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Newbie to python here, I am trying to use an integer as an argument for a for loop. The code I use

from sys import argv

script, numberofposts = argv
postsint = int(numberofposts)

for x in range(0,"%d" % postsint):
    print 'on time'

print "number %d" % postsint

Gives me this error -

Traceback (most recent call last):
  File "forarg.py", line 6, in <module>
    for x in range(0,"%d" % postsint):
TypeError: range() integer end argument expected, got str.

What am I doing wrong here? I assumed that it was a syntax issue but the error seems to indicate that the for loop is expecting an integer which I attempted to force as you can see.

share|improve this question
    
As the error informs you, it's not an integer. You'd be surprised how far you can get if you take the error message seriously. –  Marcin Sep 6 '12 at 19:19
    
I was confused by the documentation here - docs.python.org/library/stdtypes.html where it said d for conversion to signed integer decimal. I understand that a bit better now based on the answers below. –  moorecats Sep 6 '12 at 19:29

3 Answers 3

up vote 3 down vote accepted

for x in range(postsint): # start at beginning as mgilson suggested

should work fine. You already casted it an integer, You shouldn't be creating a string from it

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2  
Or just range(postsint) ;) –  mgilson Sep 6 '12 at 19:16

it's because "%d" is used for string formatting and it returns string only:

In [18]: type( "%d" % 3)
Out[18]: <type 'str'>

use just ,range(0,4) or xrange(0,4) if you're on python 2.x:

In [19]: range(0,4)  #0 is the default value of the first argument, so range(0,4)==range(4)
Out[19]: [0, 1, 2, 3]
share|improve this answer

You are doing a formatted string as the second param to range.

In the case that you are using you are saying start at 1 and go up to a string with the number postint in it.

This is wrong. You want to do range( 1, postint )

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thanks - you explanation helped me understand this. –  moorecats Sep 6 '12 at 20:03

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