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I came across this as a bit of a surprise while trying to work out another question.

This seemed extremely odd to me, I thought it was worth asking the question. Why doesn't __getattr__ appear to work with with?

if I make this object:

class FileHolder(object):
    def __init__(self,*args,**kwargs):
        self.f= file(*args,**kwargs)

    def __getattr__(self,item):
        return getattr(self.f,item)

and using it with with,

>>> a= FileHolder("a","w")
>>> a.write
<built-in method write of file object at 0x018D75F8>
>>> with a as f:
...   print f
...
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
AttributeError: __exit__
>>> a.__exit__
<built-in method __exit__ of file object at 0x018D75F8>

Why does this happen?

EDIT

>>> object.__exit__
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
AttributeError: type object 'object' has no attribute '__exit__'

It definitely isn't inheriting __exit__

share|improve this question
1  
Something is going on here, in your class definition you make FileHolder a subclass of object. But in your code below it, it says that a is a file object. Thats not consistent. –  jedwards Sep 28 '12 at 2:48
    
@jedwards Honestly it isn't. Test it yourself :) –  GP89 Sep 28 '12 at 2:52
1  
@jedwards, the __exit__ is from the file object assigned to self.f, if you ask type(a), you'll get FileHolder. –  Adam Wagner Sep 28 '12 at 2:54
    
@Adam, you're right -- I actually didn't create the class (I did something like class FileHolder(object): pass) -- serves me right. –  jedwards Sep 28 '12 at 3:10

2 Answers 2

up vote 4 down vote accepted

I can't say for sure, but after reading over the PEP describing the with statement:

http://www.python.org/dev/peps/pep-0343/

This jumped out at me:

A new statement is proposed with the syntax:

    with EXPR as VAR:
        BLOCK

....

The translation of the above statement is:

    mgr = (EXPR)
    exit = type(mgr).__exit__  # Not calling it yet
    value = type(mgr).__enter__(mgr)

....

Right there. The with statement does not call __getattr__(__exit__) but calls type(a).__exit__ which does not exist giving the error.

So you just need to define those:

class FileHolder(object):                                                                                                                 
    def __init__(self,*args,**kwargs):
        self.f= file(*args,**kwargs)

    def __enter__(self,*args,**kwargs):
        return self.f.__enter__(*args,**kwargs)

    def __exit__(self,*args,**kwargs):
        self.f.__exit__(*args,**kwargs)

    def __getattr__(self,item):
        return getattr(self.f,item)
share|improve this answer
    
Is it done like that for performance, or is it a bug? –  GP89 Sep 28 '12 at 2:57
1  
Surprisingly, the documentation is not-quite-right on this one -- special method lookup also ignores type(x).__getattr__. See my answer... –  nneonneo Sep 28 '12 at 2:59
    
I can't say for sure. My only guess is it's that way by design. It might be something to ask on the mailing list. –  korylprince Sep 28 '12 at 3:04
2  
@GP89: I did some more digging; it's by design. See here for the full reasoning. –  nneonneo Sep 28 '12 at 3:08
2  
I also did some digging in the mailing list @nneonneo mention. Here is a short summary: mail.python.org/pipermail/python-dev/2009-May/089576.html –  korylprince Sep 28 '12 at 3:10

The with statement opcode SETUP_WITH looks up __exit__ as a "special method lookup", which ignores __getattr__ and __getattribute__ on new-style classes (but not on old-style classes). See this mailing list thread for more information, where they discuss adding the special method lookup semantics to with (which they eventually do). See also special method lookup for new-style classes for a detailed discussion on why these special methods are looked up in this way.

In particular, special method lookup also bypasses __getattr__ on the type object. So, even though the documentation says the method is looked up as type(mgr).__exit__, this code doesn't work:

class M(type):
    def __getattr__(*args): return lambda: 0

class X(object):
    __metaclass__ = M

x = X()
type(x).__exit__ # works, returns a lambda

with x: pass # fails, AttributeError
share|improve this answer
    
It does beg the question though, why does __enter__ not get an AttributeError? unless it looks for exit first which seems unlikely –  GP89 Sep 28 '12 at 3:07
1  
As @korylprince's answer indicates, __exit__ is looked up first, so that they don't run into issues with calling __enter__ without a functional __exit__. You can see the exact CPython implementation here. –  nneonneo Sep 28 '12 at 3:10

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