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#include<stdio.h>

int main(){

 unsigned char array[]={0xff,0xd8,0xff,0xe0};
 char names[7];
 int count=1;
  sprintf(names,"%03d.jpg",count);
  for(int i=0;i<4;i++){
   printf("%#x  ",array[i]);
  }
  printf("\n");
 return 0;
}

the character array is effecting by the return value of sprintf which 7 here. I used gdb to find this error.
How to get rid of this problem and also
what to know what is happening after sprintf line execution. ###

output should be : 0xff 0xd8 0xff 0xe0
but Output I got is : 0 0xd8 0xff 0xe0
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2 Answers 2

up vote 0 down vote accepted
sprintf(names, "%03d.jpg", count);

stores the string "001.jpg" in names, as you would have found out by printing it after the sprintf. That string takes 8 bytes to store due to the NUL character, not seven, so you have undefined behavior. In this specific case, the NUL is written to array[0] which happens to be adjacent to names in memory.

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This is answer I am waiting for. which one is allocated first either array or string(names) first in the memory. –  wattreader Sep 19 '13 at 10:20
    
@wattreader: that depends on the platform/compiler. On my box, the program actually produced the expected result. –  larsmans Sep 19 '13 at 10:41

You have a buffer overrun which is corrupting memory.

The string "001.jpg" requires 8 characters (remember the 0-terminator) but your names array only has space for 7. The 8th character overwrites parts of array, causing undefined behavior.

Make it char names[32] or something.

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