115

What is the use of the %n format specifier in C? Could anyone explain with an example?

  • 21
    What has become of the fine art of reading the fine manual? – Jens Jun 21 '14 at 11:41
  • 7
    I think the real question is what is the POINT of the an option like this? why would anyone want to know the value of the numbers of char printed much less write that value directly to memory. It was like the developers were bored and decided to introduce a bug into the kernal – jia chen Feb 9 '18 at 1:31
  • That's why Bionic let go of it. – Solidak Sep 4 '18 at 15:24

10 Answers 10

141

Nothing printed. The argument must be a pointer to a signed int, where the number of characters written so far is stored.

#include <stdio.h>

int main()
{
  int val;

  printf("blah %n blah\n", &val);

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

  return 0;

}

The previous code prints:

blah  blah
val = 5
  • 3
    Will give +1 if you add example code. – Merlyn Morgan-Graham Aug 3 '10 at 22:16
  • 1
    You mention that the argument must be a pointer to a signed int, then you used an unsigned int in your example (probably just a typo). – bta Aug 3 '10 at 22:21
  • 1
    @AndrewS: Because the function will modify the value of the variable. – Jack Jun 20 '14 at 0:31
  • 2
    @Jack int is always signed. – jamesdlin Jun 20 '14 at 18:17
  • 1
    @jamesdlin: My mistake. I'm sorry.. I didn't know where I read that. – Jack Jun 20 '14 at 18:22
176

Most of these answers explain what %n does (which is to print nothing and to write the number of characters printed thus far to an int variable), but so far no one has really given an example of what use it has. Here is one:

int n;
printf("%s: %nFoo\n", "hello", &n);
printf("%*sBar\n", n, "");

will print:

hello: Foo
       Bar

with Foo and Bar aligned. (It's trivial to do that without using %n for this particular example, and in general one always could break up that first printf call:

int n = printf("%s: ", "hello");
printf("Foo\n");
printf("%*sBar\n", n, "");

Whether the slightly added convenience is worth using something esoteric like %n (and possibly introducing errors) is open to debate.)

  • 3
    Oh my - this is a character-based version of computing the pixel size of string in a given font! – Arkadiy Aug 4 '10 at 12:41
  • Could you explain why &n and *s are needed. Are they both pointers? – Andrew S Jan 17 '14 at 1:05
  • 9
    @AndrewS &n is a pointer (& is the address-of operator); a pointer is necessary because C is pass-by-value, and without a pointer, printf could not modify the value of n. The %*s usage in the printf format string prints a %s specifier (in this case the empty string "") using a field width of n characters. An explanation of basic printf principles is basically outside the scope of this question (and answer); I'd recommend reading the printf documentation or asking your own separate question on SO. – jamesdlin Jan 17 '14 at 8:59
  • 2
    Thanks for showing a use-case. I don't understand why people just basically copy-paste the manual into SO and reword it sometimes. We're humans and everything is done for a reason which should always be explained in an answer. "Does nothing" is like saying "The word cool means cool" - almost useless knowledge. – the_endian Jan 25 '17 at 20:59
  • 1
    @PSkocik It's convoluted and error-prone enough without adding an extra level of indirection. – jamesdlin Jun 24 at 15:22
17

I haven't really seen many practical real world uses of the %n specifier, but I remember that it was used in oldschool printf vulnerabilities with a format string attack quite a while back.

Something that went like this

void authorizeUser( char * username, char * password){

    ...code here setting authorized to false...
    printf(username);

    if ( authorized ) {
         giveControl(username);
    }
}

where a malicious user could take advantage of the username parameter getting passed into printf as the format string and use a combination of %d, %c or w/e to go through the call stack and then modify the variable authorized to a true value.

Yeah it's an esoteric use, but always useful to know when writing a daemon to avoid security holes? :D

  • 7
    printf(username) is asking for format string attack. – Nyan Aug 5 '10 at 11:12
  • 5
    Well yeah, that's the point :P – Xzhsh Aug 5 '10 at 17:24
  • 1
    There are more reasons than %n to avoid using an unchecked input string as a printf format string. – Keith Thompson Jun 20 '14 at 0:44
13

From here we see that it stores the number of characters printed so far.

n The argument shall be a pointer to an integer into which is written the number of bytes written to the output so far by this call to one of the fprintf() functions. No argument is converted.

An example usage would be:

int n_chars = 0;
printf("Hello, World%n", &n_chars);

n_chars would then have a value of 12.

9

The argument associated with the %n will be treated as a int* and filled with the number of total characters printed at that point in the printf.

8

So far all the answers are about that %n does, but not why anyone would want it in the first place. I find it's somewhat useful with sprintf/snprintf, when you might need to later break up or modify the resulting string, since the value stored is an array index into the resulting string. This application is a lot more useful, however, with sscanf, especially since functions in the scanf family don't return the number of chars processed but the number of fields.

Another really hackish use is getting a pseudo-log10 for free at the same time while printing a number as part of another operation.

