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I am writing a shader for OpenGL and I need to be able to pass in an array of data. I need to be able to pass by reference because I cannot copy the whole array. I know that you cannot define a pointer to an array of structs with Vertices *v[100]; because this will create an array of pointers.

I think you can pass the memory location of the first element in the c array with bindArrayFunction(&v); but then how should I use it? Would I increase the pointer by the size of the struct to get every vertex?

Any help or comments would be appreciated.

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3 Answers 3

up vote 2 down vote accepted

In C and C++, an array is never passed by value.

When an array type appears in a function declaration (as in void f(int a[])), the type is implicitly converted to the corresponding pointer type (as in void f(int* a)).

When you use the name of an array in most expressions, it is implicitly converted to a pointer to its first element. So, given int v[100], when you call f(v), a pointer to the initial element of v is passed. (There are several exceptions to the implicit conversion, most notably when the array is the operand of the sizeof or unary & operator).

Pointer arithmetic is always done in terms of the size of the pointed-to element. So, given v + 1, the array v is implicitly converted to a pointer to its initial element (equivalent to &v[0]) and is incremented by sizeof(int) bytes, to point to v[1].

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Just reference it as though it were an array.

void bindArrayFunction(Vertices *v, int size) {
  for (int i = 0; i < size; ++i) {
    process(v[i]);
  }
}
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In most situation, an array decays to a pointer to its first element. So if you have a function:

void foo(int *p)
{
    printf("%d\n", p[2]);
}

then these two calls are identical:

int array[10];

foo(array);
foo(&array[0]);

In both case, a single pointer is passed to the function, allowing the function to access the entire array.

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