range(10)
>>> for x in somelist[:]:
...     somelist.remove(x)
>>> somelist
[]
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7  
Zen #3, Simple is better than complex. Gets my vote! – jdero Aug 9 '13 at 18:55
2  
why the second one works? – Zen Jun 18 '14 at 12:52
3  
@Zen Because the second one iterates over a copy of the list. So when you modify the original list, you do not modify the copy that you iterate over. – Lennart Regebro Jun 18 '14 at 13:47
1  
@fantabolous: Dicts doesn't have an index, so it wouldn't work anyway. – Lennart Regebro Aug 19 '14 at 16:16
5  
Note to anyone reading this, this is VERY slow for lists. remove() has to go over the WHOLE list for every iteration, so it will take forever. – cloudformdesign Feb 11 '15 at 23:22

If you want to do anything else during the iteration, it may be nice to get both the index (which guarantees you being able to reference it, for example if you have a list of dicts) and the actual list item contents.

inlist = [{'field1':10, 'field2':20}, {'field1':30, 'field2':15}]    
for idx, i in enumerate(inlist):
    do some stuff with i['field1']
    if somecondition:
        xlist.append(idx)
for i in reversed(xlist): del inlist[i]

enumerate gives you access to the item and the index at once. reversed is so that the indices that you're going to later delete don't change on you.

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The answers suggesting list comprehensions are ALMOST correct -- except that they build a completely new list and then give it the same name the old list as, they do NOT modify the old list in place. That's different from what you'd be doing by selective removal, as in @Lennart's suggestion -- it's faster, but if your list is accessed via multiple references the fact that you're just reseating one of the references and NOT altering the list object itself can lead to subtle, disastrous bugs.

Fortunately, it's extremely easy to get both the speed of list comprehensions AND the required semantics of in-place alteration -- just code:

somelist[:] = [tup for tup in somelist if determine(tup)]

Note the subtle difference with other answers: this one is NOT assigning to a barename - it's assigning to a list slice that just happens to be the entire list, thereby replacing the list contents within the same Python list object, rather than just reseating one reference (from previous list object to new list object) like the other answers.

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How do I do the same sliced assignment with a dict? In Python 2.6? – Paul McGuire Mar 25 '11 at 19:29
6  
@Paul: Since dicts are unordered, slices are meaningless for dicts. If your want to replace the contents of dict a by the contents of dict b, use a.clear(); a.update(b). – Sven Marnach Apr 1 '11 at 23:51
1  
Why can 'reseating' one of the references by replacing what the variable refers to cause bugs? It seems like that would only be a potential problem in multi-threaded applications, not single-threaded. – Derek Dahmer Aug 7 '11 at 22:59
25  
@Derek x = ['foo','bar','baz']; y = x; x = [item for item in x if determine(item)]; This reassigns x to the result of the list comprehension, but y still refers to the original list ['foo','bar','baz']. If you expected x and y to refer to the same list, you may have introduced bugs. You prevent this by assigning to a slice of the entire list, as Alex shows, and I show here: x = ["foo","bar","baz"]; y = x; x[:] = [item for item in x if determine(item)];. The list is modified in place. ensuring that all references to the list (both x and y here) refer to the new list. – Steven T. Snyder Nov 15 '11 at 19:38

You might want to use filter() available as the built-in.

http://docs.python.org/library/functions.html#filter

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For those that like functional programming:

>>> somelist[:] = filter(lambda tup: not determine(tup), somelist)
or:
>>> from itertools import ifilterfalse
>>> somelist[:] = list(ifilterfalse(determine, somelist))

Updated to correct my answer. Thanks, David Raznick.

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1  
+1 for functional programming ;) – João Portela Nov 18 '09 at 15:23

Your best approach for such an example would be a list comprehension

somelist = [tup for tup in somelist if determine(tup)]

In cases where you're doing something more complex than calling a determine function, I prefer constructing a new list and simply appending to it as I go. For example

newlist = []
for tup in somelist:
    # lots of code here, possibly setting things up for calling determine
    if determine(tup):
        newlist.append(tup)
somelist = newlist

Copying the list using remove might make your code look a little cleaner, as described in one of the answers below. You should definitely not do this for extremely large lists, since this involves first copying the entire list, and also performing an O(n) remove operation for each element being removed, making this an O(n^2) algorithm.

for tup in somelist[:]:
    # lots of code here, possibly setting things up for calling determine
    if determine(tup):
        newlist.append(tup)
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2  
I think yours should be the accepted answer, due to the extra detail. – David Raznick Jul 30 '09 at 18:51
1  
Haha, thanks. I actually submitted my answer approximately 1 minute before David, but his probably got upvoted more for being shorter or something (and once something gets to the top it gets upvoted more often). I upvoted him myself since he gave a very helpful answer, of course. – Eli Courtwright Jul 30 '09 at 19:47
for i in xrange(len(somelist) - 1, -1, -1):
    if some_condition(somelist, i):
        del somelist[i]

You need to go backwards otherwise it's a bit like sawing off the tree-branch that you are sitting on :-)

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8  
In recent versions of Python, you can do this even more cleanly by using the reversed() builtin – ncoghlan Mar 23 '11 at 7:08
2  
Is this safe for sure? – highBandWidth Apr 14 '11 at 22:47
1  
@highBandWidth yes, it's safe for sure. – cloudformdesign Feb 11 '15 at 23:23
6  
reversed() does not create a new list, it creates a reverse iterator over the supplied sequence. Like enumerate(), you have to wrap it in list() to actually get a list out of it. You may be thinking of sorted(), which does create a new list every time (it has to, so it can sort it). – ncoghlan Feb 12 '15 at 6:44
1  
@Mauris because enumerate returns an iterator and reversed expects a sequence. I guess you could do reversed(list(enumerate(somelist))) if you don't mind creating an extra list in memory. – drevicko Aug 2 '15 at 23:27

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