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I know this can seems silly if you are a code guru. But if you answer it, you'll be something like a code bodhisattva in the coder's supernatural realm. It's suppose to be a joke.

So, I wrote this bit of code:

def media():    
n = 0
soma = 0
while True:
    print("Type a number")
    num = input()
    print type(num)
    if num is int:
        soma = soma + num
        n = n + 1
        print "soma =", soma, " num = ", num, " n = ", n
        media = soma/n
        print media
    else:
        break
media()

When I run the code, I get something like this:

enter image description here

My question is: why the condition if num is int: is not fulfilled?

My goal is to make the condition "if the user types ENTER, then break".

Thanks in advance.

share|improve this question
1  
So, the correct syntax is "if isinstance(num, int)". Well, python is so beautifull simple and the form "if num is int:" seems to be so neat. What a pity! –  craftApprentice Apr 2 '13 at 13:07
3  
Note that type-checking is generally considered bad form in Python, as is using input() in 2.x - use raw_input() instead, and then use int() to try and make a number from the returned string. If it succeeds, it's a number, if an exception is thrown, it isn't. –  Lattyware Apr 2 '13 at 13:10

1 Answer 1

up vote 11 down vote accepted
if isinstance(num, int)

Would be the correct way.

if num is int

is checking whether the identity of num and int are the same, except int is a type and num is an instance of that type so they are not the same object.

share|improve this answer
1  
You deserve karma points. I see you in nirvana! –  craftApprentice Apr 2 '13 at 13:09

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