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def a():
    print 'sss'

print getattr(a, "_decorated_function", a).__name__

it print :

a

thanks

updated

my code:

def a():
    w='www'

print getattr(a,'w')

but it print :

Traceback (most recent call last):
  File "D:\zjm_code\a.py", line 8, in <module>
    print getattr(a,'w')
AttributeError: 'function' object has no attribute 'w'
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8  
you need to start reading docs: docs.python.org/library/functions.html#getattr –  SilentGhost Apr 28 '10 at 7:17
1  
since you're a beginner, you are not going to be using getattr() much, if at all. –  wescpy Apr 28 '10 at 8:05
    
Please update the title to more specifically match the question and perhaps clarify it. What are your purpose with the question, to understand getattr or to solver your problem in the updated section? –  hultqvist Apr 28 '10 at 11:38

4 Answers 4

up vote 1 down vote accepted

In response to the Updated question

Functions must be given their attributes after declaration.

def a():
    pass

a.w = 'www'
print a.w

Another method that is more similar with other OO languages is to use a class. This example will make a static attribute:

class a:
    w = 'www'

print a.w

This will make w shared between all instances of class a, which is most useful as a constant in the program. If you on the other will be working with the variable and changing its value, it it better to do the following:

class b:
    def __init__(self):
        self.w = 'www'

c = b()
print c.w
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Besides, you are completely wrong, functions do have attributes. Everything is an object in python, remember? read the first lines of diveintopython.org/getting_to_know_python/… . –  KillianDS Apr 28 '10 at 11:35
    
@KillianDS sorry about that, fixed! –  hultqvist Apr 28 '10 at 11:45
    
KillianDS, technically functions do have attributes (such as name), but obviously those attributes are not the local variables. I think you can get at the local variables through inspect or parser, or something, but it's not really easy. –  wisty Apr 29 '10 at 2:03

See the documentation for getattr in Python. The reason it is printing "a", is because "a" has no attribute named "_decorated_function", and the third parameter to getattr() is a default value to return in the event that the first parameter has no attribute with the name of the second parameter. So, your code is the same as:

print a.__name__

Not suprisingly, a's name is "a", hence you get that as the output. By the way, I strongly suggest that you search the Python documentation prior to posting questions here on StackOverflow, as you are more likely to get answers there sooner. You might also find my Development and Coding Search custom search engine useful in finding the relevant Python reference documentation for future queries.

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If a has an attribute called _decorated_function then it returns what that attribute contains, otherwise it returns a. Seriously, this is all in the docs.

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I'll take a guess:

The code can be broken into 2 steps:

func = getattr(a, "_decorated_function", a)
print func.__name__

Ignore the first line.

The second line prints the name of func, which in your case happens to be 'a'. No surprise.

The first line is there for the case of decorators:

class My_decorator:
    def __init__(self,func):
        self._decorated_function = func
    def __call__(self,arg):
        self._decorated_function(arg+1)

@My_decorator
def a(i):
    print i

print a(0)
>>> 1

print a._decorated_function.__name__
>>> a

So the objects that you will be calling getattr(a, "_decorated_function", a) are expected to be either functions, or classes that have "decorated" a function.

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