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This code does not work. Please tell what the error is....

class Error(Exception):
    def __init__(self,mssg):
        self.mssg = mssg

class InputError(Error):
    def __init__(self,val):
        super("Input Error")
        print val

Now I write in other part of my program

a = raw_input("Enter a number from 0-9: ")
if (ord(a)>47 and ord(a)<58):
    pass
else:
    raise InputError(a)

Now when I pass 'a' I get super expected a type but got a string I just want to pass that message to the base class and display it along with the wrong value.

What am I doing wrong here

share|improve this question
up vote 1 down vote accepted

The problem is that you're using super() incorrectly. The proper way is:

class InputError(Error):
    def __init__(self, val):
        super(InputError, self).__init__(val)
        print val
share|improve this answer
    
Thanks a lot although now super does seem trickier :) – user506710 Dec 16 '10 at 15:02
1  
It seems tricker, but it follows with other Python idioms. Just as methods require you to explicitly pass self (which is the current instance), super requires you to explicitly pass in the current class. – brildum Dec 16 '10 at 16:05

super() is used to access methods of a superclass that have been overridden in the subclass, not to instantiate the superclass with arguments.

What you appear to be trying to do is something like:

class InputError(Error):
    def __init__(self,val):
        super(InputError).__init__("Input Error")
        print val

although this isn't necessarily a good idea.

share|improve this answer
    
Please tell how do you do it then.... lets say that there is a variable in base class and since it is common to all you want to just pass the value from the subclass what do you do?? – user506710 Dec 16 '10 at 14:57

super is supposed to be called like this:

class InputError(Error):
    def __init__(self,val):
        super(InputError, self).__init__("Input Error")
        print val
share|improve this answer

super is a python builtin which takes the type of an object as its argument, not some (arbitrary) string, as you seem to have done. You probably mean

 super(InputError, self).__init__("Input Error")

[In Python 3.x, this can just be super().__init__("Input Error")]

Note that because of the name of your exception is already InputError, it's not clear what the string message adds to it...

See this question and the python docs.

share|improve this answer
    
So doesn't this change work? – Andrew Jaffe Dec 16 '10 at 15:15
    
Yes It does .... Thanks a lot and I was referring to your saying that I am passing "Input Error" – user506710 Dec 16 '10 at 15:38

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