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I am trying to use a collection of function pointers of type double* (*func)(double*, double) of length determined at runtime. I can do this using typedef by

typedef double* (*func)(double*, double);

...

func* functions = new func[5];

I understand that typedef is the 'correct' way to do this but I am wondering if there is a way to do this without using typedef. All the information I have been able find on this type of thing only uses arryays of function pointers not pointers to function pointers. I think the decalration

double* (**functions)(double*, double);

would be correct but I can't seem to figure out how to initialize such a thing using new.

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6  
(oh and also, why would you ever do this?) – user529758 Aug 31 '13 at 19:20
    
template<typename T> void make_error( T&& t ) { static_assert(false, "an error" ); } will often dump out the name of the function, including the type of T, when called with a variable. Build your type using typedef, then call make_error, and examine the error output. Without static_assert, nearly any silly error works. – Yakk Aug 31 '13 at 19:21
    
@Ryan I just like the simplicity that the typedef brings. – quamrana Aug 31 '13 at 19:21
    
If you use C++ then you should be using std::function and std::vector. – Joachim Pileborg Aug 31 '13 at 19:21
    
If you want to do this to enhance your understanding of the language syntax, that's good food for thought. If you're thinking to gain some advantage from using that in your code ... well, good luck! After all, some people like puzzle games! ;-) – Lorenzo Donati Aug 31 '13 at 19:26
up vote 4 down vote accepted
double *(**functions)(double *, double) = new (double *(*[5])(double *, double));

to use an abstract function type (or pointer to function) in a new expression, you need to put the abstract type in parenthesis -- from 5.3.4 of the C++ spec:

new-expression:
        
::opt new new-placementopt new-type-id new-initializeropt
        
::opt new new-placementopt ( type-id ) new-initializeropt

a new-type-id cannot express function types.

Knowing the details of the C++ grammar specification is useful if you're trying to generate (or obfuscate) code automatically, but for real code that you expect humans to read, you should just use the typedef.

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1  
Disclaimer: Never actually write code like that. (Please.) – gx_ Aug 31 '13 at 19:36
    
That works. I could swear I had tried this a few times but alas I must have forgotten the outermost parenthesizes. I am of course using a typedef, but the knowledge of how to do it directly couldn't hurt. Thanks. :) – Ryan Sep 3 '13 at 23:02
std::vector<double*(*)(double*, double)> function_table;

But putting aside artificial constraints:

typedef double *(*f_ptr)(double*, double);
std::vector<f_ptr> function_table;
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The real answer is given in one of the comments:

double *(**fns)(double *, double)

would declare a pointer to pointer to function returning a double *, with the arguments a double * and a double.

However, it's quite hard to read even before it became a pointer to pointer, so I'm not convinced you'd want to do this just to save a little bit of typing... (typedef and a name).

Of course, since this is C++, using

std::vector<std::function<double *(double *, double)>> fns;

would be the "right" thing to do, or perhaps even

std::vector<std::function<std::vector<double>(std::vector<double>, double)>> fns;`
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There's no need here for the internal argument conversions that std::function does. Just create a vector of function pointers. – Pete Becker Aug 31 '13 at 19:30
  • Are you getting an error message if you try to initialize the variable functions? If so then you need to cast the initialization to.
  • func* functions = (func *) new func[5];
share|improve this answer
    
No. new X and new X[N] already return a properly typed pointer of type X*. – gx_ Aug 31 '13 at 19:48

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