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Can I define a __repr__ for a class rather than an instance? For example, I'm trying to do this

class A(object):
    @classmethod
    def __repr__(cls):
        return 'My class %s' % cls

What I get is

In [58]: a=A()

In [59]: a
Out[59]: My class <class '__main__.A'>

In [60]: A
Out[60]: __main__.A

I'm trying to get the output of line 60 to look like "My Class A", not for the instance a. The reason I want to do this is I'm generating a lot of classes using Python's metaclass. And I want a more readable way to identify the class than the stock repr.

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Misunderstood your problem. Posted another (hopefully correct) answer. –  Michael Mior Jan 21 '12 at 19:12
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1 Answer 1

up vote 12 down vote accepted

You need to define __repr__ on the metaclass.

class Meta(type):
    def __repr__(cls):
        return 'My class %s' % cls.__name__

class A(object):
    __metaclass__ = Meta

__repr__ returns a representation of an instance of an object. So by defining __repr__ on A, you're specifying what you want repr(A()) to look like.

To define the representation of the class, you need to define how an instance of type is represented. In this case, replace type with a custom metaclass with __repr__ defined as you need.

>> repr(A)
My class A

If you want to define a custom __repr__ for each class, I'm not sure there's a particularly clean way to do it. But you could do something like this.

class Meta(type):
    def __repr__(cls):
        if hasattr(cls, '_class_repr'):
            return getattr(cls, '_class_repr')()
        else:
            return super(Meta, cls).__repr__()

class A(object):
    __metaclass__ = Meta

    @classmethod
    def _class_repr(cls):
        return 'My class %s' % cls.__name__

class B(object):
    __metaclass__ = Meta

Then you can customize on a per-class basis.

>> repr(A)
My class A
>> repr(B)
<__main__.B object at 0xb772068c>
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Beat me to it, +1. –  larsmans Jan 21 '12 at 19:14
2  
Note that in Python 3 __metaclass__ has no special meaning, instead you should use class A(metaclass=Meta). –  Rob Wouters Jan 21 '12 at 19:51
    
@RobWouters Thanks :) Didn't realize that had changed. –  Michael Mior Jan 21 '12 at 20:08
    
Thank you. That make sense. One issue is iPython seems to do its own thing rather than using repr in its REPL :( –  Wai Yip Tung Jan 21 '12 at 21:56
    
I am withdrawing my erroneous answer (redefining __builtins__.repr as non-working) and vote for this one instead. Thanks jsbueno for pointing out. –  Roman Susi Jan 22 '12 at 19:26
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