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The following program is printing 9 instead of 17 why?

int main()
{
   int **ptr;
   int i=0, j=0;
   int arr[2][2]={{17,9},{7,19}};

   ptr=(int**)arr;
   printf("%d\n", ptr[0]);
   return 0;
}
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3  
This is undefined behaviour. –  Simple Feb 5 '14 at 15:04
    
Dinesh why are you printing ptr[0]? Are you meaning to print ptr[0][0]? –  HAL9000 Feb 5 '14 at 15:06
    
Do you mean int *ptr ? –  Jarod42 Feb 5 '14 at 15:07
    
This is wrong, a 2D array is not compatible with a pointer-to-pointer. Hint: why did you get a warning when assigning ptr to arr? (Because you did, that's why you included a cast.) –  user529758 Feb 5 '14 at 15:09
    
ptr[0] type is int*. try "%p" –  BLUEPIXY Feb 6 '14 at 1:24

3 Answers 3

An array of arrays is not the same as a pointer to a pointer.

Reason being that the memory layout is completely different.

For an array of arrays:

+-----------+-----------+-----------+-----------+
| arr[0][0] | arr[0][1] | arr[1][0] | arr[1][1] |
+-----------+-----------+-----------+-----------+

For a pointer to pointer:

+--------+--------+-----+
| arr[0] | arr[1] | ... |
+--------+--------+-----+
  |        |
  |        V
  |      +-----------+-----------+-----+
  |      | arr[1][0] | arr[1][1] | ... |
  |      +-----------+-----------+-----+
  V
+-----------+-----------+-----+
| arr[0][0] | arr[0][1] | ... |
+-----------+-----------+-----+

As arrays decays to pointer, you can have a pointer to arrays though:

int (*ptr)[2] = arr;
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Wow! Nice to see at 100k+ :). Congo! –  haccks Feb 5 '14 at 15:14
    
@haccks Thanks! :) –  Joachim Pileborg Feb 5 '14 at 15:16

The reason of this behavior is your program invokes undefined behavior. You are using %d specifier to print a pointer type. Using a wrong format specifier invokes UB.
And note that, a pointer to pointer type object is not a 2D array. Arrays are not pointers, although array names decays to pointer to its first element.

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Exactly. Not to mention that a 2D array is not a double pointer. –  user529758 Feb 5 '14 at 15:09
    
@H2CO3; Done :) –  haccks Feb 5 '14 at 15:11

Pointer to pointer is certainly meaningless when assigned with 2 dimensional array. Use pointer to an array as below which is useful in accessing array of arrays.

int main()
{
   int (*ptr)[2]; // ptr is pointer to array of 2 ints
   int arr[2][2]={{17,9},{7,19}};
   ptr = arr;
   printf("%d\n", (*ptr)[0]);
   return 0;
}
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