5

I've spent the last 2 hours on this and I've probably read every question on here relating to variables being passed to functions. My issue is the common one of the parameter/argument being affected by changes made inside the function, even though I have removed the reference/alias by using variable_cloned = variable[:] in the function to copy the contents across without the reference.

Here is the code:

def add_column(m):    
    #this should "clone" m without passing any reference on    
    m_cloned = m[:]
    for index, element in enumerate(m_cloned):
        # parameter m can be seen changing along with m_cloned even
        # though 'm' is not touched during this function except to 
        # pass it's contents onto 'm_cloned'        
        print "This is parameter 'm' during the for loop...", m
        m_cloned[index] += [0]
    print "This is parameter 'm' at end of for loop...", m    
    print "This is variable 'm_cloned' at end of for loop...", m_cloned
    print "m_cloned is m =", m_cloned is m, "implies there is no reference"
    return m_cloned

matrix = [[3, 2], [5, 1], [4, 7]]
print "\n"
print "Variable 'matrix' before function:", matrix
print "\n"
add_column(matrix)
print "\n"
print "Variable 'matrix' after function:", matrix

What I'm noticing is that the parameter 'm' in the function is changing as if is an alias of m_cloned - but as far as I can tell I have removed the alias with the first line of the function. Everywhere else I have looked online seems to suggest that this line will make sure there is no reference to parameter - but it's not working.

I'm sure I must have made a simple mistake but after 2 hours I don't think I'm going to find it.

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  • 1
    "... even though I have removed the reference/alias by using variable_cloned = variable[:] in the function to copy the contents across without the reference." This makes variable_cloned refer to a separate list from variable, but the two lists will contain identical contents: references to your three (2-item) lists. Commented Jan 8, 2012 at 0:01

1 Answer 1

9

It looks like you need a deepcopy, instead of a shallow copy, which is what [:] gives you:

from copy import deepcopy
list2 = deepcopy(list1)

Here's a longer example comparing the two types of copy:

from copy import deepcopy

list1 = [[1], [1]]
list2 = list1[:]   # while id(list1) != id(list2), it's items have the same id()s
list3 = deepcopy(list1)

list1[0] += [3]

print list1
print list2
print list3

Outputs:

[[1, 3], [1]]  # list1
[[1, 3], [1]]  # list2
[[1], [1]]     # list3 - unaffected by reference-madness
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  • Wow thanks, I would never have got there on my own. I'm looking at link which seems to somewhat explain the differences between deep and shallow copy but I'm not sure what it means practically - should I do deepcopy every time I pass a variable to a function?
    – FiveAlive
    Commented Jan 8, 2012 at 0:30
  • 1
    @FiveAlive Not necessarily. Sometimes you want to keep references to "child" objects. Sometimes it doesn't matter (when dealing with immutable "children"), since things like strings/ints cannot change values, but instead are replaced by new copies, which would not be a problem in your case. "Knowing" is half the battle (they say), now that you know, I'm sure you'll pay closer attention next time to what you need. Commented Jan 8, 2012 at 0:33

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