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int main() {


  char **k;
  char *s ="abc"; 
  char *b ="def";

  *k = s;


}

//Why does this produce segmentation fault? Shouldn't everything be store on the stack without any problems?

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1  
What exactly do you think *k should be? What would k point to? –  Jefromi Jul 3 '11 at 23:40

3 Answers 3

up vote 4 down vote accepted

k has no defined value yet, so dereferencing it (*k) causes undefined behaviour. If you add an initialization, i.e. k = &b;, *k = s; will work afterwards.

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so char *s automatically has defined value? What would be the correct way of using k? –  Mark Jul 3 '11 at 23:37
2  
@Mark: You could say k = &s. –  Kerrek SB Jul 3 '11 at 23:39
    
No, but you initialized both s and k so they have a valid value. Remember, dereferencing a pointer means read the value of the pointer, treat it as memory address and access this memory address. If k has no initial value, *k basically reads at whichever location the arbitrary bit pattern in k happens to point at. –  Alexander Gessler Jul 3 '11 at 23:39
    
but how come when I tried k = new char* I could direct using *k = s? –  Mark Jul 3 '11 at 23:42
    
@Mark: Because k has a value then. In your code example you didn't initialise k, then you dereferenced it, therefore accessing memory that probably doesn't belong to you, landing you in undefined behaviour land. –  user802003 Jul 4 '11 at 0:27

Ok, I hope I don't get beaten up with with any slight error... here is my attempt to explain it as fully as I can.

With an ordinary char* it will point to a char.

with a char** it points to a pointer that points to a char. That *k value is on the heap and not the stack.

i.e. like this:

stack (1)    heap (2)   heap or ... (3)
+-----+    +-----+     +----+
|char*| -> |char*| ->  |char|
+-----+    +-----+     +----+

Now char*'s are not really strings but they are treated as blocks of contiguous printable characters in memory that are terminated by a null or zero byte. So the string would be stored and be referenced at (3)

So to fix your code you'll want to allocate space for a char* (not a char).

i.e. put

k = (char**)malloc(sizeof(char*));

before the line

*k = s;

Not that it's a good code, But it shouldn't crash.

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oops, let me correct that. –  Matt Jul 4 '11 at 4:29
    
Oh, yes, now it's quite clear :) Thanks! –  sarnold Jul 4 '11 at 8:30

Alexander is correct, you're dereferencing k with *k = s;. Your initialization of char *s="abc"; may look the same, but it is syntactic sugar for the longer: char *s; s="abc";

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