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In C# - Optional parameters - creates a completion to the other un-supplied parameters.

so if I write:

void Go(int a, bool isFalse = true)

and call Go(a)

it actually emit il code for Go(a, true).

What about named parameters and how does switching the order thing works behind the scenes?

for example :

  Go(isFalse:true, a:1) //order has been switched.
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3 Answers 3

up vote 2 down vote accepted

When you call Go(a) it calls Go(a, true) not Go(a, false). For example;

using System;

namespace Programs
{
    public class Program
    {      
        public static void Main(string[] args)
        {
            Go(5);
        }

        static void Go(int a, bool isFalse = true)
        {
            Console.WriteLine("Int is {0}, Boolean is {1}", a, isFalse);
        }
    }
}

Output is:

Int is 5, Boolean is True

You are setting isFalse value to true if it isn't used when its called. But if you care about orders you must use which order do you describe in your method. For example;

If you have a method like

SomeMethod(bool isFalse, bool isFull, bool isStacked)

and when you call this method like

SomeMethod(true, false, true)

your method works like

isFalse = true, isFull = false and isStacked = true

because of the order. But sometimes when your method has a lot of parameters which you can mix the order, you can use named parameters came with C# 4.0. Which based same method, you can it like this;

SomeMethod(isStacked: true, isFull: false, isFalse = true)

is equal call to

SomeMethod(true, false, true)

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yeah I got confused with the true/false. fixing. –  san.stifano Dec 17 '12 at 11:21

For example, if you have something like this

void Go ( int a , bool isFalse, bool isEmpty)

After your call Go(1,isEmpty : true, isFalse : false) it will generate function call like this

Go ( 1, false, true)
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Go(a) will compile to Go(a, true). It has the implication that if the default value of an argument is changed in a referenced library the calling code needs to be recompiled.

As a rule of thumb named (and default) parameters are just a compiler trick. The calling rule at the runtime level is the same as previous versions.

So in consequence calling Go(isFalse = true, a = 1) will in fact compile to Go(1, true).

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how does it answer to my question ( and not to the preview I gave ) ? –  san.stifano Dec 17 '12 at 11:10
    
i did specify that everything is a compiler trick so it should imply that named parameters follow the same rule. They are repositioned by the compiler at the calling site. I'll edit my response. –  AZ. Dec 17 '12 at 11:12
    
Go(a) will compile to Go(a, true) not Go(a, false) –  Soner Gönül Dec 17 '12 at 11:29
    
@Soner - yes of course. I think i need some coffee :). Fixed –  AZ. Dec 17 '12 at 11:36

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