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Basic question.. had to ask. Any help will be appreciated.

Q: Why can't I dereference the pointer to a multidimensional array like this:

int arr [2][2] = { {1, 2} , {3, 4} };

printf("%d ", *arr); 
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In general, you should include details of what's going wrong (error message, expected and actual output, etc.). –  Aaron Dufour Mar 23 '12 at 1:03

4 Answers 4

up vote 3 down vote accepted

You can dereference it, it is just that the result is not going to be what you'd expect: *arr is not an int, it's a pointer to an int (OK, a one-dimensional array). If you want to see 1 printed, add another star:

printf("%d ", **arr);
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*arr is actually a 1-dimensional array which decays to a pointer to int. –  R.. Mar 23 '12 at 3:12

Try:

int arr [2][2] = { {1, 2} , {3, 4} };

printf("%d ", **arr); 

You need two levels of dereferencing, as your array is two-dimensional.

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Cool... thanks! –  Iceman Mar 23 '12 at 1:02
    
Why not just use an index anyway? printf("%d ", arr[0][0]) –  detly Mar 23 '12 at 1:03
    
just playing with poniters –  Iceman Mar 23 '12 at 1:07
    
@detly That's definitively a way - the question was specifically about the pointers. –  icyrock.com Mar 23 '12 at 1:07

If a is int[][] then *a is int[]. You need another level of redirection to access an array element. That is, **a is int.

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Remember if we define a as int[][], then it means it is a two dimensional array and it can be dereferenced by **a. If array is one dimensional then we should use *a to dereference it...

Try it..

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