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I'm attempting to learn C and already I've run into an issue. I assume its trivial but I need to know it. I have written:

#include <stdio.h>
#include <string.h>

int main() 
{
    char str_a[20];

    strcpy(str_a, "Hello, world!\n");
    printf(str_a);
}

Once I attempt to compile it with: gcc -g -o char_array2 char_array2.c I receive an error saying:

char_array2.c: In function ‘main’:
char_array2.c:9:2: warning: format not a string literal and no format arguments [-Wformat-security]

Can anyone help please?

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6 Answers 6

up vote 14 down vote accepted

When using printf, the format string is better be a string literal and not a variable:

printf("%s", str_a);
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Just to add something to other answers, you better do this because a (long?) time ago people wrote printf like that and hackers found a way to read from and write to the stack, more here.
For example, a simple program like this:

blackbear@blackbear-laptop:~$ cat format_vul.c
#include <stdio.h>
#include <stdlib.h>
#include <string.h>

int main(int argc, char *argv[])
{
    char text[1024];
    static int test_var = -1;

    if(argc < 2) {
        printf("Use: %s <input>\n", argv[0]);
        exit(-1);
    }

    strcpy(text, argv[1]);

    printf("The correct way:\n");
    printf("%s", text);

    printf("\nThe wrong way:\n");
    printf(text);

    printf("\n[*]: test_var @ %8p = %d ( 0x%x )\n", &test_var, test_var, test_var);
}
blackbear@blackbear-laptop:~$ ./format_vul AAAA
The correct way:
AAAA
The wrong way:
AAAA
[*]: test_var @ 0x804a024 = -1 ( 0xffffffff )

Can be used to change test_var's value from 0xffffff to something else, like 0xaabbccdd:

blackbear@blackbear-laptop:~$ ./format_vul $(printf "\x24\xa0\x04\x08JUNK\x2
5\xa0\x04\x08JUNK\x26\xa0\x04\x08JUNK\x27\xa0\x04\x08").%8x.%8x.%8x.%8x.%8x.
%8x.%8x.%8x.%8x.%110x.%n%239x%n%239x%n%239x%n
The correct way:
$�JUNK%�JUNK&�JUNK'�.%8x.%8x.%8x.%8x.%8x.%8x.%8x.%8x.%8x.%110x.%n%239x%n%239
x%n%239x%n
The wrong way:
$�JUNK%�JUNK&�JUNK'�.bfffefec.  154d7c.  155d7c.  155d7c.      f0.      f0.b
ffff4a4.       4.       4.                                                  
                                                     174.                   


                                                50415243                    


                                               50415243                     


                                              50415243
[*]: test_var @ 0x804a024 = -1430532899 ( 0xaabbccdd )
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thanks for the stack information, interesting! –  bigl Mar 14 '12 at 18:23

The warning is caused by the compiler wanting the first argument of printf to be a string literal. It wants you to write this:

printf("%s\n", str_a);

This is because the first parameter of printf is the format string. The format arguments are then passed after that.

Note: You can in fact use a variable as a format string, but you probably shouldn't do that. That's why the compiler issues a warning and not an error.

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printf() expects it's format to be a string literal, not a dynamically created string. To fix, try this:

printf("%s", str_a); // %s denotes a string

Or use puts

puts(str_a);
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It's all the same to printf() if you pass it a string literal or a pointer: the first is converted to a pointer before printf() even thinks it's going to get called. Also puts() adds a '\n' to the output and the original string already has one. –  pmg Mar 14 '12 at 18:09
    
@pmg it's not the same. With printf("%s", str) your argument can have format characters (%c, %i, %f) without risk of undefined behavior with va_arg. –  Richard J. Ross III Mar 14 '12 at 18:11
    
What I mean is that your assertion that printf() expects a string literal is false. The compiler, on the other hand, is being helpful by pointing a common mistake in the use of printf(). –  pmg Mar 14 '12 at 18:24
    
I've had plenty of cases where I had to build a format string at runtime; warnings like this would have driven me bonkers (and may have created an untenable situation if my code were required to compile with no warnings). There are legitimate reasons for using a variable as the format string. –  John Bode Mar 14 '12 at 23:02

Please read the warning 'no format arguments' - i.e. no % in the string.

Try printf("%s", str_a);

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The error is coming from printf(str_a);. Your code should be printf("%s",str_a); take a look at the following link for more info on printf. http://www.elook.org/programming/c/printf.html

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