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I'm playing around pointers and arrays, and i want to cast/convert a pointer to an array of int (allocated with malloc) to a multidimensional array of int.

I don't know why the following C program doesn't print the same number two times.

...
str->val = malloc(16);
int (*m)[4][4] = str->val;
printf("The number is %d, yes the number is %d", str->val[4+1], (*m)[1][1]);
...

Now, the first printed number is right, but the second one is not. I found other question on SO similar to mine, but i couldn't resolve my problem. I'm sorry for the possible duplication.

I have one more question: what's the difference between the following declarations?

int m[10];
int (*m)[10];

EDIT:

My problem is caused by a wrong declaration of the field val of my struct: I declared it as char.

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1  
might find this useful unixwiz.net/techtips/reading-cdecl.html – tesseract Jan 19 '14 at 23:08
1  
malloc(16) will only allocate enough memory for an int array[0][4]. – tesseract Jan 19 '14 at 23:29

Using the nice cdecl.org tool, int (*m)[4][4] is translated to declare m as pointer to array 4 of array 4 of int, which is multidimensional array. It should work if you allocated more memory.

int m[10]; is array of 10 integers stacked as a row in memory. int (*m)[10]; is a pointer to an array which holds 10 values.

int m[4][5] is multidimensional array, but they are almost like int m[20]. They are stacked as a row in memory. Indexing m[2][0] is simply translated to m[5*2 + 0].

int *m[5] is NOT multidimensional array, it is array of pointers. Each pointer points to a different array. Values are not stored in sequence.

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Your problem is that 16 bytes ain't enough for your array. Common values of sizeof(int) are 2 and 4, so you need at least 32 or 64 bytes for representing 4 ints. But you shouldn't be sticking hard-wired constants into your code anyway. Use the sizeof operator, and it will work:

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

// fill it with something, then:

printf("%d = %d\n", (*arr)[1][1], ptr[1 * 4 + 1]);
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