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I'm currently sandpitting delegates.
In the following example does dd reference p.m and p.n ?
Can I add another line to run p.m again after adding p.n ? Or do I need to implement d dd = p.m; again?

class Program {

    private delegate int d(int x);

    static void Main(string[] args) {

        Program p;
        p = new Program();


        d dd = p.m;//d dd = new d(p.m);
        Console.WriteLine(dd(3).ToString());

        dd += p.n;//dd += new d(p.n);
        Console.WriteLine(dd(3).ToString());

        //<<is there now a quick way to run p.m ?

        Console.WriteLine("press [enter] to exit");
        Console.ReadLine();
    }

    private int m(int y) {
        return y*y;
    }
    private int n(int y) {
        return y*y-10;
    }

}
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1  
this might prove somewhat useful: msdn.microsoft.com/en-gb/library/ms173175(v=vs.100).aspx – Ric Feb 6 '13 at 9:14
    
What is your overall goal with this? if you want to just run p.m after p.n has been added, you should do as @daryal suggest. – Jens Kloster Feb 6 '13 at 9:37
    
@Ric it did prove useful: thanks – whytheq Feb 6 '13 at 19:53
up vote 2 down vote accepted

yes, after first assignment (d dd = this.m;), all assignment made using += will also be called.

You may just remove a method, using -=, refer to the following sample;

d dd = p.m;//d dd = new d(p.m);
Console.WriteLine(dd(3).ToString()); //calls p.m

dd += p.n;//dd += new d(p.n);
Console.WriteLine(dd(3).ToString()); //calls boths p.m and p.n

dd -= p.n;
Console.WriteLine(dd(3).ToString()); // only calls p.m
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+1 ok - so I was guessing that it was something like a list of methods, referenced by the delegate and I'd be able to somehow choose which one to invoke. Turns out it's all or nothing - whichever methods are pointed at by the delegate will get run – whytheq Feb 6 '13 at 19:56
    
@whytheq you are right, you may think the delegate as a pointer to method(s). – daryal Feb 7 '13 at 7:20
//is there now a quick way to run p.m ?

Yes

p.GetInvocationList()[0].DynamicInvoke(new object[] { 3 });

You could alternatively just call the 'm' method directly though, so you wouldn't have to go thru the delegate at all.

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