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Python's setdefault allows you to get a value from a dictionary, but if the key doesn't exist, then you assign the based on parameter default. You then fetch whatever is at the key in the dictionary.

Without manipulating an object's __dict__Is there a similar function for objects?

e.g.
I have an object foo which may or may not have attribute bar. How can I do something like:

result = setdefaultattr(foo,'bar','bah')
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4 Answers 4

up vote 5 down vote accepted

Python doesn't have one built in, but you can define your own:

def setdefaultattr(obj, name, value):
    if not hasattr(obj, name):
        setattr(obj, name, value)
    return getattr(obj, name)
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What about def setdefaultattr(o,n,v): return setdefault(o.__dict__, n, v)? That wouldn't work on classes with slots though. –  Georg Schölly Dec 15 '09 at 7:02

Note that the currently accepted answer will, if the attribute doesn't exist already, have called hasattr(), setattr() and getattr(). This would be necessary only if the OP had done something like overriding setattr and/or getattr -- in which case the OP is not the innocent enquirer we took him for. Otherwise calling all 3 functions is gross; the setattr() call should be followed by return value so that it doesn't fall through to return getattr(....)

According to the docs, hasattr() is implemented by calling getattr() and catching exceptions. The following code may be faster when the attribute exists already:

def setdefaultattr(obj, name, value):
    try:
        return getattr(obj, name)
    except AttributeError:
        setattr(obj, name, value)
    return value
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1  
+1 for EAFP (exception catching) –  tzot Jan 6 '10 at 14:42
    
Why wouldn't this work if the object had an overridden setattr and/or getattr? –  martineau Dec 23 '12 at 18:25
    
the vars(obj) method is slightly faster from my test (about 5%) –  sbaechler Jun 7 '13 at 11:30
vars(obj).setdefault(name, value)
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So vars() just returns obj.__dict__? –  Ross Rogers Dec 15 '09 at 1:49
    
( I do prefer the syntax of var() to obj.__dict__ ) –  Ross Rogers Dec 15 '09 at 1:50
1  
@Ross sure. see help(vars) –  gnibbler Dec 15 '09 at 1:52
3  
From python docs Note The returned dictionary should not be modified: the effects on the corresponding symbol table are undefined. –  nosklo Dec 15 '09 at 3:23
2  
@noskio, That is certainly the case for vars() with no parameters as this returns locals(). Attempting to change locals() does not work. However there seems to be a contradiction with the builtin docs saying that vars(obj) is equivalent to obj.__dict__ as obj.__dict__ can be modified. –  gnibbler Dec 15 '09 at 7:01

Don't Do This.

Please.

Use __init__ to provide default values. Please. That's the Pythonic way.

class Foo( object ):
    def __init__( self ):
        self.bar = 'bah'

This is the normal, standard, typical approach. There's no compelling reason to do otherwise.

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You're right. Shame on me :-) I should just go fix the init function. –  Ross Rogers Dec 15 '09 at 17:33
    
@Ross Rogers: Please do. –  S.Lott Dec 15 '09 at 18:23
    
There might very well be reasons to do what was asked for, e.g. caching temporary results in properties, which you only need, when the attribute is actually read. Besides that, what you're doing in your example should better be a plain class variable bar. What you're doing ist just bloating every single object without reason. –  Michael Jan 7 '13 at 16:32
    
In most cases this is correct, but there are exceptions. For example, when writing descriptors many folks choose to put relevant data as attributes (with name mangling!) on the instances managed by the descriptor. –  DanielSank Nov 2 at 17:19

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