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Python: How do I pass a variable by reference?

I have the following case:

class A:
    def __init__(self):
        self.test = ''
    def func(self,var):
        var = 'foo'

I want func to modify self.var and I'd like to be able to pass a self. to this method.

A bit like:

class A()
    char test[256];
    A() { func(test);}
    void func(char * var) { var = "foo"; }

I haven't written C++ in a while but that's sort of what I'm going for.

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marked as duplicate by Wooble, delnan, ekhumoro, Peter O., Graviton Dec 7 '12 at 11:10

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

Your C++ code does nothing (more specifically, func changes what its local pointer points to and then throws that away). – delnan Nov 14 '12 at 20:00
It's exactly the same question, yes. – s5s Nov 14 '12 at 20:14
In your C++ version, are you trying to do void func(char *&var) { var = "foo"; } (take any var by reference and change it to point at a different string), or void func(char *var) { strcpy(var, "foo"); } (take a string pointer and mutate the string it points to into a different string)? (As @delnan pointed out, as written it does absolutely nothing—it takes a string pointer and ignores it, making its local copy of the pointer point at a different string.) – abarnert Nov 14 '12 at 22:30
PS, is there a reason func has to modify its variable? The usual Python idiom is to return a new value, and then just do self.test = self.func(self.test). 99% of the time, when people pass variables by reference in C++, it's either an attempt at avoiding the "inefficiency" of copying (which is almost always misguided in C++, especially C++11, and even moreso in Python), or because they need to return two values (or one value plus an error code), which is trivial to do in Python. – abarnert Nov 14 '12 at 22:37

1 Answer 1

up vote 0 down vote accepted

Unfortunately, I don't know C++ very well, but I'm guessing you want something like this:

class A:
    def __init__(self):
        self.test = ''
    def func(self,var):

We have to do it this way because we can change (mutate) self.test inside a function (if it's mutable), but we can't change which object it references (which is what you're attempting to do with assignment). consider:

def func1(x):
def func2(x):
   x = 'foo'

a = []
print a #['foo']  #mutated a in func1
print a #['foo']  #didn't change a in func2, only created a new local variable named `x` and assigned it to the string 'foo'

The only way around this is to pass some sort of proxy-like object which you can change. In this case, we pass the instance as the proxy object (self) and the attribute's name (var) so we know what to change on self. Given those two pieces of information, we can make the desired changes -- Of course, at this point, you're probably best off getting rid of func all together and just using setattr directly.

It's probably also worth asking why you actually want to do this. In general, you can just do:

self.test = "foo"

why would you want to write:


instead? I can understand if you're trying to do that since you're used to having private methods and attributes. But this is python. "We're all consenting adults here." Just rely on the conventions (prefix a variable with _ if you want to warn users against modifying it and prefix with __ to invoke name mangling to avoid collisions in superclasses).

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That's not exactly the same because you have to have to associate a string with each variable. On the other hand if you could pass a reference to a variable you wouldn't need the string :). – s5s Nov 14 '12 at 19:57
@s5s - I realize it's not exactly the same. The "problem" is that assignment rebinds a local name to the object on the RHS. As such, you can't change an immutable object by reference -- But that begs the question -- Why would you need to? See my edit. – mgilson Nov 14 '12 at 20:03
@mgilson You're confusing names and the mutability objects. Nobody can change an immutable object in any way (that's the very definition of immutability). Everyone (who has access to that name) can change what object a name refers to (regardless of what object it refers to or is made to refer to; especially regardless of mutability of those objects). – delnan Nov 14 '12 at 20:05
@delnan -- the semantics here are quite muddy. I don't have the issue confused, but I may not have explained it the best. The point is that assignment creates a new reference to the object that results from the right hand side. So you can't change what a variable points to in a function because as soon as you make an assignment, you've only created a new local variable and you haven't changed what you passed in at all. Mutable objects can be changed (mutated) in functions: lambda x: x.append(y), but again you can't change what object x points to. – mgilson Nov 14 '12 at 20:10
@mgilson Yes, that's more accurate. I trust you understand the semantics (though in my understanding, it's quite simple and non-muddy -- and I am yet to encounter anything challenging my mental model, despite frequenting questions on this topic). I merely objected to your phrasing. – delnan Nov 14 '12 at 20:12

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