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How to print % using printf()?

Here is the standard prototype of printf function in C:

int printf(const char *format, ...);

The format string is composed of zero or more directives: ordinary characters (not %), which are copied unchanged to the output stream; and conversion specifications, each of argument (and it is an error if insufficiently many arguments are given). 



The character % is followed by one of the following characters. 

Check this for details of all the above characters. The main thing to note in the standard is the below line about conversion specifier.



A '%' is written. No argument is converted. The complete conversion specification is'%%'.

So we can print “%” using “%%” 




/* Program to print %*/
#include <stdio.h>
int main()
{
   printf("%%");
   getchar();
   return 0;
}
 





                        








Output

%


We can also print “%” using below. 


printf(“%c”, ‘%’);
printf(“%s”, “%”);


	

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