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I create many object then I store in a list. But I want to delete them after some time because I create news one and don't want my memory goes high (in my case, it jumps to 20 gigs of ram if I don't delete it).

Here is a little code to illustrate what I trying to do:

class test:
    def __init__(self):
        self.a = "Hello World"
    def kill(self):
        del self

a = test()
b = test()
c = [a,b]

print("1)Before:",a,b)

for i in c:
    del i

for i in c:
    i.kill()   

print("2)After:",a,b)

A and B are my objects. C is a list of these two objects. I'm trying to delete it definitely with a for-loop in C: one time with DEL and other time with a function. It's not seem to work because the print continue to show the objects.

I need this because I create 100 000 objects many times. The first time I create 100k object, the second time another 100k but I don't need to keep the previous 100k. If I don't delete them, the memory usage goes really high, very quickly.

share|improve this question
1  
Just drop the list containing the 100k items. – Niklas R Jan 22 '13 at 18:20
    
I create the list C just to trying to delete A and B in a loop :( – Jean-Francois Gallant Jan 22 '13 at 18:26
up vote 11 down vote accepted

cpython at least works on reference counting to determine when objects will be deleted. Here you have multiple references to the same objects. a refers to the same object that c[0] references. When you loop over c (for i in c:), at some point i also refers to that same object. the del keyword removes a single reference, so:

for i in c:
   del i

creates a reference to an object in c and then deletes that reference -- but the object still has other references (one stored in c for example) so it will persist.

In the same way:

def kill(self):
    del self

only deletes a reference to the object in that method. One way to remove all the references from a list is to use slice assignment:

mylist = list(range(10000))
mylist[:] = []
print (mylist)

Apparently you can also delete the slice to remove objects in place:

del mylist[:]  #This will implicitly call the `__delslice__` or `__delitem__` method.

This will remove all the references from mylist and also remove the references from anything that refers to mylist. Compared that to simply deleting the list -- e.g.

mylist = list(range(10000))
b = mylist
del mylist
#here we didn't get all the references to the objects we created ...
print b #[0, 1, 2, 3, 4, ...]
share|improve this answer
2  
del mylist[:] works too and is faster. – Martijn Pieters Jan 22 '13 at 18:21
    
@MartijnPieters -- You're right. Oh the magic of statements (as this wouldn't be possible with a function call -- delete(mylist[:])) – mgilson Jan 22 '13 at 18:23
    
soo , how I can delete A and B in a loop ? – Jean-Francois Gallant Jan 22 '13 at 18:24
1  
@Jean-FrancoisGallant -- you can't. Not with the way your code is set up. To delete a and b in your code, you'd need: del a; del b; del c[:] -- That said, I doubt that your test code is actually a good model for what you're actually trying to do ... – mgilson Jan 22 '13 at 18:25
    
yes it's true. Soo I need to find a way to setup my code well. – Jean-Francois Gallant Jan 22 '13 at 18:28

Here's how you delete a single item from a list (a in your case), assuming c is a list.

del c[0]

Here's how you delete every item from a list.

del c[:]

Here's how you delete the first two items from a list.

del c[:2]
share|improve this answer
4  
del c[:] would be nicer – ThiefMaster Jan 22 '13 at 18:18
    
@ThiefMaster Ah, learned something new. It makes sense now that I think about it. Thanks! I'll update the answer. – Jon-Eric Jan 22 '13 at 18:21
1  
@ThiefMaster: indeed, and is faster too. Python 3.3: timeit.timeit('del alist[:]', 'alist = list(range(10000))') vs. timeit.timeit('alist[:] = []', 'alist = list(range(10000))') comes out as 0.08622030797414482 and 0.1133101258892566 respectively. – Martijn Pieters Jan 22 '13 at 18:23

None of that required, simplest way:

x=[4,5,6]
x=[]
print x
share|improve this answer
    
Why use y at all? Why not x=[]? – Tim Castelijns Dec 20 '14 at 18:32
    
Sorry about that, you're right. Just edited. – GreyHound Dec 20 '14 at 18:41
    
This doesn't work if x is a copy of a list. For example if x is passed to a function. – Samuel Jan 5 '15 at 23:15

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