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I was reviewing some code and came upon a line similar to:

std::tr1::function<bool (int, int)>(//etc...

The syntax for the template type, bool (int, int) was unfamiliar to me. Based on Googling, in the case of std::tr1::function it seems this syntax is used to define a function's return type and parameters. That makes sense, but why does that syntax work? As far as I know, C++ templates can only specify types?

I tried to instantiate an instance of the type in code as:

bool (int, int) test;

As I expected, the statement failed to compile. At the very least, the syntax would need to be something like: bool (test)(int, int);

Is bool (int, int) treated as a C++ type? Any tips on reconciling this in my mind?

Thanks, Adam

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Function types make perfectly good types. –  eh9 Nov 28 '12 at 20:08

1 Answer 1

up vote 2 down vote accepted

It is called a function type.

You can't create instances of it, but you can create pointers to them and typedefs.

This question has some insight: What is a function type used for?

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Thanks for your answer, Pubby. Until now, I never knew that one could specify unnamed function types in C++. I usually used typedef: typedef bool (* FnPtr)(int, int); I confirmed that I can simply pass "bool (int, int)" as the template type and it works as expected -- are template types the only place where these un-named function types can be used? –  Adam Forume Nov 29 '12 at 3:29
1  
@AdamForume I don't know of any other practical uses for it. –  Pubby Nov 29 '12 at 4:20

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