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I don't quite understand how pointers work with C arrays. Here's some code I got:

int arrayOne[] = {1, 2, 3};
int arrayTwo[] = {4, 5, 6, 7};

int **arrayThree = (int **)malloc(2 * sizeof(int));
arrayThree[0] = arrayOne;
arrayThree[1] = arrayTwo;

for (int i = 0; i < 2; i++) {
    int *array = arrayThree[i];
    int length = sizeof(array) / sizeof(int);
    for (int j = 0; j < length; j++)
        printf("arrayThree[%d][%d] = %d\n", i, j, array[j]);
}

I would have expected this to output the following:

arrayThree[0][0] = 1
arrayThree[0][1] = 2
arrayThree[0][2] = 3
arrayThree[1][0] = 4
arrayThree[1][1] = 5
arrayThree[1][2] = 6
arrayThree[1][3] = 7

What it actually prints out is:

arrayThree[0][0] = 1
arrayThree[0][1] = 2
arrayThree[1][0] = 4
arrayThree[1][1] = 5

Why?!

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You don't need to typecast the void pointer result from malloc(), unless you are compiling C code on a C++ compiler, which is a bad thing to do. –  Lundin Mar 7 '11 at 15:15
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4 Answers

up vote 11 down vote accepted

sizeof(array) is the size of a pointer, which just happens to be the twice the size of an int on your platform.

There's no way to get the length of an array in C. You just have to remember it yourself.

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His pointers appears to be twice the size of an int –  Erik Mar 7 '11 at 14:55
    
@Erik My edit to correct that appeared a few seconds before your comment!! –  David Heffernan Mar 7 '11 at 14:56
2  
"There's no way to get the length of an array in C. You just have to remember it yourself." Or use a special marker value, like the \0 string terminator. –  Michael Kjörling Mar 7 '11 at 14:57
2  
@David: Should be a badge for typing speed here :P –  Erik Mar 7 '11 at 14:57
6  
@user282635: no, the size of an array is part of its type, so the compiler knows without it being stored. This information is lost (to the compiler) when an array decays to a pointer. So when you do int array[] = {1, 2, 3}, the type of array is int[3], so sizeof array is 3 * sizeof(int). When you do int *array = whatever, the type of array is just int*, no size information, and sizeof array is just sizeof(int*). –  Steve Jessop Mar 7 '11 at 15:09
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First of all, int **arrayThree = (int **)malloc(2 * sizeof(int)) is wrong, it should be sizeof(int *)

Next, sizeof(array) / sizeof(int) corresponds to sizeof(int *) / sizeof(int) which is not what you want.

There is no "embedded" size information in a pointer that you treat as an array, you will need to manually manage the size.

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There is no built-in mechanism to keep track of the size of an array in C, you need to maintain it yourself, and pass it to any function that takes your array as parameter.

However, if you really need to use arrays extensively and in a dynamic manner in C, you can build your own library of dynamic arrays in C, without too much effort. For more information, refer to the following tutorial: goo.gl/vYhkF.

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First of all, the allocation of arrayThree should be

int **arrayThree = malloc(2 * sizeof *arrayThree);

Since the type of arrayThree is int **, then the type of *arrayThree is int *.

The reason that sizeof (array) / sizeof (int) isn't returning what you expect is that array is a pointer (type int *), not an array type, so sizeof returns the number of bytes contained in the pointer object itself, not the number of elements pointed to.

There is no way to know from the pointer value alone how many elements are being pointed to; you must keep track of that information separately.

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