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Why this code is unsecured?

#include <stdio.h>
int main( int argc, char *argv[] )
    {
       printf(argv[1]);
       printf("\n");
       return 0;
    }
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11  
Why should we do your homework for you? –  Marc B Apr 9 '12 at 21:12
3  

5 Answers 5

up vote 5 down vote accepted

printf will process its first parameter, looking for things like %d and %s.

Based on those values, it will get more data from the stack and print it out.

So if someone called your program:

a.out "%d %d %d %d %d %d %d %d %d %d %d %d"

They could view a section of your computer's callstack.

If they got even more creative with the format specifier, maybe they could dump something important, like a credit-card number or a password.

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1  
with %n you can even write anywhere in memory –  ouah Apr 9 '12 at 21:16
    
Yes that what I thought but it print only the % because it prints argv[1], that's it.. –  0x90 Apr 9 '12 at 21:17
    
This is relatively benign; %n can cause active damage (e.g. modify the control flow). –  Oli Charlesworth Apr 9 '12 at 21:18
1  
@0x90, @ouah: You wouldn't use %n just on its own, but rather with something like "%500d%1024x%10000x%40000s%n" - to make the printf() eat args on the stack till the position where it encounters a "usable" pointer, and control the amount of data written using the format field width adjusters. That way you'll get a known value that printf() will put into the pointer specified by the arg to %n. –  FrankH. Apr 11 '12 at 9:52
1  
@0x90: I've written you a small example, see my answer. –  FrankH. Apr 12 '12 at 10:44

Consider what the first argument of printf controls (hint: printf doesn't just read its input arguments).

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Look at what is a format string vulnerability:

http://en.wikipedia.org/wiki/Uncontrolled_format_string

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You can find a explanation here. https://www.owasp.org/index.php/Testing_for_Format_String

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Since poster asked for an example what %n does:

The way a printf format string can change memory is by using the %n option; a specific value to be written can be obtained by using format-width specifiers "wisely". As a test:

#include <stdio.h>

int main(int argc, char **argv)
{
    int *q = (int *)argv[0];
    printf("%1$300000d%5$n",
        123,         // %1 - 1st param (formatted as '300000d')
        0,           // %2 - 2nd param (unused)
        0,           // %3 - 3rd param (unused)
        0,           // %4 - 4th param (unused)
        argv[0]);    // %5 - 5th param (written to via 'n')

    printf("\nNow *q == %d\n", *q);

    return 0;
}

If you run this and look a the last line of output, it'll print Now *q == 300000 (tested on Linux).

I'm using the rather-unknown positional format syntax (%<pos>$<fmt>) for printf() here in order to show how one can skip arguments to choose which one to modify without needing to use any of the "noninteresting" ones.

I'll leave it to the readers experiments to figure out what printf() treats as "arguments" for a call like printf(argv[1]). The answer to that depends on the calling conventions (or related, the ABI for your system), and is different for 32/64bit Windows/Linux/MacOSX etc.

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