  • +1 for mentioning uses for %n, although I beg to differ about "all the answers...". =P – jamesdlin Aug 4 '10 at 17:25
  • 1
    The bad guys thank you for your use of printf/%n, sprintf, and sscanf ;) – jww Jul 9 '13 at 4:00
  • 6
    @noloader: How so? Use of %n has absolutely zero danger of vulnerability to an attacker. The misplaced infamy of %n really belongs on the stupid practice of passing a message string rather than a format string as the format argument. This situation of course never arises when %n is actually part of an intentional format string being used. – R.. Jul 9 '13 at 4:06
  • %n allows you to write to memory. I think you are assuming that the attacker does not control that pointer (I could be wrong). If the attacker controls the pointer (it just another parameter to printf), he/she could perform a write of 4 bytes. Whether he/she can profit is a different story. – jww Jul 9 '13 at 5:00
  • 7
    @noloader: That's true about any use of pointers. Nobody says "bad guys thank you" for writing *p = f();. Why should %n, which is just another way of writing a result to the object pointed to by a pointer, be considered "dangerous", rather than considering the pointer itself dangerous? – R.. Jul 9 '13 at 5:47
6

The other day I found myself in a situation where %n would nicely solve my problem. Unlike my earlier answer, in this case, I cannot devise a good alternative.

I have a GUI control that displays some specified text. This control can display part of that text in bold (or in italics, or underlined, etc.), and I can specify which part by specifying starting and ending character indices.

In my case, I am generating the text to the control with snprintf, and I'd like one of the substitutions to be made bold. Finding the starting and ending indices to this substitution is non-trivial because:

  • The string contains multiple substitutions, and one of the substitutions is arbitrary, user-specified text. This means that doing a textual search for the substitution I care about is potentially ambiguous.

  • The format string might be localized, and it might use the $ POSIX extension for positional format specifiers. Therefore searching the original format string for the format specifiers themselves is non-trivial.

  • The localization aspect also means that I cannot easily break up the format string into multiple calls to snprintf.

Therefore the most straightforward way to find the indices around a particular substitution would be to do:

char buf[256];
int start;
int end;

snprintf(buf, sizeof buf,
         "blah blah %s %f yada yada %n%s%n yakety yak",
         someUserSpecifiedString,
         someFloat,
         &start, boldString, &end);
control->set_text(buf);
control->set_bold(start, end);
  • I'll give you +1 for the use case. But you are going to fail an audit, so you should probably devise another way to mark the begin and end of the bold text. It seems like three snprintf while checking return values will work just fine since snprintf returns the number of characters written. Maybe something like: int begin = snprintf(..., "blah blah %s %f yada yada", ...); and int end = snprintf(..., "%s", ...); and then the tail: snprintf(..., "blah blah");. – jww Jun 10 '17 at 4:24
  • 2
    @jww The problem with multiple snprintf calls is that the substitutions might be rearranged in other locales, so they cannot be broken up like that. – jamesdlin Jun 10 '17 at 6:04
  • Thanks for the example. But couldn't you, like, write an terminal control sequence to make the output bold right before the field and then write a sequence after it? If you don't hardcode the terminal control sequences, you could make them positional (reorderable) too. – PSkocik Jun 24 at 11:08
  • 1
    @PSkocik If you're outputting to a terminal. If you're working with, say, a Win32 rich-edit control, that won't help unless you want to go back and parse the terminal control sequences afterward. That also assumes that you want to honor terminal control sequences in the rest of the substituted text; if you don't, then you'd have to filter or escape those. I'm not saying it's impossible to do without %n; I'm claiming that using %n is more straightforward than alternatives. – jamesdlin Jun 24 at 15:35
1

It doesn't print anything. It is used to figure out how many characters got printed before %n appeared in the format string, and output that to the provided int:

#include <stdio.h>

int main(int argc, char* argv[])
{
    int resultOfNSpecifier = 0;
    _set_printf_count_output(1); /* Required in visual studio */
    printf("Some format string%n\n", &resultOfNSpecifier);
    printf("Count of chars before the %%n: %d\n", resultOfNSpecifier);
    return 0;
}

(Documentation for _set_printf_count_output)

1

It will store value of number of characters printed so far in that printf() function.

Example:

int a;
printf("Hello World %n \n", &a);
printf("Characters printed so far = %d",a);

The output of this program will be

Hello World
Characters printed so far = 12
  • when I try you code it gives me : Hello World Characters printed so far = 36 ,,,,, why 36 ?! I use a 32bit GCC in a windows machine. – ᔕIᑎᗩ KᗩᖇᐯᗩᑎᗪI Oct 25 '16 at 19:29
-6

%n is C99, works not with VC++.

  • 2
    %n existed in C89. It doesn't work with MSVC because Microsoft disabled it by default for security concerns; you must call _set_printf_count_output first to enable it. (See Merlyn Morgan-Graham's answer.) – jamesdlin Aug 5 '10 at 5:25
  • No, C89 defines not this feature/backdoorbug. See K&R+ANSI-C amazon.com/Programming-Language-2nd-Brian-Kernighan/dp/… ??where is the URL-tagger for comments?? – user411313 Aug 5 '10 at 12:02
  • 4
    You're simply wrong. It's listed plainly in Table B-1 (printf conversions) of Appendix B of K&R, 2nd edition. (Page 244 of my copy.) Or see section 7.9.6.1 (page 134) of the ISO C90 specification. – jamesdlin Aug 6 '10 at 8:35
  • Android also removed the %n specifier. – jww Jul 9 '13 at 4:01

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