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I have googled and can't find an answer. I was wondering how to pass a struct array by reference into a function. I found how to do it with pointers but wanted to learn with references too. Here is my code thus far (sorry bare with me, I don't comment on my personal experiments to learn things).

struct employeeType
{
string firstName;
...
double monthlyBonus;
};

void readEmpData(ifstream& infile, employeeType *emp, int length);

I thought I just did employeeType& emp or employeeType& emp[] but get errors and everything I have googled just did pointers.

Here is the full code at pastebin for clarification for my learning experiment: http://pastebin.com/6NfZ3LC4

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Already answered here:stackoverflow.com/questions/1106957/… –  Daniel Pereira Sep 16 '11 at 2:30
    
@Daniel, this might be different. It looks like he is trying to return an array. –  Don Reba Sep 16 '11 at 2:41

3 Answers 3

up vote 0 down vote accepted

I assume you want readEmpData to read in an array of employees from a file. In this case, the caller wouldn't know how many employees there are and so the array and its length should be output parameters. An appropriate signature would be:

void readEmpData(ifstream & infile, employeeType *& emp, int & length);

or

employeeType * readEmpData(ifstream & infile, int & length);

You could also define the operator << for employeeType and read using STL:

vector<employeeType> employees;
copy(istream_iterator(file), istream_iterator(), back_inserter(employees));
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I tried the employeeType *& emp and got errors for it. I just stuck with *emp to fix it. I made comment notes for the other methods and everyone else's methods after trying them for future reference. –  Clayton Weaver Sep 17 '11 at 23:23

Is the array of a fixed size? If not, you could use a template:

template <unsigned int N>
void myFunction(Foo (&arr)[N])
{
   // arr[0] etc.
}

Naturally, this will only work for compile-time arrays:

void f()
{
  Foo a[10];
  myFunction(a);  // OK

  Foo * b = new Foo[11];
  myFunction(b); // error, nonsense, b is a pointer, not an array
}

(If your array is always of the same size, you can skip the template and put the size into the argument directly. Note that "array" isn't one type in C++, but rather, T[N] is a different type for each N. That's why you cannot have a single function for "all arrays".)

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A pointer can be a pointer to a single object, or to an array of objects. Makes no difference. The reason you haven't found any references to arrays is that it's usually redundant.

*emp will access a single object, or the first object of an array.

emp[0] is exactly the same as *emp with a different syntax. They both behave exactly the same.

emp[1] will get the second object in an array. How does C++ know you passed an array to the function? It doesn't. It expects you to keep track of whether the pointer points to an array, and the size of the array.

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Learning redundant things is still useful. Never know when you will get stuck with a boss that prefers redundancy. –  Clayton Weaver Sep 16 '11 at 15:17
    
@Clayton, I wasn't trying to make a value judgement, merely suggesting why you didn't find much material on the subject. Usually when there are two different ways of doing something people will gravitate to the simpler one, especially when the simpler way was the only way in C. –  Mark Ransom Sep 16 '11 at 16:02

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