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I am trying t understand the Named Constructor Idiom in the example I have

Point.h

class Point
{
    public:
        static Point rectangular(float x, float y);
    private:
        Point(float x, float y);
        float x_, y_;
};
inline Point::Point(float x, float y) : x_(x), y_(y) {}
inline Point Point::rectangular(float x, float y) {return Point(x,y);}

main.cpp

#include <iostream>
#include "include\Point.h"
using namespace std;

int main()
{
    Point p1 = Point::rectangular(2,3.1);
    return 0;
}

It does not compile If Point::rectangular is not static and I don't understand why...

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10  
Do you understand what the static keyword does in this context? – David Brown Feb 25 '13 at 21:50
    
no I am afraid... For me static means that the function is not called on an object but belong to the whole class – statquant Feb 25 '13 at 21:51
1  
Right. Now think if it wasn't static, how would you use it to create a new object? You'd need to have an object already, so you could call the member function, but if you have an object already you don't need to construct another one. – Jonathan Wakely Feb 25 '13 at 21:57
1  
Ok!, if it wasn't static I should call it on an object, this is the whole point, we are building one... Thanks – statquant Feb 25 '13 at 21:58
1  
btw, #include "include\Point.h" is too Windows. Use backslash / for path separation, or include include in your list of includes, and don't include include/ in your #include. – sly Feb 25 '13 at 22:03
up vote 4 down vote accepted

In this context, the static keyword in front of a function means that this function does not belong to any particular instance of the class. Normal class methods have an implicit this parameter that allow you to access the members of that specific object. However static member functions do not have the implicit this parameter. Essentially, a static functions is the same as a free function, except it has access to the protected and private members of the class it is declared in.

This means you can call static functions without an instance of that class. Instead of needing something like

Point p1;
p1.foo();

You simply do this:

Point::foo();

If you tried to call a non static function like this, the compiler will complain, because non-static functions need some value to assign to the implicit this parameter, and Point::foo() doesn't supply such a value.

Now the reason you want rectangular(int, int) to be static is because it is used for constructing a new Point object from scratch. You do not not need an existing Point object to construct the new point so it makes sense to declare the function static.

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