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#include <stdio.h>
int main()
{
    char str[11] = "HelloWorld";
    printf("%s\n",str);
    printf("%s\n",str+3);

    /* This Line here is the devil */
    printf("%s\n",str[2]); // %s needs an addr not a value.

    return 0;
}

Why does that line give a segmentation fault. Is it because %s in printf needs an address and not a value. What is the actual reason ??

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3  
You gave it a letter instead of an address. So it tries to access the address "0x6c" (hex of "l") which is almost certainly an invalid address. –  Mysticial Dec 2 '12 at 5:11
    
so accessing that memory location might turn out to be illegal and hence the segmentation fault.. OK.. –  user1420463 Dec 2 '12 at 5:13
2  
@Bhargav: Mis-match in format specifier and actual type passed to printf results in an Undefined Behavior, and that is what your example does. –  Alok Save Dec 2 '12 at 5:15
    
If there was a suspected reason, you could have tried removing it and see for yourself. +1 to the answer for good explanation though. –  axiom Dec 2 '12 at 5:23

1 Answer 1

up vote 3 down vote accepted

str[2] returns a char, not a pointer to a char. So, printf will try to start reading at address 0x6c. Right there, there is a good chance that 0x6c is an invalid address that will cause a segfault. However, if it isn't invalid then printf will keep reading until it reaches a 0x00 character, which very well could enter into an invalid address range.

If you want to know precisely why it segfaults, you would need to follow along in a debugger, which might be interesting and educational.

If you wanted to fix the crashing line, you could change it to:

  printf("%s\n", &str[2]);

which I would consider to be better style than str+2.

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That last suggestion I've already known.. I knew this is wrong but just couldn't figure out the precise reason for the segphault :) –  user1420463 Dec 2 '12 at 5:19
    
The second sentence describes one possible behavior of one possible implementation, but there's no fundamental reason it's true. The correct answer is simply that OP broke the interface contract (%s requires a pointer to char in the corresponding argument position) and thus the behavior is undefined. –  R.. Dec 2 '12 at 14:51

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