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Suppose:

  6   char arr[] = "ABC";
  7 
  8   char *ptr   = &arr;
  9   char *ptr2  = &ptr;

Using ptr2, how can i access elements of c?

I would have thought the following would work, but ... it does not.

**ptr2[1]

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2  
You should be getting a warning about incompatible pointer types for char *ptr = &c; as well as char *ptr2 = &ptr;. The type of &c is (char*)[4] (i.e. "pointer to an array of 4 chars"), not char*. And the type of &ptr is char**, not char*. – sepp2k Jul 10 '11 at 18:17
up vote 5 down vote accepted

You currently don't have a pointer-to-a-pointer.

Your code should be:

char c[] = "ABC";

char  *ptr  = c;     // Note no &
char **ptr2 = &ptr;  // Note **, not *.  This is now a pointer-to-pointer

Then to access, you want this:

(*ptr2)[1]
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@mac: I misread your code snippet. See my updated answer... – Oliver Charlesworth Jul 10 '11 at 18:10
    
Any way i can use ptr2 without modifying original declaration? – Jam Jul 10 '11 at 18:12
1  
@mac: The original declaration is not correct. The type of &ptr is char **, you should not be assigning that to a char *. If you had compiler warnings enabled, you should be seeing a warning message about it! – Oliver Charlesworth Jul 10 '11 at 18:14
1  
Yes, write char *ptr2 = ptr; – Grzegorz Szpetkowski Jul 10 '11 at 18:14
    
@Grzegorz: Indeed. But then it's not a pointer-to-pointer. – Oliver Charlesworth Jul 10 '11 at 18:15

ptr is a pointer to an array so its type is char (*ptr)[] not char *

And ptr2 is a pointer to a pointer of pointer so its type is : char (**ptr2)[].

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