5

I want to print "%SomeString%" in C.

Is this correct?

printf("%%s%",SomeString);
21

No, %% outputs %, so the right syntax is:

printf("%%%s%%",string);
0
8

No.

Use %%%s%%

1
  • explanation: %% escapes to a % character. %s is a control code. – Pavel Radzivilovsky Jun 15 '10 at 6:32
5
printf("%%%s%%", string);

Should output a % each side.

3

This solution absolves you from knowing how special printf characters like '%' or '\' should be printed.

#include <stdio.h>

int main(void)
{
    const char str[]="MyString";
    printf("%c%s%c",'%',str,'%');
    return 0;
}
4
  • 1
    Isn't that a bit overkilling? printf has an appropriate escape charachter for % so why not using it? If the problem is remembering it... well, it's just a Google search away. – nico Jun 15 '10 at 6:49
  • Don't get me wrong, I wouldn't use this if I knew the %% or \\ sequences but it's still good to know in my opinion. – INS Jun 15 '10 at 6:57
  • 3
    Yeah, its good to realize you can do this. I think it would help people understand what printf is doing. But don't do it in production. :) – BobbyShaftoe Jun 15 '10 at 23:10
  • @BobbyShaftoe you are correct - it pushes more elements that it should on the stack, it keeps memory occupied with the parameters ('%', '%'are constants that must be held in memory before being pushed on the stack for the *printf functions) – INS Jun 16 '10 at 8:12
0

You can print a string like this: printf("%s", SomeString);

It should work!

2
  • The point was to output % sign at left and at right of the formatted string. – bezmax Jun 15 '10 at 6:32
  • Oh ok, thought he made a mistake in the post! – Daniel Jun 15 '10 at 6:34
-1

Try %%%s%%

printf("%%%s%%",yourstring);

The output will be in the format %yourstring%.

Inside the printf(), %% is equal to printing %

Explanation: Characters like , % etc. are used for some other purposes. So, in order to print them, add the same character once more i.e. if you want to display a single '%', make it '%%' in the printf.

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