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typedef int py_var_t (void *);

it is used as:

py_var_t *somesymbol
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3  
Install cdecl++. –  Paul Tomblin Mar 29 '10 at 16:37
    
@Paul Tomblin: There is a tool that explains the declarations for a language in plain English, yet people claim that the language isn't too complicated? I'll never understand this ;) By the way, the online version of that tool is at cdecl.org . Just remove the typedef keyword to make the declaration work. –  OregonGhost Mar 29 '10 at 16:42
    
I have never, ever said that C++ was't too complicated. C is no worse that most languages, although the declaration syntax kinda sucks. –  Paul Tomblin Mar 29 '10 at 16:59

2 Answers 2

It defines py_var_t to be the type of a function returning int and taking a void* pointer as argument.

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+1. Good answer. –  Pablo Santa Cruz Mar 29 '10 at 16:39
    
+1. Short and precise answer. –  psihodelia Mar 29 '10 at 16:48

This:

typedef int py_var_t (void *);

defines the type of the function as described by @milan1612. Then this:

py_var_t *somesymbol;

creates a pointer to such a function. You could also have created the pointer like this:

int (*somesymbol)(void *);

but use of typedefs is better practice, particularly when the function types get more complicated.

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