134

Why such structure

class A:
    def __init__(self, a):
        self.a = a

    def p(self, b=self.a):
        print b

gives an error NameError: name 'self' is not defined?

143

Default argument values are evaluated at function define-time, but self is an argument only available at function call time. Thus arguments in the argument list cannot refer each other.

It's a common pattern to default an argument to None and add a test for that in code:

def p(self, b=None):
    if b is None:
        b = self.a
    print b
  • 4
    Although I think that the above is not very pretty (I come from ruby where things just work fine), the above actually works as a workaround. It's still awkward that python chose to make self unavailable in a parameter list. – shevy Jan 2 '18 at 11:30
  • 1
    @shevy: "self" has no special meaning in python, it's just the name conventionally chosen for the first argument. You can as well replace "self" by "me" or "x". – Max May 22 at 20:41
16

For cases where you also wish to have the option of setting 'b' to None:

def p(self, **kwargs):
    b = kwargs.get('b', self.a)
    print b
  • 1
    Not sure what's overly complicated about it. Feel free to chime in with your own solution that preserves all values of b. – Andrew Nov 26 '09 at 17:58
6

If you have arrived here via google, please make sure to check that you have given self as the first parameter to a class function. Especially if you try to reference values for that object inside the function.

def foo():
    print(self.bar)

>NameError: name 'self' is not defined

def foo(self):
    print(self.bar)

>"Congrats you got rid of the NameError!"

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