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Can someone explain to me how C retrieves the correct memory address for a row when you only use one subscript to access a 2d array?

Example -

int array2D[2][2] = {1,2,3,4};
printf ( "starting address of row2 = %p" , array2D[1]);

I understand that when subscripting in C that what is actually going on is pointer addition so for a 1d array the array name points to element 0. In this case if I had wanted element 1 the compiler would take the starting address (say 4000) and add 4 to it (assuming a 4 bit int) so that what is returned is the item at memory address 4004.

My understanding is that when you populate a 2d array, as in my example, they are allocated sequentially so I would have

1 2
3 4
at addresses

4000 4004

4008 4012

So how does C work out that in this case array2D[1] should point to 4008 and not 4004? Does it run a sizeof() operator or have I misunderstood a fundamental here?

Thanks in advance

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4  
Your example is a 1 Dimensional array. –  sharth Aug 24 '12 at 15:27
    
Sorry, fixed it –  LinuxN00b Aug 24 '12 at 15:30
    
No, you didn't: see Keith Randall's answer for the correct syntax –  Useless Aug 24 '12 at 15:31
2  
@Useless, yes he did. The inner braces are optional if you specify a complete array type. –  eq- Aug 24 '12 at 15:32
    
Interesting, I never knew that! I don't think it's as readable, but still good to know. –  Useless Aug 24 '12 at 15:48

4 Answers 4

up vote 3 down vote accepted

C knows how long each row is, so it does the multiplication to find the row.

int x[][3] = {{1,2,3},{4,5,6}};

then &x[1][0] is &x[0][0] plus 3 * sizeof(int).

That's why in a multidimensional C array declaration, all but the first dimension must be specified.

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Ah excellent, thanks for that Keith. Blindingly obvious when it's explained :) –  LinuxN00b Aug 24 '12 at 15:32
    
@Keith Randall: interesting answer, but how does C know the length of each row? Isn't x in this case just a pointer to a pointer to integer? Where is the "row size" information stored? –  user1607425 Aug 24 '12 at 20:25
1  
@curvature: C knows the length of each row from the declaration. Try not putting the 3 there and see what happens (hint: compiler error). The row size is not stored anywhere at run time (except coded in the generated code). x is not a pointer to a pointer to an integer, it is a pointer to an array of integers (in my example, 6 of them). There are no pointers within the array (unlike, e.g. Java, so you can't do x[0]=...). –  Keith Randall Aug 24 '12 at 22:34
    
I see, I understand it now. Now it makes sense why you need to explicitly define the size of the rows. Thank you. –  user1607425 Aug 25 '12 at 8:32

Pointer arithmetic depends on the type of the element being pointed to. Given a pointer p to type T, p + 1 points to the next element of type T, not necessarily the next byte following p. If T is char, then p + 1 points to the next char object after p, which starts at the byte immediately following p; if T is char [10], then p + 1 points to the next 10-element array of char after p, which starts at the 10th byte following p.

The type of the expression array2d in is "2-element array of 2-element array of int", which "decays" to type "pointer to 2-element array of int", or int (*)[2]1. Thus the expression array2d[1] is interpreted as *(array2d + 1). Since array2d points to an object of type int [2], array2d + 1 points to the next 2-element array of int following array2d, which is 2 * sizeof int bytes away from array2d.


1. Except when it is the operand of the sizeof or unary & operators, or is a string literal being used to initialize another array in a declaration, an expression of type "N-element array of T" will be converted to an expression of type "pointer to T" and its value will be the address of the first element in the array.

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This is going to be a bit long-winded, but bear with me still.

Array subscription is just a shorthand: (p[N]) equals (*(p + N)) in all contexts for pointer types (both are invalid expressions for void*, though).

Now, if p is an array type, it would decay to a pointer type in an expression like (*(p + N)); an int[2][2] would decay into a pointer of type (*)[2] (i.e. a pointer to an int[2]).

Pointer arithmetic takes types into account; we need to convert things to char* to visualize what the compiler does to us:

T *p;
p[N] equals *(p + N) equals *(T*)((unsigned char*)p + N * sizeof *p)

Now, if T were an int[2] (to equal the situation we described above), then sizeof *p would be sizeof(int[2]), i.e. 2 * sizeof(int).

This is how subscription works in so-called multidimensional arrays.

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enter code heresizeof(array2D[1]) == 8;enter code hereif array2D address is 4000; enter code hereso array2D[1] address is 4000+sizeof(array2D[1]) == 4000+8; excuse my poor english.

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