193

Is there any reason to do anything more complicated than one of these two lines when you want to clear a list in Python?

old_list = []
old_list = list()

The reason I ask is that I just saw this in some running code:

del old_list[ 0:len(old_list) ]
  • 1
    Why are you doing this? Garbage Collection works. Why not simply ignore the old list value and let Python clean it up automatically? – S.Lott May 12 '09 at 2:15
  • 38
    @S.Lott: The poster didn't write the code, and is asking why the original writer may have done so. – John Fouhy May 12 '09 at 3:20
  • 1
    You could also do: while l: l.pop() – RoadieRich May 13 '09 at 2:10
  • 10
    LOL. I'm sure that's efficient. – FogleBird May 13 '09 at 2:17
  • 17
    Not related to your question, but you shouldn't use len when specifying a slice. a[:x] means beginning to x and a[x:] means x to end. a[ 0:len(a) ] can be written as a[:]. You can also use negatives to count from the end (a[-1] is the last element). – idbrii Feb 23 '11 at 20:53
345

Clearing a list in place will affect all other references of the same list.

For example, this method doesn't affect other references:

>>> a = [1, 2, 3]
>>> b = a
>>> a = []
>>> print(a)
[]
>>> print(b)
[1, 2, 3]

But this one does:

>>> a = [1, 2, 3]
>>> b = a
>>> del a[:]      # equivalent to   del a[0:len(a)]
>>> print(a)
[]
>>> print(b)
[]
>>> a is b
True

You could also do:

>>> a[:] = []
  • 9
    Hmm, you learn something new every day. – Sasha Chedygov May 12 '09 at 2:05
  • 83
    You could also do del a[:] – idbrii Feb 23 '11 at 20:51
  • 33
    With python 3.3 and later you can go with a.clear(), no problem! – Marek Lewandowski Dec 6 '14 at 16:20
  • 4
    @Stallman because in first you are changing a reference for 'a' to point to new array, not clearing one, and b still points an old one – Pax0r Feb 4 '15 at 14:36
  • 4
    It'd be great if anyone can show the performance difference between those methods! – Suanmeiguo Jul 24 '15 at 20:40
35

There is a very simple way to clear a python list. Use del list_name[:].

For example:

>>> a = [1, 2, 3]
>>> b = a
>>> del a[:]
>>> print a, b
[] []
17

Doing alist = [] does not clear the list, just creates an empty list and binds it to the variable alist. The old list will still exist if it had other variable bindings.

To actually clear a list in-place, you can use any of these ways:

  1. alist.clear() # Python 3.3+, most obvious
  2. del alist[:]
  3. alist[:] = []
  4. alist *= 0 # fastest

See the Mutable Sequence Types documentation page for more details.

  • 1
    I have tested and alist *= 0 is the fastest, next fastest is alist.clear() and other two methods are equally fast. Could you explain why alist*= 0 is the fastest? – Jenny Jul 24 at 13:09
  • 1
    @Jenny: It simply uses fewer (or less expensive) opcodes under the hood. For example, the operator version doesn't need to look up any method names or build slices. – Eugene Yarmash Jul 24 at 13:28
13

It appears to me that del will give you the memory back, while assigning a new list will make the old one be deleted only when the gc runs.matter.

This may be useful for large lists, but for small list it should be negligible.

Edit: As Algorias, it doesn't matter.

Note that

del old_list[ 0:len(old_list) ]

is equivalent to

del old_list[:]
  • 2
    gc is not run in cycles. The list is freed as soon as its last reference is dropped. – Algorias May 12 '09 at 4:45
  • 2
    Algorias: that's true for CPython, but may not be for other implementations. – mhsmith Dec 18 '11 at 23:48
  • 2
    del old_list[ 0:len(old_list) ] and del old_list[:] have a same result, but the latter one is faster (checked in Python 2.6) – Roy Nieterau Feb 12 '13 at 14:38
5

There are two cases in which you might want to clear a list:

  1. You want to use the name old_list further in your code;
  2. You want the old list to be garbage collected as soon as possible to free some memory;

In case 1 you just go on with the assigment:

    old_list = []    # or whatever you want it to be equal to

In case 2 the del statement would reduce the reference count to the list object the name old list points at. If the list object is only pointed by the name old_list at, the reference count would be 0, and the object would be freed for garbage collection.

    del old_list
4
del list[:] 

Will delete the values of that list variable

del list

Will delete the variable itself from memory

3

If you're clearing the list, you, obviously, don't need the list anymore. If so, you can just delete the entire list by simple del method.

a = [1, 3, 5, 6]
del a # This will entirely delete a(the list).

But in case, you need it again, you can reinitialize it. Or just simply clear its elements by

del a[:]
-4

another solution that works fine is to create empty list as a reference empty list.

empt_list = []

for example you have a list as a_list = [1,2,3]. To clear it just make the following:

a_list = list(empt_list)

this will make a_list an empty list just like the empt_list.

  • No reason to create empt_list. Just use a_list = list(). – Daniel Harding May 7 '18 at 12:53

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.