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I have the following code

#include <stdio.h>
#include <stdlib.h>

char UPC[]="123456789ABC";

main()
{
  int rc=0;

  printf("%016s\n",UPC);

  exit(rc);
}

On AIX using the xlC compiler this code prints out with leading 0's

0000123456789ABC

On Sles 11 it prints leading spaces using gcc version 4.3.2 [gcc-4_3-branch revision 141291]

123456789ABC

Is there some format specifier I could use for strings to print out with leading 0's? I know that it works for numeric types.

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Given the accepted answer… Do you not care about the trailing "ABC" in this example? –  ephemient Jan 10 '11 at 19:49
    
The accepted answer would print out the ABC as it interprets the number as hex. –  Joshua Jan 10 '11 at 21:36

7 Answers 7

up vote 4 down vote accepted

This behaviour is undefined, implementation specific (glibc, rather than gcc). It's bad practice to rely on it, IMO.

If you know for certain that your string is numeric (hexadecimal here), you could write:

 printf("%016llX\n",strtoll(UPC,NULL,16));

But be aware of errors and overflows.

Edit by original poster:

For decimal numbers use the following:

printf("%016llu\n",strtoll(UPC2,NULL,10));
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sweet... nicely done! –  ojblass Jan 10 '11 at 19:20
printf("%.*d%s", (int)(w-strlen(s)), 0, s);
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Hey, cleverer than mine. :-) –  ephemient Jan 10 '11 at 20:12

As far as printf is concerned, the effect of the 0 flag on the s conversion specifier is undefined. Are you restricted to printf?

[edit] Here's an alternative, if you'd like (most error checks missing..):

#include <stdio.h>
#include <string.h>

int main(int argc, char **argv)
{
    char    UPC[] = "1234567890ABCDEF",
        out[sizeof UPC + 12]; /* substitute size for whatever you wish here, just make sure the original string plus NUL fits */
    if(sizeof out <= sizeof UPC) {
        return -1; /* you bad, bad man */
    }

    memset(out, '0', sizeof out);
    memcpy(out + sizeof out - sizeof UPC - 1, UPC, sizeof UPC);

    printf("%s\n", out);
    return 0;
}
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The code in queston uses printf and sprintf. I guess I could write my own version of printf and sprintf that handles it the way I want to but I was hoping for something cleaner. –  ojblass Jan 10 '11 at 19:01
    
Two other answers were posted. Try one. –  Joshua Jan 10 '11 at 19:04

%0*s isn't standard. You can do your own padding though:

char buf[16];
memset(buf, '0', sizeof(buf));
printf("%.*s%s", sizeof(buf) - strlen(UPC), buf, UPC);
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doesn't quite work it prints 16 leading 0's –  ojblass Jan 10 '11 at 19:11
    
@objblass: Oops, missed a character. Fixed. –  ephemient Jan 10 '11 at 19:15

According to the printf man page, the 0 flag has undefined behavior for string arguments. You'd need to write your own code to pad out the right number of '0' characters.

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The short answer is no.

Your code, when compiled, will result in : "warning: '0' flag used with ‘%s’"

The man page for printf lists the format specifiers that may be used after a '0' flag and they are all numeric.

You could, however, create a string with the appropriate number of spaces and print that ahead of your UPC.

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 char spbuf[30];
 sprintf(spbuf, "%%.%ds%%s\n", 16 - strlen(UPC));
 printf(spbuf,"0000000000000000",UPC); /* 16 '0' characters */
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prints out %s and thats it –  ojblass Jan 10 '11 at 19:15
    
Fixed typo. Maybe it works now. –  Joshua Jan 10 '11 at 19:45
    
it does now work. –  ojblass Jan 10 '11 at 19:48
    
Don't construct format strings programmatically in place of using %.*d. Your approach works, but it involves passing a non-literal format string which raises a (hopefully false) alarm for format string vulns. –  R.. Jan 10 '11 at 19:58
    
I don't write format string vulns ever so I would have turned that warning off. Yes I have written stack overflows, heap overflows, array overflows, but never a format string vuln. I was very surprised when I learned this was a commonly exploited bug. –  Joshua Jan 10 '11 at 21:33

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