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Generally when we do something like:

printf ( " %.*f ", 2, 3.3 );

the precision width is being set to 2 and outputs 3.30. But what if the width is given the negative value, e.g.

printf ( " %.*f ", -2, 3.3 );

The output is 3.300000 which means the default width is being used. So what exactly is this -2 doing here ?

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4  
According to this, it's ignored: If the value of this argument is negative, it is ignored. –  chris Aug 15 '12 at 14:47
    
Huh. I got something completely different from linux.die.net/man/3/printf –  Dennis Meng Aug 15 '12 at 14:49
    
Welp, manpagez.com/man/3/printf also says it's ignored. –  Dennis Meng Aug 15 '12 at 14:51
    
Whenever you have a simple question like this why not just try it? Sites like codepad.org are good for this kind of thing. –  Paul R Sep 9 '12 at 18:54
    
@PaulR_ Dont you think these kind of small ( and simple to you ) doubts can only come when one does try it. P.S. I have my own compiler where I do try these simple things. –  cirronimbo Sep 9 '12 at 19:18

3 Answers 3

up vote 3 down vote accepted

As Chris commented similarly above,

A negative precision is taken as if the precision were omitted

Here's a reference.

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1  
§7.21.6.1/5 if anyone's interested (at least in the C11 one). I was just looking that up myself. –  chris Aug 15 '12 at 14:50

A negative precision is taken as if the precision were omitted.

Source: C99 7.19.6.1 (HTML version at http://port70.net/~nsz/c/c99/n1256.html#7.19.6.1)

Or from POSIX (more readable): http://pubs.opengroup.org/onlinepubs/9699919799/functions/printf.html

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Late C11 standard draft says (7.21.6.1):

A negative precision argument is taken as if the precision were omitted.

(Yes, it's for fprintf, and this is what the draft says of printf (7.21.6.3):)

The printf function is equivalent to fprintf with the argument stdout interposed before the arguments to printf.

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