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float __stdcall (*pFunc)(float a, float b) = (float (__stdcall *)(float,float))0x411280;

How to declare a function pointer with calling convention? The above gives me an error.

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What is the error message? –  James Jan 28 '11 at 16:07

2 Answers 2

The trick is placing the __stdcall inside the parentheses like this:

float (__stdcall *pFunc)(float a, float b) = (float (__stdcall *)(float,float))0x411280;

Of course, you are recommended to use a typedef instead, but the same trick applies:

typedef float (__stdcall *FuncType)(float a, float b);
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If I could upvote twice I would. Thanks a lot! –  Jonathon Reinhart Jun 2 '11 at 14:05
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Correct me if I'm wrong, but don't we we want typedef float (__stdcall *FuncType)(float a, float b)? –  blissfreak Oct 15 '13 at 18:41

__fastcall is the optimized one (fastest calling convention) but not used for an unknown reason

Try:

int (__fastcall *myfunction)(int,float);
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This does not provide an answer to the question. To critique or request clarification from an author, leave a comment below their post. –  Blue Ice Apr 12 at 3:39

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