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I have a bot in python that allows the users to evaluate mathematical expressions (via a set of safe functions), but I would like to define my own operator. Does python support such a thing?

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5 Answers 5

up vote 13 down vote accepted

No, you can't create new operators. However, if you are just evaluating expressions, you could process the string yourself and calculate the results of the new operators.

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2  
That will probably be my workaround, yes. –  Adi May 31 '09 at 16:09

While technically you cannot define new operators in Python, this clever hack works around this limitation. It allows you to define infix operators like this:

# simple multiplication
x=Infix(lambda x,y: x*y)
print 2 |x| 4
# => 8

# class checking
isa=Infix(lambda x,y: x.__class__==y.__class__)
print [1,2,3] |isa| []
print [1,2,3] <<isa>> []
# => True
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2  
+1 That hack is pretty cool, but I don't think it will work in this situation. –  Zifre May 31 '09 at 18:22
4  
A nice hack and I'm going to give you +1 for it. –  Adi Jun 1 '09 at 7:31
4  
It might be an intersting hack but i don't think that this is good solution. Python does not allow to create own operators, a design decision which was made for a good reason and you should accept it instead of seeing this as a problem and inventing ways around it. It is not a good idea to fight against the language you are writing the code in. If you really want to you should use a different language. –  DasIch Jun 1 '09 at 22:24
24  
@DasIch I couldn't disagree more. We're not all free to chose a language deliberately. On the other side, I don't see why I should settle with anybody else's design decisions if I'm not satisfied. - Excellent hack indeed! –  ThomasH Sep 15 '10 at 17:10
    
+1 For a very cool hack, but my question was more about whether defining my own operators is a feature in Python or not, not whether it's possible to fake having new operators, and it would seem the answer is no, you can't define new operators. Although this does come pretty darn close. –  ArtOfWarfare Jun 12 at 14:25

no, python comes with a predefined, yet overridable, set of operators.

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9  
+1 for link to the docs. –  Kiv May 31 '09 at 18:42
9  
+1 for noting the benefit of linking to the docs –  mindthief Nov 12 '10 at 10:20
9  
+1 for noting the benefit of noting the benefit of linking to the docs –  jrdioko Oct 7 '11 at 18:41
2  
@Inversus - No. –  ArtOfWarfare Jun 12 at 14:19
1  
+1 for noting the benefit of not taking a joke too far. –  Inversus Jun 15 at 5:32

If you intend to apply the operation on a particular class of objects, you could just override the operator that matches your function the closest... for instance, overriding __eq__() will override the == operator to return whatever you want. This works for almost all the operators.

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Sage provides this functionality, essentially using the "clever hack" described by @Ayman Hourieh, but incorporated into a module as a decorator to give a cleaner appearance and additional functionality – you can choose the operator to overload and therefore the order of evaluation.

from sage.misc.decorators import infix_operator

@infix_operator('multiply')
def dot(a,b):
    return a.dot_product(b)
u=vector([1,2,3])
v=vector([5,4,3])
print(u *dot* v)
# => 22

@infix_operator('or')
def plus(x,y):
    return x*y
print(2 |plus| 4)
# => 6

See the Sage documentation and this enhancement tracking ticket for more information.

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