1

This question already has an answer here:

#include <stdio.h>

int main()
{
  int val;

  printf("blah%p%nblah", &val, &val);

  printf("val = %d\n", val);

  return 0;

}

This demo program is complied on 32-bit machine. I think val should be 8. But I got this:

$ ./a.out
blah0xffa9b6fcblahval = 14

Why 14? blah is 4 chars. A pointer in IA32 should be 4 bytes. %n prints nothing.

marked as duplicate by Lundin c Jul 3 '15 at 14:12

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • 1
    Closing this as duplicate as the code seems to be taken from that answer, which in turn already answers this question. – Lundin Jul 3 '15 at 14:13
3

Please count the number of printed characters, they are 14.

The value stored in the variable int pointer the "%n" specifier is the number of characters printed prior to the occurrance of the "%n" specifier, there are 10 for the poitner address and 4 for blah.

blah0xffa9b6fc /* these are exactly 14 characters
  ^      ^
  %s     %p
*/
3

Just to support what Mr. Iharob said in his answer,

Quoting from C11, chapter §7.21.6.1, fprintf(), (emphasis mine)

n

The argument shall be a pointer to signed integer into which is written the number of characters written to the output stream so far by this call to fprintf. No argument is converted, but one is consumed. If the conversion specification includes any flags, a field width, or a precision, the behavior is undefined.

So, it does not count the bytes in format string, rather, the actual printed bytes.

That said, the recommended signature of main() is int main(void).

0

This output string (before format specifier %n will be encountered)

blah0xffa9b6fc

contains exactly 14 symbols. The reason for val contains 14 is that format specifier %p outputs addresses in the hexadecimal notation

0xffa9b6fc

And indeed in your platform pointers have size of 4 bytes.:)

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