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//function prototype at the top
void fillRandArray(int A[], int number, int maxNum);

//function declaration
void fillRandArray(int* A, int number, int maxNum) {
   for(int i = 0; i < number; i++) {
      A[i] = rand() % maxNum + 1; 
   }
}

int A[MAX_STUDENTS];

fillRandArray(A, number, 44);

I dont understand the code, so the prototype set int A[] then the declaration set int* A

when we pass the argument, shouldn't we pass like this...

fillRandArray(A[MAX_STUDENTS], number, 44); <---- ???
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take a look here: stackoverflow.com/questions/1790704/… –  prajmus Jan 14 '14 at 18:20

2 Answers 2

up vote 2 down vote accepted

The code below is passing the name of an array, which is an address.

void fillRandArray(int A[], int number, int maxNum);

The code below this is passing just the name of an address, which happens to be A in this case. They are basically doing the same thing.

void fillRandArray(int* A, int number, int maxNum)

You would not pass the argument like the following:

fillRandArray(A[MAX_STUDENTS],..., ...);

because you told the compiler to expect an address, not an element of the array. So you would just pass it A (i.e. the name of array, which is also the starting address). So it would look like this:

fillRandArray(A, number, 44);

Ask more questions, if I didn't explain it well enough.

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Thanks,so array is passed by reference? Because it does not need * –  Joshua Jan 14 '14 at 18:36
    
Yes, I believe arrays are passed by reference in C++. Reference meaning a reference to the actual array (i.e. well address) is passed to the function as opposed to being passed by value, which would just be a copy. If you didn't want the array to be changed in your function, you could always put const in front of the array. –  MrPickle5 Jan 14 '14 at 18:46
1  
The name of an array is not an address. –  James Kanze Jan 14 '14 at 19:56
    
@MrPickle5 The only time C++ passes anything by reference is when you declare a parameter to be a reference. C++ doesn't allow passing C style arrays at all (since C didn't). So you can either declare the function to take a pointer, and count on the implicit array to pointer conversion (to be avoided if at all possible), or you can declare a reference to the array. –  James Kanze Jan 14 '14 at 20:07

The problem is that C-style arrays can't be passed as arguments to a function. When you write int a[] as a parameter in a function, the compiler translates it to int* a. In addition, if you provide a dimension (e.g. int a[10]), it is simply ignored.

Also, an array can convert to a pointer, and will do so in a lot of contexts. This is what happens in fillRandArray(A, number, 44); the array A is implicitly converting to a pointer.

As for fillRandArray(a[MAX_STUDENTS], number, 44), this indexes into the array for the first element; with your declaration, it passes an int (not an array or a pointer), except that it accesses one beyond the end of the array, so it's undefined behavior.

In general, you want to avoid this (although with main, you can't): the function should either take an std::vector<int>& a, or in a few special cases, an int (&a)[N] (in which case, the function should be a template, and N be a template parameter). So you might write:

template <size_t N>
void fillRandArray( int (&a)[N], int maxNumber )
{
    for ( int i = 0; i != N; ++ i ) {
        a[i] = rand() % maxNum + 1;
    }
}

(But for this sort of thing, std::vector is far preferrable.)

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