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CODE

char *pcs = "\e[1;34m%d\e[0m";
int main()
{
    printf(pcs,12313213);
    return 0;
}

OUTPUT

12313213 in blue

I want to printf 2 number in blue. something like --->

printf(pcs+pcs,12313213,999); //(does not work)

Can someone guide me on this.

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4 Answers 4

up vote 1 down vote accepted

The statement pcs+pcs adds two pointers. The result is a pointer that points somewhere completely unrelated which will almost certainly crash your program. The right way to do what you want is to either change the format string to accept two numbers:

char *pcs = "\e[1;34m%d%d\e[0m";

or make the format string a macro and use it two times:

#define pcs "\e[1;34m%d\e[0m"
printf(pcs pcs,12313213,999); 

Note that there is no comma between the two macro instantiations.

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I did try this but wasnt working. Now when i try this again , it works. "GHOST CODE" –  Ansh David Feb 14 '14 at 8:47

pcs is a pointer... with pcs+pcs you double the address... you can call twice printf:

printf(pcs,12313213);
printf(pcs,999);

You can also split the color changing pattern in a mask:

char *COLOR = "\e[1;34m";
char *ENDN = "\e[0m";
int main()
{
   printf("%s%d%s %s%d%s", COLOR, 12313213, ENDN, COLOR, 999, ENDN);
   return 0;
}
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I want to do in a single printf statement. Is it possible?? –  Ansh David Feb 14 '14 at 8:36
1  
A colorprintf function would be nice: cprintf(color, mask, params...) –  nmenezes Feb 14 '14 at 8:39

Try adding one more %d in the value of pcs i.e. char *pcs = "\e[1;34m%d %d\e[0m";

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just use

printf("\e[1;34m%d\e[0m \e[1;34m%d\e[0m",12313213,999);
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