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Why doesn't the following typedef declaration for a function type compile?

typedef void( int ) void_from_int_t;
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Maybe Boost.FunctionTypes or the trait for functions in Boost.TypeTraits (now in C++11) help – K-ballo Jan 27 '13 at 2:19
4  
Capital letters makes it easier to read your post. – ChiefTwoPencils Jan 27 '13 at 2:19
1  
Take note that the C++11 using syntax makes it similar to what you have and easier to read. – chris Jan 27 '13 at 2:30
3  
I, too, put no effort into posts that are supposed to make people want to help me. – Cat Plus Plus Jan 27 '13 at 3:10
1  
@KerrekSB outstanding edit =P – WhozCraig Jan 27 '13 at 3:44
up vote 2 down vote accepted

It should be typedef void(void_from_int_t)(int); etc. Declaration follows use, spiral rule, or whatever your favourite mnemonic for this is.

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hey kerrek, thank you very much! this makes total sense considering the syntax for pointers-to-functions, don't know why i didn't tumble to this. probably time for some coffee... – dlfurse Jan 27 '13 at 2:42

In general, to create a type definition, just add typedef to a variable definition:

// array of ten integers, instance and type
int a[10];
typedef int a_t[10];
// function, declaration and type
void function(int);
typedef void function_t(int);

Note that this is a function type, not a function pointer type, which you get by adding a star:

function_t* pf = &function;
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