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Suppose I have:

Foo foo;

is there a shorthand for this?

foo.operator->().operator()(1, 2);
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4  
::face palm:: No. ::shakes head in baffled disbelief:: –  dmckee Apr 4 '10 at 0:38
    
I edited your question. Is that what you meant? –  Potatoswatter Apr 4 '10 at 0:44
3  
@dmckee: hey, be nice. –  jalf Apr 4 '10 at 0:49
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Who deleted my question about the second operator name and why? As far as I see there's no definitive information from the OP on that issue. What we currently have is just a guess from Potatocorn. –  AndreyT Apr 4 '10 at 0:54
    
Why the down votes? –  anon Apr 4 '10 at 5:48
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3 Answers 3

up vote 3 down vote accepted

Assuming you actually meant foo.operator->().operator()(1, 2), and that you have control over the class Foo, a simpler form would be (*foo)(1, 2). It requires the operator* to that defined though, but since we usually expect foo->bar to be equivalent to (*foo).bar, it seems reasonable.

If your Foo is a smart pointer class of some sort, which points to an object which defines an operator(), this would be the most concise way of calling the object's operator().

But without more detail (and without you providing an expression that's actually valid C++ -- there's no way in which operator(1, 2) as you wrote it can be valid), it's impossible to answer your question. I'm just guessing at what you're trying to do.

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Well... Yes. The shorter form would look as

foo.operator->()(1, 2)

As for eliminating the operator -> part... From the information you supplied so far it is impossible to say, but if it is implemented the way I can guess it is implemented (judging from your expression), then you can't eliminate it.

In C++ the use of overloaded -> operator in an expression is interpreted as a chain of repetitive overloaded -> calls, which eventually ends in a built-in -> invocation. This means that at some point the overloaded -> must return a pointer. Your overloaded -> obviously doesn't return a pointer. So, in order to use it you have no other choice but to spell it out explicitly as operator ->().

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+1 for correctly specifying exactly what's needed to use operator->. I didn't realize that a compliant program could use non-pointer operator->, but it's possible! –  Potatoswatter Apr 4 '10 at 0:57
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Well, no, but, assuming you have write permissions to the class, you could define another member function that calls operator(), and then you'd have something like:

foo->myfunc(1,2);

That you find yourself in this position is a sign that you (or the person who wrote this class) is being a bit too cute with operator overloading.

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Err... No. It won't work. The OP's overloaded -> returns a non-pointer. This immediately means that any attempts to call it as foo->... are ill-formed. It simply won't compile. (There's a chance for it to work if the overloaded -> returns something that in turn has its own overloaded ->, but it would be a stretch to make such a guess without any extra info.) –  AndreyT Apr 4 '10 at 1:32
    
I see that -- f.operator->().myFunc(1,2) works. Which I guess underscores the point that this seems to be a poor use of operator overloading. –  JohnMcG Apr 4 '10 at 1:43
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