I've seen the following line in a source code written in C:
printf("%2$d %1$d", a, b);
What does it mean?
asked Oct 11, 2013 at 21:20
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2 Answers
It's an extension to the language added by POSIX (C11-compliant behaviour should be as described in an answer by @chux). Notation %2$d means the same as %d (output signed integer), except it formats the parameter with given 1-based number (in your case it's a second parameter, b).
So, when you run the following code:
#include <stdio.h>
int main() {
int a = 3, b = 2;
printf("%2$d %1$d", a, b);
return 0;
}
you'll get 2 3 in standard output.
More info can be found on printf man pages.
answered Oct 11, 2013 at 21:20
Per the C spec C11dr 7.21.6.1
As part of a print format, the first % in "%2$d %1$d" introduces a directive. This directive may have various flags, width, precision, length modifier and finally a conversion specifier. In this case 2 is a width. The next character $ is neither a precision, length modifier nor conversion specifier. Thus since the conversion specification is invalid,
... the behavior is undefined. C11dr 7.21.6.1 9
The C spec discusses future library directions. Lower case letters may be added in the future and other characters may be used in extensions. Of course $ is not a lower case letter, so that is good for the future. It certainly fits the "other character" role as $ is not even part of the C character set.
In various *nix implementations, $ is used as describe in Linux Programmer's Manual PRINTF(3). The $, along with the preceding integer defines the argument index of the width.
answered Oct 12, 2013 at 1:28
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@Jens Gustedt Does this get close enough to the whole story? Oct 12, 2013 at 1:31
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