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I don't understand why this program print "klmnop" and not just "klm". b is an array of size 2! This is the code:

struct S
{
  int i1;
  int i2;
  char b[2];
};

int main()
{
  char a[] = "abcdefghijklmnop";

  struct S* s = a + 2;
  printf("[%s]\n" , s->b);

  return 0;
}
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You realize that this code is UB in a system where sizeof(int) is 8 bytes? What are you trying to achieve? – GeorgeAl Jul 2 '12 at 10:15
    
It's a disaster from the standard-compliance point of view, with the implicit conversion from char * to struct S * with no real guarantee of alignment. But I think the point was clear enough. It could have just been printf("[%s]\n", a+10) though. It looks like a reduced form of a larger, non-hypothetical problem. – Alan Curry Jul 2 '12 at 10:22
up vote 2 down vote accepted

because printf("[%s]\n" , s->b); prints the data from the address s->b to the character '\0'. after the address s->b whenever it will find the '\0' it will print the data.

char b[2]; 

above statement do not include '\0' at the last character so it will continue reading the data from the address untill it find String terminator '\0'

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2  
I think you mean character \0 – GeorgeAl Jul 2 '12 at 10:11
    
ya that was by mistake i have corrected it.. – Hemant Metalia Jul 2 '12 at 10:15

Like most string functions, your printf doesn't have any information about the size of the array that the string is contained in. It only has a pointer to a single char, and your promise that this char is the first in a sequence of chars terminated by '\0'. When asked to print the whole string, it'll keep going until it finds that terminator or crashes, whichever comes first.

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