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I wanted to define a function to change a list in python 2.

lis=[[1,2],[3,4,5]]

def zu(l):
    import copy
    lcop=copy.deepcopy(l)
    while True:
        for i in range(len(lcop)):
            lcop=copy.deepcopy(l)
            for k in range(len(l[i])):
            lcop[i].pop()
    l=copy.deepcopy(lcop)
        break
    print l
    return l


zu(lis)
print lis

But executing the above code just yields:

[[1, 2], []]
[[1, 2], [3, 4, 5]]

So the original list is changed only locally inside the function. But i wanted to return it changed. And yes, I am new to python.

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1  
lis = zu(lis) –  C.B. Dec 18 '13 at 20:19
    
Why all those copies? –  user2357112 Dec 18 '13 at 20:31
    
They are necessary in the actual function I created. This is just a cut-down version to illustrate my problem. –  user3103314 Dec 18 '13 at 20:47

2 Answers 2

You need to assign the returned list to your variable:

lis = zu(lis)

You have very carefully not mutated the original list in your function (by copying the list and mutating the copy), hence the need for an assignment. Alternatively, modify your function so that it does mutate the argument list.

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lis=[[1,2],[3,4,5]]

def zu(l):
    import copy
    lcop=copy.deepcopy(l)
    while True:
        for i in range(len(lcop)):
            lcop=copy.deepcopy(l)
            for k in range(len(l[i])):
            lcop[i].pop()
    l=copy.deepcopy(lcop)
        break
    print l
    return l


lis = zu(lis) # Here is the changes
print lis

But list is mutable in python so if you wanna modify the original list, just access the list inside the function without making a copy of it then it will change the original list you have outside, too.

for example

lis=[1,2,3]
print lst # print [1,2,3]
def zu(l):
    l[0] = [5]
zu(lis)
print lis # print [5,2,3]
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