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In order to determine the size of the column in C language we use %<number>d. For instance, I can type %3d and it will give me a column of width=3. My problem is that my number after the % is a variable that I receive, so I need something like %xd (where x is the integer variable I received sometime before in my program). But it's not working.

Is there any other way to do this?

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In general, instead of "not working" you should copy-paste the exact error message you received. –  luser droog Aug 19 '11 at 4:29

2 Answers 2

up vote 25 down vote accepted
printf('%*d', width, value);

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THANKS BUDDY!!!! –  Alaa M. Aug 18 '11 at 10:29
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You can also use a * for the precision size: printf('%*.*f', width, precision, value); –  Lee Netherton Aug 18 '11 at 10:34
    
Cool, didn't knew that construct! –  Petr Abdulin Aug 18 '11 at 10:56
    
That should be "%*d" –  Jim Balter Mar 2 at 20:16

Just for completeness, wanted to mention that with POSIX-compliant versions of printf() you can also put the actual field width (or precision) value somewhere else in the parameter list and refer to it using the 1-based parameter number followed by a dollar sign:

A field width or precision, or both, may be indicated by an asterisk ‘∗’ or an asterisk followed by one or more decimal digits and a ‘$’ instead of a digit string. In this case, an int argument supplies the field width or precision. A negative field width is treated as a left adjustment flag followed by a positive field width; a negative precision is treated as though it were missing. If a single format directive mixes positional (nn$) and non-positional arguments, the results are undefined.

E.g., printf ( "%1$*d", width, value );

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Your example doesn't fit the language. It should be "%*1$d" –  Jim Balter Mar 2 at 20:18
    
Furthermore, you should specify both argument by means of n$, like so: printf("%2$*1$d", width, value);. –  Neftas Aug 7 at 11:26

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