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i am using a pointer to an array of 4 integers as int(*ptr)[4]

using the following code in which m pointing to a 2-D array using this pointer

int arr[3][4]={{1,2,3,4},{5,6,7,8},{9,10,11,12}};

int (*ptr)[4]= arr[4];

int m= (*ptr)[2];

what will be the value in "m"...

i need to find the value of element arr[1][2] how can i get it using pointer ptr?

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Format your code next time. Is this a homework question? Tag it that way if it is, and tell us what you've tried and what your exact problem is. –  Carl Norum Jun 10 '10 at 18:36
    
Also, what's stopping you from running it and trying (it won't work, by the way). –  Carl Norum Jun 10 '10 at 18:37
    
On the second line 'arr[4]' isn't that an index out of range? The max size of arr has been declared as 3. So the maximum index should be 2 as it is zero-based. –  Wix Jun 10 '10 at 18:39
    
make ir arr[2] even then its not giving the correct output... –  user363801 Jun 10 '10 at 18:42
    
ptr= arr[2] gives an error.. why??? –  user363801 Jun 10 '10 at 18:43

2 Answers 2

Multi-dimensional arrays are really one dimensional arrays with a little syntaxic sugar. The initialization you had for ptr wasn't an address. It should have been

int *ptr[4] = { &arr[0][0], &arr[1][0], &arr[2][0], &arr[3][0]};

You can also leave the 4 out and just use

int *ptr[] = { &arr[0][0], &arr[1][0], &arr[2][0], &arr[3][0]};

I made a few modifications to your code below. Note the two sections with the printf. They should help to demonstrative how the values are actually laid out in memory.

#define MAJOR 3
#define MINOR 4
int arr[MAJOR][MINOR]={{1,2,3,4},{5,6,7,8},{9,10,11,12}};

int (*ptr)[4];
int *p = &arr[0][0];

// init ptr to point to starting location in arr
for(i = 0; i < MAJOR; i++) {
    ptr[i] = &arr[i][0];
}

// print out all the values of arr using a single int *
for(i = 0; i < MAJOR * MINOR; i++) {
    printf(" %d", *(p + i) );
}

for(i = 0; i < MAJOR; i++) {
  for(j = 0; j < MINOR; j++) {
     printf( " %d", *(p + i * MAJOR + j) );
  }
  printf("\n");
}
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Ptr doesn't point to anything and probably doesn't even compile, since [4] is outside the bounds of either the [3] or the [4] of the original array.

If you need to find arr[1][2] then you need int (*ptr)[4] = arr[1]; int m = ptr[2];

share|improve this answer
    
int (*ptr)[4] = &arr[1]; int m = (*ptr)[2]; Note the extra & and *. Your variant will not even compile. –  AnT Jun 10 '10 at 18:41
    
hey anDrey tell me one thing int (*ptr)[4]= &arr[4] will be out of bound? –  user363801 Jun 10 '10 at 18:44
    
@nitinpuri, yes it will be out of bounds - arr only has 3 elements, so the maximum index is 2. –  Carl Norum Jun 10 '10 at 18:47
    
arr was declared with the size [3] and [4]. With only one index it refers to the first size [3]. Since arrays in C/C++ are zero based the maximum value allowed there would be 2. And to clarify what DeadMG refers to, you need to use the '&' to get the reference of arr at the specified index. –  Wix Jun 10 '10 at 18:47
    
first part is done but int m= (*ptr)[2] does not point to element 3 of 4 element array.. –  user363801 Jun 10 '10 at 18:52

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