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I have some problem with a List copy:

So After I got E0 from 'get_edge', I make a copy of E0 by calling 'E0_copy = list(E0)'. Here I guess E0_copy is a deep copy of E0, and I pass E0_copy into 'karger(E)'. But in the main function.
Why does the result of 'print E0[1:10]' before the for loop is not the same with that after the for loop?

Below is my code:

def get_graph():
    f=open('kargerMinCut.txt')
    G={}
    for line in f:
        ints = [int(x) for x in line.split()]
        G[ints[0]]=ints[1:len(ints)]
    return G

def get_edge(G):
    E=[]
    for i in range(1,201):
        for v in G[i]:
            if v>i:
                E.append([i,v])
    print id(E)
    return E

def karger(E):
    import random
    count=200 
    while 1:
        if count == 2:
            break
        edge = random.randint(0,len(E)-1)
        v0=E[edge][0]
        v1=E[edge][1]                   
        E.pop(edge)
        if v0 != v1:
            count -= 1
            i=0
            while 1:
                if i == len(E):
                    break
                if E[i][0] == v1:
                    E[i][0] = v0
                if E[i][1] == v1:
                    E[i][1] = v0
                if E[i][0] == E[i][1]:
                    E.pop(i)
                    i-=1
                i+=1

    mincut=len(E)
    return mincut


if __name__=="__main__":
    import copy
    G = get_graph()
    results=[]
    E0 = get_edge(G)
    print E0[1:10]               ## this result is not equal to print2
    for k in range(1,5):
        E0_copy=list(E0)         ## I guess here E0_coypy is a deep copy of E0
        results.append(karger(E0_copy))
       #print "the result is %d" %min(results)
    print E0[1:10]               ## this is print2

Thanks in advance!

share|improve this question
1  
Also, b = a[:] is a shallow copy. Refer stackoverflow.com/questions/16270374/… – Arvind Haran Jul 26 '13 at 5:23
up vote 46 down vote accepted

E0_copy is not a deep copy. You don't make a deep copy using list() (Both list(...) and testList[:] are shallow copies).

You use copy.deepcopy(...) for deep copying a list.

deepcopy(x, memo=None, _nil=[])
    Deep copy operation on arbitrary Python objects.

See the following snippet -

>>> a = [[1, 2, 3], [4, 5, 6]]
>>> b = list(a)
>>> a
[[1, 2, 3], [4, 5, 6]]
>>> b
[[1, 2, 3], [4, 5, 6]]
>>> a[0][1] = 10
>>> a
[[1, 10, 3], [4, 5, 6]]
>>> b   # b changes too -> Not a deepcopy.
[[1, 10, 3], [4, 5, 6]]

Now see the deepcopy operation

>>> b = copy.deepcopy(a)
>>> a
[[1, 10, 3], [4, 5, 6]]
>>> b
[[1, 10, 3], [4, 5, 6]]
>>> a[0][1] = 9
>>> a
[[1, 9, 3], [4, 5, 6]]
>>> b    # b doesn't change -> Deep Copy
[[1, 10, 3], [4, 5, 6]]
share|improve this answer
1  
Thanks.But I thought list() is a deep copy since id(E0) not equal to id(E0_copy). Could u explain why it happen? – Shen Jul 26 '13 at 7:53
2  
list(...) does not recursively makes copies of the inner objects. It only makes a copy of the outermost list, while still referencing the inner lists from the previous variable, hence, when you mutate the inner lists, the change is reflected in both the original list and the shallow copy. – Sukrit Kalra Jul 26 '13 at 8:29
    
You can see that shallow copying references the inner lists by checking that id(a[0]) == id(b[0]) where b = list(a) and a is a list of lists. – Sukrit Kalra Jul 26 '13 at 8:32
    
list1.append(list2) is also a shallow copy of list2 – Lazik Dec 12 '13 at 13:56

I believe a lot of programmers have ran into one or two interview problems where they are asked to deep copy a linked list, however this problem is not as easy as it sounds!

in python, there is a module called "copy" with two useful functions

import copy
copy.copy()
copy.deepcopy()

copy() is a shallow copy function, if the given argument is a compound data structure, for instance a list, then python will create another object of the same type (in this case, a new list) but for everything inside old list, only their reference is copied

# think of it like
newList = [elem for elem in oldlist]

Intuitively, we could assume that deepcopy() would follow the same paradigm, and the only difference is that for each elem we will recursively call deepcopy, (just like the answer of mbcoder)

but this is wrong!

deepcopy() actually preserve the graphical structure of the original compound data:

a = [1,2]
b = [a,a] # there's only 1 object a
c = deepcopy(b)

# check the result
c[0] is a # return False, a new object a' is created
c[0] is c[1] # return True, c is [a',a'] not [a',a'']

this is the tricky part, during the process of deepcopy() a hashtable(dictionary in python) is used to map: "old_object ref onto new_object ref", this prevent unnecessary duplicates and thus preserve the structure of the copied compound data

official doc

share|improve this answer

just a recursive deep copy function.

def deepcopy(A):
    rt = []
    for elem in A:
        if isinstance(elem,list):
            rt.append(deepcopy(elem))
        else:
            rt.append(elem)
    return rt
share|improve this answer
2  
There's no reason to reimplement the standard deepcopy() function in the copy module – Cfreak Jun 16 '15 at 14:57

If your list elements are immutable objects then you can use this, otherwise you have to use deepcopy from copy module.

you can also use shortest way for deep copy a list like this.

a = [0,1,2,3,4,5,6,7,8,9,10]
b = a[:] #deep copying the list a and assigning it to b
print id(a)
20983280
print id(b)
12967208

a[2] = 20
print a
[0, 1, 20, 3, 4, 5, 6, 7, 8, 9,10]
print b
[0, 1, 2, 3, 4, 5, 6, 7, 8, 9,10]
share|improve this answer
9  
This is not a Deep Copy. – Sukrit Kalra Jul 26 '13 at 6:31
1  
Then what is it. It has two different dictionaries (you can check the id's of each one) with same values. – tailor_raj Jul 26 '13 at 6:32
    
Read this, [:] just creates a shallow copy, it does not recursively create copies of the objects inside one. – Sukrit Kalra Jul 26 '13 at 6:35
1  
Thanks. you mean to say if we use this, new list will be created but all elements of new list will be copies only, they will be having same object (same id) as of previous one ? – tailor_raj Jul 26 '13 at 6:40
    
This is. A elegant way. Thank you tailor. – Wilbeibi Apr 26 '14 at 3:24

Regarding the list as a tree, the deep_copy in python can be most compactly written as

def deep_copy(x):
    if not isinstance(x, list): return x
    else: return map(deep_copy, x)
share|improve this answer

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