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I executed the following code:

import sys


print x;

if x > 1:
    print "It's greater than 1"

and here is the output:

C:\Python27>python 0
It's greater than 1

How the hell it's greater than 1? in fact the if condition should fail, is there any fault with my code?

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replace 'print x' with 'print x + 1', and you'll understand! –  jimifiki Feb 4 '12 at 7:37
@Nitesh: Welcome to SO. Please "accept" one of the correct answers by clicking the "check mark" at the left of the answer. –  Jim Garrison Feb 4 '12 at 7:44

3 Answers 3

up vote 5 down vote accepted

Because type of x in x=sys.argv[1] is str.

import sys
x = sys.argv[1]
print type(x)

Output =<type 'str'>

So in python,

>>> '0'>1

Therefore you need

>>> int('0')>1
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Thanks RanRang.. –  nida8191 Feb 4 '12 at 7:41
@NitheshReddy: Welcome –  RanRag Feb 4 '12 at 7:41

x is a string but 1 is an integer, so the comparison is of mismatched types. You need something like if int(x) > 1:.

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oh awesome, thanks. I'm a beginner just started to learn python –  nida8191 Feb 4 '12 at 7:33

This is testing x (a string). try using:

if int(x) > 1: 
     print "It's greater than 1"

I got curious about this and found:

How does Python compare string and int?

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Thanks a lot Guys.. –  nida8191 Feb 4 '12 at 7:37

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