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This is what I have so far:

def get_concrete_name_of_class(klass):
"""Given a class return the concrete name of the class.

klass - The reference to the class we're interested in.
"""

# TODO: How do I check that klass is actually a class?
# even better would be determine if it's old style vs new style
# at the same time and handle things differently below.

# The str of a newstyle class is "<class 'django.forms.CharField'>"
# so we search for the single quotes, and grab everything inside it,
# giving us "django.forms.CharField"
matches = re.search(r"'(.+)'", str(klass))
if matches:
    return matches.group(1)

# Old style's classes' str is the concrete class name.
return str(klass)

So this works just fine, but it seems pretty hackish to have to do a regex search on the string of the class. Note that I cannot just do klass().__class__.__name__ (can't deal with args, etc.).

Also, does anyone know how to accomplish the TODO (check if klass is a class and whether its oldstyle vs new style)?

Any suggestions would be greatly appreciated.

Based on the comments here's what I ended up with:

def get_concrete_name_of_class(klass):
    """Given a class return the concrete name of the class.

    klass - The reference to the class we're interested in.

    Raises a `TypeError` if klass is not a class.
    """

    if not isinstance(klass, (type, ClassType)):
        raise TypeError('The klass argument must be a class. Got type %s; %s' % (type(klass), klass))

    return '%s.%s' % (klass.__module__, klass.__name__)
share|improve this question
    
This is contrived and silly. The type and issubclass functions will tell you everything you're asking. Why not use them? –  S.Lott Jul 19 '10 at 19:12
    
@S.Lott: Sorry if you felt it was contrived and silly. And type and issubclass will not tell me the full path to class, which was my main question. –  sdolan Jul 19 '10 at 19:30
    
What do you mean by "full path"? –  S.Lott Jul 19 '10 at 21:25
    
@sdolan: To avoid writing problems that seem contrived, it helps to explain what you're tying to do. In this case, there seems to be no purpose behind this. Providing some reason why you want to know this can help us solve your real problem rather than hack around with obscure (and useless) Python trivia. –  S.Lott Jul 19 '10 at 21:26
    
@S.Lott: Thanks for the feedback on writing better questions. My real reason behind this is I'm creating a Django model field to store classes in the db. And in full path I mean 'django.form.CharField' rather than just 'CharField'. –  sdolan Jul 19 '10 at 22:14

3 Answers 3

up vote 2 down vote accepted

How about just using klass.__name__, or to get the fully qualified name, klass.__module__+'.'+klass.__name__?

share|improve this answer
    
Thank you, over engineering at its finest. :) –  sdolan Jul 19 '10 at 19:18

You can just say

klass.__module__ + "." + klass.__name__

As for how to determine whether something is an old class or new class, I recommend saying something like

from types import ClassType  # old style class type

if not isinstance(klass, (type, ClassType)):
    # not a class
elif isinstance(klass, type):
    # new-style class
else:
    # old-style class
share|improve this answer
    
+1: Thanks for the oldstyle vs. newstyle checks. –  sdolan Jul 19 '10 at 19:18
>>> class X:
...     pass
... 
>>> class Y( object ):
...     pass
... 

The type function tells you if a name is a class and old-style vs. new style.

>>> type(X)
<type 'classobj'>
>>> type(Y)
<type 'type'>

It also tells you what an object is.

>>> x= X()
>>> type(x)
<type 'instance'>
>>> y= Y()
>>> type(y)
<class '__main__.Y'>

You can test old-stye vs. new style by simply asking what it's a subclass of.

>>> issubclass(y.__class__,object)
True
>>> issubclass(x.__class__,object)
False
>>> 
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