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I'd like to point to a function that does nothing:

def identity(*args)
    return args

my use case is something like this

try:
    gettext.find(...)
    ...
    _ = gettext.gettext
else:
    _ = identity

Of course, I could use the identity defined above, but a built-in would certainly run faster (and avoid bugs introduced by my own).

Apparently, map and filter use None for the identity, but this is specific to their implementations.

>>> _=None
>>> _("hello")
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
TypeError: 'NoneType' object is not callable
share|improve this question
    
What do you mean by map and filter use None for the identity? – Matt Fenwick Jan 5 '12 at 18:53
3  
@MattFenwick: map(None, [1, 2, 3]) – Greg Hewgill Jan 5 '12 at 18:55
1  
Check out the return value. Your args variable will be a sequence of (in this scenario) one value, so either omit the asterisk in the declaration, or unpack it befor returning. – Dirk Jan 5 '12 at 18:56
2  
@GregHewgill: Sadly, that doesn't work in Python 3.x. – Ethan Furman Jan 5 '12 at 19:59
    
@EthanFurman: Thanks, good to know, I didn't try it there. – Greg Hewgill Jan 5 '12 at 20:00
up vote 36 down vote accepted

Doing some more research, there is none, a feature was asked in issue 1673203 And from Raymond Hettinger said there won't be:

Better to let people write their own trivial pass-throughs and think about the signature and time costs.

So a better way to do it is actually (a lambda avoids naming the function):

_ = lambda *args: args
  • advantage: takes any number of parameters
  • disadvantage: the result is a boxed version of the parameters

OR

_ = lambda x: x
  • advantage: doesn't change the type of the parameter
  • takes exactly 1 positional parameter
share|improve this answer
8  
Note that this is not an identity function. – Marcin Jan 5 '12 at 19:06
2  
Nice answer. However, what would a true identity function return when taking multiple parameters? – Marcin Jan 5 '12 at 19:30
1  
@EthanFurman: That is the behaviour that is already available. One presumes that @ rds wants something else. – Marcin Jan 5 '12 at 22:02
2  
@Marcin: Neither, just going by what he asked in his question. – Ethan Furman Jan 5 '12 at 22:48
3  
Yes thanks, I have a trivial lambda x: x identity function that works for one string parameter. @Marcin I wish I could do lambda *args: *args :-) – rds Jan 6 '12 at 0:01

No, there isn't a built-in identity function, but writing one that behaves appropriately for both single and multiple inputs is not difficult:

def identity(*args):
    if len(args) == 1:
        return args[0]
    return args

And in use:

>>> identity(4)
4          # passed in a single object, got that object back
>>> identity(4, 5, 6)
(4, 5, 6)  # passed in several objects, got those same objects back

While you might argue that the second result is a tuple, and you didn't pass a tuple into the identity function, you should also realize that tuples are how Python passes groups of objects around as a single entity, and in use is what you would want:

>>> params = 5
>>> params
5
>>> params = identity(params)
>>> params
5

>>> params = 5, 6, 7
>>> params
(5, 6, 7)
>>> params = identity(params)
>>> params
(5, 6, 7)
>>> params = identity(*params)
>>> params
(5, 6, 7)

rds' versions will either:

  • always return a tuple, even when unnecessary; or
  • fail when given multiple arguments

rds' first version (no name, assigned to _):

>>> _ = lambda *args: args
>>> _(3)
(3, )  # passed in an integer, got back a tuple

rds' second version (also no name, also assigned to _):

>>> _ = lambda x: x
>>> _(3, 6 ,9)
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
TypeError: <lambda>() takes exactly 1 argument (3 given)
share|improve this answer
    
can you please tell me how does the [result] = identity(3) work. – andy Mar 14 '14 at 7:07
1  
equivalent to: _ = lambda *args: args[0] if len(args) == 1 else args – gaborous Aug 12 '14 at 2:29
    
No it's not. If you pass a string, it'll return the first character always. – Vitali Oct 17 '14 at 5:14
1  
@Vitali: What are you responding to? The final identity function handles strings correctly. – Ethan Furman Oct 17 '14 at 5:20
    
I'm replying to gaborous I think. – Vitali Apr 10 '15 at 0:44

yours will work fine. When the number of parameters is fix you can use an anonymous function like this:

lambda x: x
share|improve this answer
2  
You can do this with varargs too: lambda *args: args. It's really a stylistic choice. – delnan Jan 5 '12 at 18:57
    
I like the second better, since it takes any number of arguments. – rds Jan 5 '12 at 18:59
2  
@delnan @rds - the *args version has a different return type, so they are not equivalent even for the single-argument case. – Marcin Jan 5 '12 at 19:00
3  
@delnan: You said that it's a stylistic choice, which incorrectly implies that there is no difference in the semantics of the two forms. – Marcin Jan 5 '12 at 19:04
1  
@Marcin: It's unfortunate if I implied that. I meant the choice between def and lambda for such simple functions. – delnan Jan 5 '12 at 19:31

No, there isn't.

Note that your identity:

  1. is equivalent to lambda *args: args
  2. Will box its args - i.e.

    In [6]: id = lambda *args: args
    
    In [7]: id(3)
    Out[7]: (3,)
    

So, you may want to use lambda arg: arg if you want a true identity function.

share|improve this answer

The thread is pretty old. But still wanted to post this.

It is possible to build an identity method for both arguments and objects. In the example below, ObjOut is an identity for ObjIn. All other examples above haven't dealt with dict **kwargs.

class test(object):
    def __init__(self,*args,**kwargs):
        self.args = args
        self.kwargs = kwargs
    def identity (self):
        return self

objIn=test('arg-1','arg-2','arg-3','arg-n',key1=1,key2=2,key3=3,keyn='n')
objOut=objIn.identity()
print('args=',objOut.args,'kwargs=',objOut.kwargs)

#If you want just the arguments to be printed...
print(test('arg-1','arg-2','arg-3','arg-n',key1=1,key2=2,key3=3,keyn='n').identity().args)
print(test('arg-1','arg-2','arg-3','arg-n',key1=1,key2=2,key3=3,keyn='n').identity().kwargs)

$ py test.py
args= ('arg-1', 'arg-2', 'arg-3', 'arg-n') kwargs= {'key1': 1, 'keyn': 'n', 'key2': 2, 'key3': 3}
('arg-1', 'arg-2', 'arg-3', 'arg-n')
{'key1': 1, 'keyn': 'n', 'key2': 2, 'key3': 3}
share|improve this answer
    
this looks like a reference, if so, then where is it from? – Jeff Puckett II Apr 28 at 19:16
    
@JeffPuckettII I didn't follow your question. Are you asking if the new object is a reference? – Sud Apr 28 at 21:52
    
you used a blockquote highlight for "It is possible to build an identity..." which implies a reference from another source. If these are your own words, then I would suggest not highlighting it as a quote. really not a big deal. but if this is a quote from another source, then you should include a reference to it. – Jeff Puckett II Apr 28 at 22:01
1  
Ok. Done....... – Sud Apr 28 at 22:27
    
How do you answer the original question map(identity, [1, 2, 3]) returns [1, 2, 3]? – rds May 11 at 22:52

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