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Lets say I have the following variables:

char c[] = "ABC";
char *ptr = &c;
char **ptr2 = &ptr;

I know I can iterate over a pointer to an array of char, this way:

int i;
for(i=0; i<3; i++){
    printf("TEST******************, %c\n", ptr[i]);
}

How do I iterate over a pointer to a pointer?

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1  
Just a FYI: the &c is a value of type char (*)[4] (pointer to array of 4 characters): c does not decay to a pointer to its first element in the expression ptr = &c;. Your compiler should have warned about incompatible types in the assignment ... –  pmg Jul 10 '11 at 15:13

3 Answers 3

up vote 3 down vote accepted

For your example:

int i;
for(i=0; i<3; i++){
    printf("TEST******************, %c\n", (*ptr2)[i]);
}
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Suppose:

  6   char c[] = "ABC";
  7 
  8   char *ptr   = &c;
  9   char *ptr2  = ptr;       
 10   char **ptr3 = &ptr;   

enter image description here

In this scenario:

  • ptr represents an address of c
  • ptr2 represents an address of ptr. A pointer to a pointer
  • ptr3 is a value stored in ptr, which is an address of c.

**ptr3=&ptr means - Take address of ptr, look inside and assign its value (not address) to ptr3

If I understood your question correctly, you need to use pointers to pointers: ptr2 in my example instead of ptr3

If so, you can access elements like :

ptr2[0] = A
ptr2[1] = B
ptr2[2] = C

For the record the following will yeld the same results. Try it.

 12   printf ("===>>> %x\n", ptr2);
 13   printf ("===>>> %x\n", *ptr3);

Good discussion for your reference is here

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If I did not misunderstand your question, this code should make a job

printf("TEST******************, %c\n", (*ptr2)[i]);
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