Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

How does passing an statically allocated array by reference works?

void Func(int (&myArray)[100])
{
}

int main()
{
    int a[100];
    Func(a);
}

Does (&myArray)[100] have any meaning or its just a syntax to pass any array by reference? I don't understand separate parenthesis followed by big brackets here. Thanks.

share|improve this question
    
Is there any Rvalue to Lvalue relation with the function parameters? –  John DB Apr 20 '11 at 0:16
    
possible duplicate of What is useful about a reference-to-array parameter? –  AnT Apr 20 '11 at 0:25

4 Answers 4

It's a syntax for array references - you need to use (&array) to clarify to the compiler that you want a reference to an array, rather than the (invalid) array of references int & array[100];.

EDIT: Some clarification.

void foo(int * x);
void foo(int x[100]);
void foo(int x[]);

These three are different ways of declaring the same function. They're all treated as taking an int * parameter, you can pass any size array to them.

void foo(int (&x)[100]);

This only accepts arrays of 100 integers. You can safely use sizeof on x

void foo(int & x[100]); // error

This is parsed as an "array of references" - which isn't legal.

share|improve this answer

Its just the required syntax:

void Func(int (&myArray)[100])

Pass array of 100 int by reference the parameters name is myArray;

void Func(int* myArray)

Pass an array. Array decays to a pointer. Thus you loose size information.

void Func(int (*myFunc)(double))

Pass a function pointer. The function returns an int and takes a double. The parameter name is myFunc

share|improve this answer

It is a syntax. In the function arguments int (&myArray)[100] parenthesis that enclose the &myArray are necessary. if you don't use them, you will be passing an array of references that is because the subscript operator have higher precedence over & operator.

E.g. int &myArray[100] // array of references

So, by using type construction () you tell the compiler that you want a reference to an array of 100 integers.

E.g int (&myArray)[100] // reference of an array of 100 ints

share|improve this answer

You don't even need the &myArray cause they are passed by reference (in essence) by default in C.

share|improve this answer
13  
If you don't use the reference, the array degrades to a pointer, and you cannot e.g. use sizeof. –  Erik Apr 20 '11 at 0:16

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.