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If you define a function that accepts a delegate, D can type-infer the delegate arguments when you call that function. So if I write a function with the signature:

void foo(void delegate(int,string) dlg)

I can call it using:

foo((a,b){});

and D will infer that a is int and b is string.

But what if I don't know in advance how many arguments the delegate will have? if I write

void foo(T...)(void delegate(T) dlg)

I can call:

foo((int a,string b,char c,boolean d){});

But I had to specify the types for each argument.

Now, I want foo to accept a delegate with any number of arguments - all of the same type. So I can call:

foo((a,b,c,d,e,f,g){});

and D will infer that a to g are all strings.

Note that what I need is not a varidaic function. dlg itself does not accept any number of arguments, it is foo that accepts a delegate with any number of arguments.

Is it possible to do this in D?

EDIT:
Actually, it would be better if I can define a default argument, so I can write

foo((a,b,int c,d){});

and a,b and d will be strings while c will be int.

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1 Answer

up vote 3 down vote accepted

It could be an enhancement request. But for now you can pass it at compile-time as an alias:

import std.stdio;

void foo(alias dlg)()
{
    dlg(1, 2.0, [3], "a");
    dlg(1.0, 2, [[3]], "b");
}

void main()
{
    foo!((a, b, c, d) { writefln("%s %s %s %s", a, b, c, d); } )();
}
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Techincally, it is not the same, as no type inference happens in this case. Aliased delegate becomes a template and is instantiated on usual per-usage basis. As far as I have understood, Idan asks about something slightly different. –  Михаил Страшун Mar 20 '13 at 9:15
    
Actually I can use this, but for some reason when I do it like this isCallable!dlg returns false so I can't use ParameterIdentifierTuple!dlg and ParameterTypeTuple!dlg to get the delegate's parameter types and names. Is there a way to solve this, or do I have to parse dlg.stringof myself to get that info? –  Idan Arye Mar 22 '13 at 1:24
    
OK, the problem was that dlg is a template, not a delegate. If I use dlg(string,string,string,string) I can get it's parameter trait data. How can I tell how many template arguments a template has? –  Idan Arye Mar 22 '13 at 2:24
    
I am afraid this kind of functionality may be not covered by Phobos/__traits yet. If you know allowed template parameter types such utility template is pretty trivial to write, most generic sounds rthaer tricky though. –  Михаил Страшун Mar 22 '13 at 10:53
1  
@Idan Arye: This problem is filed as d.puremagic.com/issues/show_bug.cgi?id=9608 –  Andrej M. Mar 23 '13 at 18:24
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