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I have come across a function definition starting as:

int operator*(vector &y)
{
  // body
}

After putting * just after operator and before opening brace of argument, what does this function mean?

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This is an operator * overload. The syntax you should use is *(y) while y is of type vector.

It allows you a reference like implementation, something similar to pointer reference in C. Of course the actual meaning depends on the body. e.g. you can return a reference to an internal element in the vector.

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This is a function overload for the * operator.

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Its function overloading which overload the de-reference operator *.

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It is either a dereferencing operator or a multiplication operator override. It is dereferencing if it is in a namespace and multiplication if it is inside a class. Since it has a body and no class scope I will also assume that it is a dereferencing.

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Actually its not a deferencing operator as in *ptr! Its actually an operator such as a multiplication operator. Here is a simple example

#include <iostream>
using namespace std;

struct Int{
 int val;
 Int(const int val = 0) : val(val){}
 int operator*(const Int& number)const{
    return val * number.val;
 }
};

int main(){
  Int n(4), m(5);
  cout << n * m << endl; //use the operator*() implicitly
  cout << (n.operator*(m)) << endl; //use the operator* explicitly
}

To define a de-ferenceing operator, its prototype would be operator*(). Look here for more information. Here is a live code to test.

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Most overloaded operators can be defined as non-member functions, and unary * is no exception. ideone.com/sPixf If it is a member function, yes, it is binary *, but as shown unary * is more likely. – Dennis Zickefoose Jul 24 '11 at 21:34
    
Oh wait yes you are right, didn't realize that it was a regular function. – user814628 Jul 25 '11 at 14:54

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