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Is it possible to have overloaded functions in Python? In C# I would do something like

void myfunction (int first, string second)
{
//some code
}
void myfunction (int first, string second , float third)
{
//some different code
}
// This maybe a little off, I haven't coded C# in a couple years

and then when I call the function it would differentiate between the two based on the number of arguments. Is it possible to do something similar in Python?

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This seems to be a possible duplicate post. Also please don't flag as C# as the question doesn't have to do with C#. function-overloading-in-python-missing –  Jethro Aug 18 '11 at 19:34
    
possible duplicate of Function overloading in Python: Missing –  Li0liQ Aug 18 '11 at 19:35

3 Answers 3

up vote 34 down vote accepted

EDIT For the new single dispatch generic functions in Python 3.4, see http://www.python.org/dev/peps/pep-0443/

You generally don't need to overload functions in Python. Python is dynamically typed, and supports optional arguments to functions.

def myfunction(first, second, third = None):
    if third is None:
        #just use first and second
    else:
        #use all three

myfunction(1, 2) # third will be None, so enter the 'if' clause
myfunction(3, 4, 5) # third isn't None, it's 5, so enter the 'else' clause
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Perfect! This will function exactly as I need. –  Trcx Aug 18 '11 at 20:02
    
But note that calling different functions based on the type of the arguments is much more difficult (although not impossible). –  Andrew Jaffe Sep 5 '11 at 13:37
    
Well, there is a difference between overloading/polymorphism and conditionals. Do you mean that we do not need the polymorphysm since we have the conditionals? –  Val Oct 15 '13 at 11:02
    
@Val I'm saying, basically, that in a dynamically typed language you don't need overloading as a language feature because you can trivially emulate it in code, and so can get polymorphism that way. –  agf Oct 15 '13 at 16:04
    
I do not see how dynamic linking answers my question. Now, since java is statically typed, you say that in cannot have the optional arguments. I do not understand this also. –  Val Oct 15 '13 at 16:58

in normal python you can't do what you want. there are two close approximations:

def myfunction(first, second, *args):
    # args is a tuple of extra arguments

def myfunction(first, second, third=None):
    # third is optional

however, if you really want to do this, you can certainly make it work (at the risk of offending the traditionalists ;o). in short, you would write a wrapper(*args) function that checks the number of arguments and delegates as appropriate. this kind of "hack" is usually done via decorators. in this case you could achieve something like:

@overload
def myfunction(first):
    ....

@myfunction.overload
def myfunction(first, second):
    ....

@myfunction.overload
def myfunction(first, second, third):
    ....

and you'd implement this by making the overload(first_fn) function (or constructor) return a callable object where the __call__(*args) method does the delegation explained above and the overload(another_fn) method adds extra functions that can be delegated to.

you can see an example of something similar here http://acooke.org/pytyp/pytyp.spec.dispatch.html but that is overloading methods by type. it's a very similar approach...

UPDATE: and something similar (using argument types) is being added to python 3 - http://www.python.org/dev/peps/pep-0443/

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Not possible directly. You can use explicit type checks on the arguments given though, although this is generally frowned upon.

Python is dynamic. If you are unsure what an object can do, just try: and call a method on it, then except: errors.

If you don't need to overload based on types but just on number of arguments, use keyword arguments.

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1  
I don't think he knew about optional arguments. –  agf Aug 18 '11 at 19:37

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