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Say I have the following class defined with the method foo:

class MyClass:
    def foo(self):
        print "My name is %s" % __name__

Now when I call foo() I expect/want to see this printed out

My name is foo  

However I get

My name is __main__  

And if I was to put the class definition into a module called FooBar I would get

My name is FooBar  

However if I do

m = MyClass()
print m.foo.__name__

I get exactly what I want which is

My name is foo

Can someone please help explain why __name__ refers to the module and not the method name ? Is there an easy way to get the method name?

Many thanks

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why do you need to do this? what problem are you solving? –  SilentGhost Feb 8 '10 at 14:23

7 Answers 7

This does what you're after:


from inspect import currentframe, getframeinfo

class MyClass:
    def foo(self):
        print "My name is %s" % getframeinfo(currentframe())[2]
share|improve this answer
    
While this is correct, there's no reason to prefer it over just typing 'foo' in the function body without a lot more information from the OP. –  Roger Pate Feb 8 '10 at 14:23
    
Cool, wonder if one could make a decorator that does this somehow... At least after the decorated method has been run. Maybe you could inspect the method decorated. –  Skurmedel Feb 8 '10 at 14:24
    
@Skurmedel: def with_name(fn): return lambda *args, **kwds: fn(fn.__name__, *args, **kwds) (eat that, SO comment formatting) You'd have to change the function to know it's being wrapped (the name is the first arg and self/cls comes second). –  Roger Pate Feb 8 '10 at 14:26
    
Yeah that would do it.... maybe print fn.__name__ before or afterwards. I don't know what he wants really :) –  Skurmedel Feb 8 '10 at 14:28
    
What do you propose the decorator would do? A function already has a __name__ property, the problem is that its hard to access from within the function itself (if I understood the question correctly). –  Mizipzor Feb 8 '10 at 14:29

Names always refer to local variables or (if one doesn't exist) then global variables. There is a a global __name__ that has the module's name.

class MyClass:
  def foo(self):
    print "My name is %s" % MyClass.foo.__name__

Of course, that's redundant and almost entirely pointless. Just type out the method name:

class MyClass:
  def foo(self):
    print "My name is %s" % "foo"
    print "My name is foo"
share|improve this answer
    
Why the downvote? –  Roger Pate Feb 8 '10 at 14:25
    
Could be a competitive downvote. It has happened to me. –  Skurmedel Feb 8 '10 at 16:21
1  
@Skurmedel: That's always possible, and hurts them more than it does me (through upvotes in response it's net win for me, even gameable), but if I have missed something, I really want to know about it. –  Roger Pate Feb 8 '10 at 16:27
    
Yeah I understand, I'm fine with downvotes as long as somebody state their concern as well. –  Skurmedel Feb 8 '10 at 16:52
    
@Roger Pate: If I change the method name, I would not want to spend time in tracking down and change every occurrence of the method name inside the method. For example, consider a logging or debug statement, which would you prefer : "entering method : foo" v/s "entering method : %s" % inspect.stack()[0][3] –  108ium Mar 28 '12 at 8:06

__name__ refers to the module because that's what it's supposed to do. The only way to get at the currently running function would be to introspect the stack.

share|improve this answer

The other answers explain it quite well so I contribute with a more concrete example.

name.py

def foo():
    print "name in foo",__name__

foo()
print "foo's name",foo.__name__
print "name at top",__name__

Output

name in foo __main__
foo's name foo
name at top __main__

name2.py

import name

Output

name in foo name
foo's name foo
name at top name

Notice how the __name__ refers to built-in property of the module? Which is __main__ if the module is run directly, or the name of the module if its imported.

You should have run across the if __name__=="__main__": snippet.

You can find the relevant docs here, go check them out. Good luck! :)

share|improve this answer

Use introspection with the inspect module.

import inspect

class MyClass:
    def foo(self):
        print "My name is %s" % inspect.stack()[0][3]
share|improve this answer

Have a look at the the inspect module.

Try:

>>> import inspect
>>> def foo():
...     print inspect.getframeinfo(inspect.currentframe())[2]
...
>>> foo()
foo

or:

>>> def foo2():
...     print inspect.stack()[0][3]
...
>>> foo2()
foo2
share|improve this answer

This will do it:

(You need to refer to self.__class__._name__.)

class MyClass:
    def foo(self):
        print "My name is %s" % self.__class__.__name__
share|improve this answer
1  
The desired behavior, as shown in the example, is printing 'foo' (the method name) not 'MyClass'. –  Roger Pate Feb 8 '10 at 14:17
    
Doh, right, didn't read the question carefully enough. –  0xfe Feb 8 '10 at 14:22

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