Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:
struct rowDisplayPolicy
  static std::string seperator() { return ", "; }

struct columnDisplayPolicy
  static std::string seperator() { return "\n  "; }

template <typename T, int Size, typename DisplayPolicy>
class Array {
  Array() : pArray(new T[Size]) {}
  Array(T* pT) : pArray(new T[Size])
    for(int i=0; i<Size; ++i)
    *(pArray + i) = *(pT + i);
  ~Array() { delete [] pArray; }
  T& operator[](int n)
    if(n<0 || Size<=n) throw std::Exception("index out of range");
    return *(pArray+n);
  T operator[](int n) const
    if(n<0 || Size<=n) throw std::Exception("index out of range");
    return *(pArray+n);
  void display() const
    std::cout << "\n  ";
    for(int i=0; i<Size-1; ++i)
      std::cout << *(pArray+i) << DisplayPolicy::seperator();
    std::cout << *(pArray+Size-1) << "\n";
  Array(const Array<T,Size,DisplayPolicy>&);  // make public impl. Later
  Array<T,Size,DisplayPolicy>& operator=(const Array<T,Size,DisplayPolicy>&); // ditto
  T* pArray;

I have a question that, Why operator[] overloading two different ways. and What's difference between them. I don't know clear the meaning of 'function() const'. can you show me some examples.

share|improve this question
Why does the second one return a copy rather than a const reference? And as for const, that is easily google-able. – Corbin Mar 7 '12 at 21:52

2 Answers 2

Member functions have an implicit parameter this, the trailing const is used for function overload resolution. You can think of it like this:

void Array::function() -> void function( Array* this )

void Array::function() const -> void function( Array const* this )
share|improve this answer

const on a method means that the method cannot allow modification of the object.
The first operator[] returns a reference to the element at n (and hence allows modification of the array) - it could not be called on objects that are const.
The second operator[] returns a copy of the element at n. It does not modify the array - and can be called on objects that are const. Eg:

Array<int, 10> my_array1();
int test1 = my_array1[0]; // Calls first operator[]

const Array<int, 10> my_array2();
int test2 = my_array2[0]; // Calls second operator equals

This would more often apply to the context where the array is passed to a function as a parameter where it maybe qualified as const because it wants the function to be able to read the array but not change it.

share|improve this answer

Your Answer


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.