Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

As far as I have researched, I see that GNU C by default uses cdecl for function calls. The VST SDK explicitly defines the calls as cdecl when compiling with GNU C, and it spits out the following error:


    again.cpp:27:15: warning: multi-character character constant [-Wmultichar]
    In file included from /code/vstsdk2.4/public.sdk/source/vst2.x/audioeffect.h:16:0,
                 from /code/vstsdk2.4/public.sdk/source/vst2.x/audioeffectx.h:17,
                 from again.h:16,
                 from again.cpp:13:
    /code/vstsdk2.4/pluginterfaces/vst2.x/aeffect.h:125:32: error: expected ')' before '' token
    In file included from /code/vstsdk2.4/public.sdk/source/vst2.x/audioeffect.h:16:0,
                 from /code/vstsdk2.4/public.sdk/source/vst2.x/audioeffectx.h:17,
                 from again.h:16,
                 from again.cpp:13:
    /code/vstsdk2.4/pluginterfaces/vst2.x/aeffect.h:126:32: error: expected ')' before '' token
    /code/vstsdk2.4/pluginterfaces/vst2.x/aeffect.h:127:27: error: expected ')' before '' token
    /code/vstsdk2.4/pluginterfaces/vst2.x/aeffect.h:128:27: error: expected ')' before '' token
    /code/vstsdk2.4/pluginterfaces/vst2.x/aeffect.h:129:27: error: expected ')' before '' token
    /code/vstsdk2.4/pluginterfaces/vst2.x/aeffect.h:130:28: error: expected ')' before '' token
    /code/vstsdk2.4/pluginterfaces/vst2.x/aeffect.h:149:2: error: 'AEffectDispatcherProc' does not name a type
    /code/vstsdk2.4/pluginterfaces/vst2.x/aeffect.h:152:2: error: 'AEffectProcessProc' does not name a type
    /code/vstsdk2.4/pluginterfaces/vst2.x/aeffect.h:155:2: error: 'AEffectSetParameterProc' does not name a type
    /code/vstsdk2.4/pluginterfaces/vst2.x/aeffect.h:158:2: error: 'AEffectGetParameterProc' does not name a type
    /code/vstsdk2.4/pluginterfaces/vst2.x/aeffect.h:183:2: error: 'AEffectProcessProc' does not name a type
    /code/vstsdk2.4/pluginterfaces/vst2.x/aeffect.h:187:2: error: 'AEffectProcessDoubleProc' does not name a type
    In file included from /code/vstsdk2.4/public.sdk/source/vst2.x/audioeffectx.h:17:0,
                 from again.h:16,
                 from again.cpp:13:
    /code/vstsdk2.4/public.sdk/source/vst2.x/audioeffect.h:27:35: error: expected ')' before 'audioMaster'
    In file included from /code/vstsdk2.4/public.sdk/source/vst2.x/audioeffectx.h:17:0,
                 from again.h:16,
                 from again.cpp:13:
    /code/vstsdk2.4/public.sdk/source/vst2.x/audioeffect.h:155:2: error: 'audioMasterCallback' does not name a type
    In file included from again.h:16:0,
                 from again.cpp:13:
    /code/vstsdk2.4/public.sdk/source/vst2.x/audioeffectx.h:27:36: error: expected ')' before 'audioMaster'
    In file included from again.cpp:13:0:
    again.h:22:29: error: expected ')' before 'audioMaster'
    again.cpp:16:36: error: 'audioMasterCallback' was not declared in this scope
    again.cpp:17:1: error: expected ',' or ';' before '{' token
    again.cpp:22:14: error: expected constructor, destructor, or type conversion before '(' token
    scons: * [again.os] Error 1
    scons: building terminated because of errors.

At the same time, when I remove the explicit definition __cdecl, and let the compiler decide, it compiles without a single issue. Should this not throw the same error, because the default is cdecl?

I have read on Wikipedia, that in case of cdecl, "Since GCC version 4.5, the stack must be aligned to a 16-byte boundary when calling a function (previous versions only required a 4-byte alignment.)" Should this provide an insight and probable cause for my problem?

Also I face the same errors when I define that as __fastcall, or __stdcall. So what is really happening here?

Thanks

share|improve this question

2 Answers 2

I prefer not to modify the source directly, as that gets to be troublesome when trying to maintain multiple platforms. Instead, I pass -D__cdecl="" to the compiler flags to define it away.

I have built a few VST's on linux using this approach, and it works fine. You should be safe just defining away (or manually removing, if you prefer) the explicit __cdecl. The VST SDK is a bit retarded in this sense, especially in that it believes there are only 2 operating systems in the world worth supporting, Mac and Windows. If you look in aeffect.h, you'll find the following code:

#if TARGET_API_MAC_CARBON
    #ifdef __LP64__
        #pragma options align=power
    #else
        #pragma options align=mac68k
    #endif
    #define VSTCALLBACK
#elif defined __BORLANDC__
    #pragma -a8
#elif defined(__GNUC__)
    #pragma pack(push,8)
    #define VSTCALLBACK __cdecl
#elif defined(WIN32) || defined(__FLAT__) || defined CBUILDER
    #pragma pack(push)
    #pragma pack(8)
    #define VSTCALLBACK __cdecl
#else
    #define VSTCALLBACK
#endif

So basically, the best way to get around this is to undefine __cdecl away. GCC should compile your code just fine.

share|improve this answer
    
Hi Nik, I understand your approach, but I am trying to understand the reason. After all, why does it throw same errors with all the methods, i.e., cdecl, fastcall, stdcall? –  Loke May 29 '12 at 9:58

After a lot of research, since I am not so good in C++, I have found out the reason. The __cdecl is an extension of Microsoft Visual C++, and the same can be implemented in GNU C as __attribute__((cdecl)) at the end of a function declaration.

Microsoft VC++ Approach:

void __cdecl MyFunction(int, int);

GNU C++ Approach:

void MyFunction(int, int) __attribute__((cdecl));

None of the above are part of standard C++.

Setting VSTCALLBACK to nothing works, because cdecl is the default calling method in G++.

I do not understand why Steinberg programmers have defined it the way they have done, because I can't find a single instance of VC++ approach implemented in G++ ever. In fact in case of Mac OSX (g++ compiler version is 4.2.1, and on Linux I have 4.6.3), when VSTCALLBACK is set to __cdecl, it fails in a similar manner.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.