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passing string to printf is not working properly code:

char p[50];
scanf("%s", p); 
printf(p, 10); 

input: value:%d\n

expected output: value:10

output: value:10\n

also, i got different output at different times. output of same a.out at 3 successive executions:

$./a.out

value: %d\n
value:

$./a.out

value:%d\n\n
value:10\n\n

$./a.out

value:%d\n
value:10\n

In the above, value: %d\n is due to scanf, and the next line by printf

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I don't believe in your code and example output. The text "value" appears in the output, but not in the code. Do you type value? –  unwind Feb 27 '13 at 7:34
1  
@unwind it appears in the input. He passes the input as the first argument to printf –  Jan Dvorak Feb 27 '13 at 7:36
1  
Is it as bad as it seems to pass user-input strings directly to printf? –  Jan Dvorak Feb 27 '13 at 7:37
3  
@JanDvorak: It's an extremely bad idea, mostly because %n can write to arbitrary memory. Even without it, an attacker can reveal arbitrary data on the stack (e.g. a password) or cause your program to crash. –  nneonneo Feb 27 '13 at 7:38
1  
@fersarr: printf(s, ...) where the format string s is a string supplied by a user, i.e. passed directly to printf. This is in opposition to a hardcoded literal string, as is the norm. –  nneonneo Feb 27 '13 at 7:43
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2 Answers

Be really careful with passing user-supplied text as the first argument to printf, or you will have a format string vulnerability. Further, by using a bare scanf, you are also vulnerable to a buffer overflow. (Two vulnerabilities in only three lines of code!)

That said, the reason why you get a literal \n in your output is because when you type \n at the console, you get a string with a literal backslash followed by an n, instead of a newline character.

Also, note that scanf stops at any whitespace, so typing in value: xxx will result in only value: entering the buffer. You should use a function like fgets instead if you want to read a whole line.

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Your code behaves exactly as it supposed to. In your first example, you passed space before "10", so it haven't got printed.

Easiest fix would be to use fgets() instead of scanf():

#include <stdlib.h>
#include <stdio.h>

void main () {
  char p[50];
  fgets(p, 50, stdin);
  //scanf("%s", p);
  printf(p, 10);
}

The reason is that fgets() gets simply one line from a stdin, it doesn't care what characters are in that line. scanf(), on the other hand, requires you to specify exactly what characters will appear in which order.

See manual pages for scanf and fgets for more info.

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