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I am befuddled over what I think is a very simple and straight forward subclass of a list in Python.

Suppose I want all the functionality of list. I want to add several methods to the default set of a list.

The following is an example:

class Mylist(list):

    def cm1(self):
        self[0]=10

    def cm2(self):
        for i,v in enumerate(self):
            self[i]=self[i]+10        

    def cm3(self):
        self=[]         

    def cm4(self):
        self=self[::-1]

    def cm5(self):
        self=[1,2,3,4,5]       

ml=Mylist([1,2,3,4])
ml.append(5)
print "ml, an instance of Mylist: ",ml
ml.cm1()
print "cm1() works: ",ml

ml.cm2()
print "cm2() works: ",ml

ml.cm3() 
print "cm3() does NOT work as expected: ",ml     

ml.cm4()
print "cm4() does NOT work as expected: ",ml     

ml.cm5()
print "cm5() does NOT work as expected: ",ml  

The output:

Mylist:  [1, 2, 3, 4, 5]
cm1() works:  [10, 2, 3, 4, 5]
cm2() works:  [20, 12, 13, 14, 15]
cm3() does NOT work as expected:  [20, 12, 13, 14, 15]
cm4() does NOT work as expected:  [20, 12, 13, 14, 15]
cm5() does NOT work as expected:  [20, 12, 13, 14, 15]

So it seems that a scalar assignment works as I expect and understand. List or slices do not work as I understand. By 'does not work,' I mean that the code in the method does not change the instance of ml as the first two methods do.

What do I need to do so that cm3() cm4() and cm5() work?

share|improve this question
3  
It's not specific to lists. It's how names and assignment work in Python — assignment rebinds the name, and never modifies the object the name is currently bound to. –  Cat Plus Plus Feb 27 '12 at 3:24
    
@Cat Plus Plus: Yes, I suspected that and understand. Surely it is possible to reassign a subclassed list or use slice syntax? I just do not know how and cannot find via goggle or Python docs. I am a little green on Python classes still... –  dawg Feb 27 '12 at 3:30
    
It depends on what you expect "reassign" to mean. –  Karl Knechtel Feb 27 '12 at 7:53

3 Answers 3

up vote 8 down vote accepted

The problem here is that in cm3, cm4, and cm5, you are not modifying the object! You are creating a new one in the scope of the member function, and then assigning it to self. The outer scope doesn't respect this. In cm1 and cm2, you are modifying the same object, so the object stays the same.

Try using the id function to debug this:

def cm4(self):
    self=self[::-1]
    print 'DEBUG', id(self)

...

m1.cm4()
print 'DEBUG', id(self)

You'll see that the id is different.

So, you might ask, well how do I do this? You are lucky that with lists you can assign into a splice. This might not be as easy with other data structures. What this does is keeps the same list, but replaces the items. To do this, do:

self[:] = ...

So, for example:

self[:] = self[::-1]
share|improve this answer
2  
This is why self has to be in the signature of member functions (you can call it whatever you want, as long as its the first position). Behind the scenes, ml.cm3 gets turned into cm3(ml) (if there are arguments, they each get pushed back a position). So self is pass-by-reference just like other object arguments, and you're just changing your local reference. –  Aaron Dufour Feb 27 '12 at 4:06

Your misunderstanding is that there is something special about the word self. In those methods it is just a name in scope like any other name in python, so when you reassign it, you are just rebinding the name self to some other object - not mutating the parent object. In fact that argument doesn't even need to be named self, that is only a convention that python programmers use.

Here is reimplementation of your members to mutate properly:

def cm3(self):
  self[:] = []

def cm4(self):
  self.reverse()

def cm5(self):
  self[:] = [1,2,3,4,5]
share|improve this answer

use self[:] instead of self, self = ... will rebind self variable to other object only, that will not change the list object.

def cm3(self):
    self[:]=[]         

def cm4(self):
    self[:]=self[::-1]

def cm5(self):
    self[:]=[1,2,3,4,5]   
share|improve this answer

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