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When I was typing the question I could see list of Operator Overloading... questions lined up. Most of them are either for C++ or Haskell. My question is for C# and one could say the logic could be the same. And my problem is I want to understand operator overloading in C# context.

I was looking at a tutorial and it shows,

DateTime dt1 = new DateTime();
//do some work
DateTime dt2 = new DateTime();
TimeSpan ts = dt2 - dt1;

And the author said, utilization of - within DateTime datatype is the best operator overloading example. All I can see is one date is substracted by another and save into a TimeSpan object. It is not using operator keyword and static keyword either.

I find it difficult to understand. Can someone explain what's going on here? Does it mean underneath the above ts = dt2 - dt1, there's a public static DateTime operator -(DateTime, DateTime) happening?

Update:

Second example:

//some parameterized constructor is here to set X, Y

public static Point operator +(Point p1, Point p2)
{   
    Point p = New Point();
    p.X = p1.X + p2.X;
    p.Y = p2.Y + p2.Y;
    return p
{

In this case operands have to be same type as return Type?

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Look here –  bash.d Feb 27 '13 at 15:56

3 Answers 3

up vote 9 down vote accepted

The operator keyword is used when declaring the overloaded operator, not when using it.

So the operator would be written like this:

public static TimeSpan operator -(DateTime lhs, DateTime rhs)
{
    // Code to execute
}

None of that interferes when you use the operator - you just use it in the kind of code you've already shown. So this line:

TimeSpan ts = dt2 - dt1;

will invoke the code given above.

Sample code:

using System;

public class Int32Wrapper
{
    private readonly int value;
    public int Value { get { return value; } }

    public Int32Wrapper(int value)
    {
        this.value = value;
    }

    public static Int32Wrapper operator +(Int32Wrapper lhs, Int32Wrapper rhs)
    {
        Console.WriteLine("In the operator");
        return new Int32Wrapper(lhs.value + rhs.value);
    }
}

class Test
{
    static void Main()
    {
        Int32Wrapper x = new Int32Wrapper(10);
        Int32Wrapper y = new Int32Wrapper(5);
        Int32Wrapper z = x + y;
        Console.WriteLine(z.Value); // 15
    }
}

To answer the final bit of your question:

Does it mean underneath the above ts = dt2 - dt1, there's a public static DateTime operator -(DateTime, DateTime) happening?

No - there's no DateTime subtraction operator which returns DateTime - there's just the one which returns TimeSpan.

EDIT: With regards to your second example with Point, I don't think it logically makes sense to add two Point values together. What would you get if you added your home location to your work location, for example? It makes much more sense to have a Vector type, and then:

public static Vector operator -(Point p1, Point p2)
public static Vector operator +(Vector v1, Vector v2)
public static Point operator +(Point p1, Vector v1)
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Thank you. But, TimeSpan is not same data Type as DateTime ... –  aspiring Feb 27 '13 at 15:57
1  
@aspiring: No, but who said it has to be? The operator has to be declared in the type of one of the operands, that's all. (Or for a conversion operator, it can be in either the source or target type.) –  Jon Skeet Feb 27 '13 at 15:59
    
The operator has to be declared in the type of one of the operands, that's all. This is indeed valuable info. Each of the example I see are showing the same Types for return type and operands.. Can I conclude in that case TimeSpan and DateTime rather special case? Where as my second example for Point follows same return Type as operands... –  aspiring Feb 27 '13 at 16:13
    
I got it. :) for e.g. if I want to get distance between two points, then I must return that distance as double type. public static double operator -(Point p1, Point p2) { return Math.Sqrt(p2.X - p1.X....); } –  aspiring Feb 27 '13 at 16:30
1  
@aspiring: That would work, but it isn't what I'd do: I'd return a Vector as the more natural difference between two points. For the distance, you'd want the magnitude of the vector. –  Jon Skeet Feb 27 '13 at 16:47

Say you have a class "Amount", like this:

public class Amount
{
    public int AmountInt { get; set; }
}

And you have two instances of that class:

Amount am1 = new Amount { AmountInt = 2 };
Amount am2 = new Amount { AmountInt = 3 };

You cannot simply do:

Amount am3 = am1 + am2; //compilation error

You have to add an operator to the Amount class to provide this functionality:

public static Amount operator +(Amount amount1, Amount amount2)
{
    return new Amount { AmountInt = amount1.AmountInt + amount2.AmountInt };
}

Same goes for subtraction (-). Now if you do:

Amount am3 = am1 + am2;

the int-value property of am3 will be 5 in this case. Hope this helps!

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Thank you, another decipherable example :) –  aspiring Feb 27 '13 at 16:19

All an operator is, is syntactical sugar for a method. for instance the - operator can be somethign resembling

//not the actual syntax
public MyObject minus(MyObject object1, MyObject object2)
{
    //insert custom subtraction logic here
    return result
}

You can overload operators for any custom class you define.

here's a tutorial I found on you actually do it

Here's a relevant snippit from the first example of the tutorial

   // Declare which operator to overload (+), the types 
   // that can be added (two Complex objects), and the 
   // return type (Complex):
   public static Complex operator +(Complex c1, Complex c2) 
   {
      return new Complex(c1.real + c2.real, c1.imaginary + c2.imaginary);
   }
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