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I wrote the following code In c just to check whether the code would break or not:

int main(void)
{
    int A [5] [2] [3];
    printf("%d\n\n", A[6]);
    printf("%d\n\n", &A[6][0][0]);
    system("pause");
}

Now, the code does not break which was something I was not expecting. When we declare a multidimensional array: int A [5][2][3], doesn't that conceptually mean that A in its first level is a one-dimensional array of 5 elements ( 0 - 4 ) and every element of that array is itself a one-dimensional array of 2 elements and every element of that array is a one-dimensional array of 3 elements? If that concept is correct, how can A[6][0][0] even exist - since in the first level we only have 5 elements ( 0 based ) .

Any help, would be greatly appreciated.

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2 Answers 2

up vote 5 down vote accepted

You are accessing a position outside the array, there is no A[6]. That's undefined behavior, and anything could happen.

Note that A[5] is a well defined location (past the end of the array), so getting a pointer to it is legal but trying to access that pointer is not. However, getting a pointer to A[6] or any other greater index is completely undefined.

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so shouldn't it break instead of giving an integer address. I mean what is that integer address ? Is it some random number which does not indicate the address of any element in the declared array? –  John Nash May 24 '12 at 21:37
    
@John Nash: Nope, it could break but it does not have to. When you incur undefined behavior anything could happen, so says the standard word. The entire program could decide to do something totally different, like printing some ASCI art, and still be legal C. –  K-ballo May 24 '12 at 21:41
    
@John Nash: A[5] is not some random address, it is a well defined place in memory: *(A + 5). It is the next spot in memory past your declared array. –  pb2q May 24 '12 at 21:44
    
@pb2q: Wouldn't the next spot past the array be A[5]? –  K-ballo May 24 '12 at 21:45
    
@K-ballo yep sorry my mistake: got the declared array dimensions mixed up in my comment and answer. will edit for int A[5]. –  pb2q May 24 '12 at 21:48

C doesn't do array bounds checking. For int A[4], think of A[5] as like pointer arithmetic: *(A + 5).

Even if A has only been declared with 5 elements (0-4), C will allow you to reference memory outside the declared bounds of your array, using A.

The result of this access is undefined. If you read A[5], you might get garbage; if you write A[5], i.e. A[5] = 13, you may corrupt another allocated block of memory.

The wiki article is a pretty good start for understanding this, but I recommend that you pick up a copy of K&R, read it, and do all the exercises.

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