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i am trying to create a function where when i call the function it prompts the user to enter an integer and returns whether it is even or odd. i am trying to make it so that my code prints an error to the console when nothing is entered or when a string is entered, i have gotten it to the point whereby if i enter a number it returns number, "is an even number" if it is even and number, "is not an even number" if it is not even here is my code below i am using python 2.7.3

def is_even():
    x = int(raw_input("Enter number"))
    if x % 2 == 0:
        return x, "is an even number"
    else:
        return x, "is not an even number"

print is_even()
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I'm reasonably sure this code would print an error if one tried to enter a non-number, although this may not be what you are looking for. –  Quirliom Apr 7 '13 at 21:39
    
Just saying, wouldn't you want to return it as a one string, not a tuple (return x, 'is not an even number' returns two elements, not them combined). You might want to use return '{} is not an even number'.format(x). –  F3AR3DLEGEND Apr 7 '13 at 22:47
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2 Answers

You should use a try-except block:

def is_even():
    try:
        x = int(raw_input("Enter an integer: "))  # 'number' != 'integer'
        if x % 2 == 0:
            return x, "is an even number"
        else:
            return x, "is not an even number"
    except ValueError:
        return "Error: You didn't enter an integer!"

A ValueError will be raised if the input cannot be parsed as an integer on the line x = int(...), in which case we reach the bottom return statement.

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You can use the isdigit() method before casting to int:

def is_even():
    x = raw_input("Enter number")
    if x.isdigit():
        if int(x) % 2 == 0:
            return x, "is an even number"
        else:
            return x, "is not an even number"
    else:
        return x, "is not an int"
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1  
What about negative integers? –  DSM Apr 7 '13 at 21:55
    
@DSM True, to be honest I haven't thought about that. I suppose x.startswith("-") and x[1:].isdigit() can solve that; however my solution is just an alternative to @A.R.S.'s one, which I also think that is better than mine's. –  A. Rodas Apr 7 '13 at 22:00
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