3

Question is make an array of 10 integers that's fine

int array[10];

Now question is

how to make a reference to an array which I have declared above ?

I tried this

int &ra = a;

But it's giving me error... Please provide me details about this error and how to make reference of an array.

4 Answers 4

12
int (&ra)[10] = a;

Alterantively, you can use a typedef to separate this into the type for "array of 10 ints" and having a reference there-to, as in:

typedef int int10[10];
int10& my_ref = a;

The problem with your int &ra = a; is that it tells the compiler to create a reference of type int that refers to an array of 10 ints... they're just not the same thing. Consider that sizeof(int) is a tenth of the size of an array of ten ints - they occupy different amounts of memory. What you've asked for with the reference's type could be satisfied by a particular character, as in int& ra = a[0];.

I appreciate it's a bit confusing that int* p = a; is allowed - for compatibility with the less type-safe C, pointers can be used to access single elements or arrays, despite not preserving any information about the array size. That's one reason to prefer references - they add a little safety and functionality over pointers.

For examples of increased functionality, you can take sizeof(my_ref) and get the number of bytes in the int array (10 * sizeof(int)), whereas sizeof p would give you the size of the pointer (sizeof(int*)) and sizeof *p == sizeof(int). And you can have code like this that "captures" the array dimension for use within a function:

template <int N>
void f(int (&x)[N])
{
    std::cout << "I know this array has " << N << " elements\n";
}
5
  • @Toni D :It's only half of my answer... what about the error I got .. please clarify me
    – Omkant
    Oct 26, 2012 at 6:35
  • Later edit is fine... but when I try int &ra = a it's giving me compilation error: that non const int & cannot be assigned to rvlaue ....I am asking what's this
    – Omkant
    Oct 26, 2012 at 6:37
  • It's an unhelpful compiler error message. You shouldn't expect compiler error messages to always explain the error in terms you can understand. I think the compiler is trying to make your code work by creating a temporary, but then it sees you have int& not const int& and it knows you cannot bind a temporary to a non-const reference. So that is the error you get. Try changing int& to const int& and you'll see you get another error, perhaps a more helpful one (but perhaps not).
    – john
    Oct 26, 2012 at 6:42
  • Yeah It's still giving error by changing it to const ..anyway thanx for expalnation.. going to accept your answer... :)
    – Omkant
    Oct 26, 2012 at 6:48
  • @Omkant: you can't bind a non-const reference to a const variable without using a const_cast<>. That would defeat the protection const is designed to provide. You can bind a const reference to a non-const variable though. Oct 26, 2012 at 7:28
3

The reference to array will have type int (&a)[10].

int array[10];
int (&a)[10] = array;

Sometimes it might be useful to simplify things a little bit using typedef

typedef int (&ArrayRef)[10];
...
ArrayRef a = array;
3
  • Does that simplify anything? The typedef is as complex as the original reference declaration.
    – john
    Oct 26, 2012 at 6:35
  • Yeah, but if you pass this array reference to functions frequently, it might be easier and more explicit to use a type alias for functions parameters. This is not so great compared to using typedef for function pointers though. Oct 26, 2012 at 6:37
  • 1
    It might be even more handy to use a typedef for array (like in Tony's answer). Oct 26, 2012 at 6:39
1

This is a reference to an array of of ints of size 10:

int (&ra)[10];

so

int (&ra)[10] = a;
3
  • That's a reference to an int, you wanted a reference to an array.
    – john
    Oct 26, 2012 at 6:31
  • @Omkant well, int &ra is a reference to an int for starters. Even after many years I still find some C declaration syntax confusing. I would use std::array<int> or std::tr1::array<int> instead. Oct 26, 2012 at 6:32
  • My question is in this case when I try int &ra = a it's giving me compilation error: that non const int & cannot be assigned to rvlaue ....I am asking what's this .. ?
    – Omkant
    Oct 26, 2012 at 6:34
1

You can typedef the array type (the type should not be incomplete) as follow:

#define LEN 10
typedef int (array)[LEN]; 

int main(void)
{
    array arr = {1, 2, 3, 4, 5};    //define int arr[10] = {1, 2, 3, 4, 5};
    array arr2;                     //declare int arr[10];
    array *arrptr = &arr;           // pointer to array: int (*arrptr)[10] = &arr;
    array &&arrvef;                 // declare rvalue reference to array of 10 ints
    array &ref = arr;               // define reference to arr: int (&ref)[10] = arr;
}

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