1

Pretty much what it says up there.

Basically, how do I get the string produced by

print "%05d" % 100
11

Maybe I'm misinterpreting the question, but this should work:

my_string = "%05d" % 100
  • 2
    Huh. Assumed that was part of the args to print. Nope. God, it's a beautiful language. – deworde Aug 26 '10 at 17:50
  • @deworde: It's even better if you read through a tutorial. Seriously. What tutorial are you using? – S.Lott Aug 26 '10 at 18:41
  • @S.Lott I'm looking at docs.python.org/tutorial/introduction.html#strings right now. And that doesn't tell you it's in there, and when it gives you an example in the reference notes, always uses print. – deworde Aug 27 '10 at 8:20
  • @deworde: Thanks. There's a "See Also" section that's relevant. You might want to use diveintopython.org/native_data_types/formatting_strings.html instead. – S.Lott Aug 27 '10 at 10:24
  • @S.Lott Yes, that would be the reference notes I referred to, but as I said, always uses print in the examples. Also, they're, as usual, in a style that means you have to know what you're looking for before you start looking. My favourite line, "The effect is similar to the using sprintf() in the C language". I mean technically, that should have been helpful, but it does rather make an assumption. – deworde Aug 27 '10 at 13:49
1

Use str.zfill(width)

1

This should work too:

`100`.zfill(5)
1
print('{0:0=5d}'.format(100))
# 00100


    use the 0th positional argument to format
   /  fill character is '0'
  /  / desired width of formatted string
 /  / /
{0:0=5d}

For more, see the docs.

1
i = 100
str(i).zfill(5)
0

If you're using Python 3, the str.format method is preferred. It was introduced in Python 2.6. (Alas, my work system is at 2.4 (and I'm not permitted to upgrade), so I can't construct and test an example.)

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