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typedef solution_type (*algorithm_ptr_type) (
    problem_type problem,
    void (*post_evaluation_callback)(void *move, int score)/* = NULL*/
);

Please help me! Thank you

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7  
It means someone thought it would be fun to write an unmaintainable line of code. –  James McNellis Feb 25 '11 at 5:54
5  
I hear careers.stackoverflow.com just got an upgrade. Maybe something worth considering if you're being asked to maintain code like that... –  Cody Gray Feb 25 '11 at 5:56
1  
Is it C or C++? They're not the same thing –  Rafe Kettler Feb 25 '11 at 6:02

4 Answers 4

up vote 14 down vote accepted

This means, algorithm_ptr_type is a pointer to a function returning solution_type and whose parameters are:

  • problem of type problem_type
  • post_evaluation_callback which is again a function pointer taking two parameters (void* and int) , and returning void.

And the same can be written as (easy and readable syntax):

typedef  void (*callback)(void *move, int score);

typedef solution_type (*algorithm_ptr_type)(problem_type, callback);

Note: the name of the parameters are optional, so I removed it, to make the typedef short and cute!


Usage:

solution_type SomeFunction(problem_type problem, callback post_evaluation)
{
   //implementation

   //call the callback function
   post_evaluation(arg1, arg2);
   //..
}

algorithm_ptr_type function = SomeFunction;

//call the function
function(arg, someOtherFunction);
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thanks, but what's the name of that function? –  Josh Morrison Feb 25 '11 at 5:59
1  
There are no functions in the code in question: there is a pointer-to-function type (named algorithm_ptr_type) and a pointer-to-function parameter (named post_evaluation_callback). –  James McNellis Feb 25 '11 at 6:01
    
@Andy: I explained the usage as well. Please see it! –  Nawaz Feb 25 '11 at 6:11
1  
right, you are totally write. thanks!! –  Josh Morrison Feb 25 '11 at 6:14

what a horrible piece of code!

what its doing is defining a function pointer type called algorithm_ptr_type, returning a solution_type and taking a problem_type as its first arg and a callback as its second arg. the callback takes void* and int as its args and returns nothing.

a better way to write this would be:

typedef void (*post_evaluation_callback)(void *move, int  score);
typedef solution_type (*algorithm_ptr_type)(problem_type problem, post_evaluation_callback callback);
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post_evaluation_callback doesn't return solution_type. It returns void....algorithm_ptr_type returns solution_type. –  Nawaz Feb 25 '11 at 6:30
    
@Nawaz: quite right, copy and paste error there :P –  Necrolis Feb 25 '11 at 8:00

This frustrating piece of code makes it so that algorithm_ptr_type is a function pointer.

This type must point to a function that returns an object of type solution_type.
This type must point to a function that takes the following arguments:
0: An object of type problem_type.
1: A function pointer which must point to a function that: Returns void.
Takes the following arguments:
0: A void*.
1: An int.

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Defines solution_type as a function pointer to a function that takes a problem_type and another function pointer. This second function pointer takes a void* (anything) and an int as parameters.

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2  
Actually, solution_type is the return type, not the function pointer. –  Marlon Feb 25 '11 at 6:17

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