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I came across the following function declaration and I am not able to understand how exactly it works: the function is declared in the file as follows:

struct newtype {
  /* some definition */
};

typedef void function1 (int* a, newtype* p);

then in another C code above declaration is used to declare another function2 as follows:

function1 function2;

void function2(int* a, newtype* p)
{ 
  /* function definition */  
}

Then function2 is used as follows:

int function3 (int, char, function1* );

/* definition */
function3(int a, char c, function2 )
{ 
  /* function definition */
}

I am not able to understand the statement: function1 function2; and what does typedef void function1 (arguments) mean as function1 is not declared as a pointer. Can anyone explain what is happening here?

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I can't get this code to compile... –  Sean Bright Aug 9 '12 at 17:21
    
possible duplicate of what does this typedef mean? a function prototype? –  jamesdlin Aug 9 '12 at 19:13
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2 Answers

up vote 1 down vote accepted

function1 is declared as a type for functions not returning anything and taking a pointer to an int and a pointer to a newtype as arguments.

This way is useful to make sure you get functions that conform to a particular format especially when you use callback functions / function pointers.

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 typedef void function1 (int* a, newtype* p);

defines the name function1 as an alias for the type void ()(int *, newtype *) i.e. a function.

Thus function1 function2; is the same as this prototype:

void function2 (int* a, newtype* p);

The name function1 could also be used to declare a pointer, which result in a familiar "function pointer". That is what function3 is doing when it declares int function3 (int, char, function1* ); - its last argument is a pointer to a function with the signature void ()(int *, newtype *)

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