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C#引用C++写的dll文件时,是否需要EntryPoint参数,要看C++声明方式是一下哪一种:

一、若为C-Style方式的声明,则C#引用时不需要EntryPoint参数:

//cpp头文件声明,C-style方式声明,C#引用时不需要EntryPoint参数
extern "C" {
	void API_EXPORT _cdecl printC(char* msg);
	int  API_EXPORT _stdcall addC(int a, int b);
}

***********************************************************

//cpp函数体
///C-Style export with a C-Sytle call (cdecl)
extern "C" void API_EXPORT _cdecl printC(char* msg) {
	printf(msg);
	printf("printed from a _cdecl function\n");
}


///C-Style export with C++ call (stdcall)
extern "C" int API_EXPORT _stdcall addC(int a, int b) {
	int c = a + b;
	printf("%d + %d = %d\n", a, b, c);
	return c;
}


 

二、若不是C-Style方式的声明,则C#引用时需要填EntryPoint参数。

//c++头文件声明,这种声明不是C-Style方式声明,C#引用时需要带EntryPoint参数
void API_EXPORT _stdcall printS(char* msg);

********************************************************************

//C++函数体
///C++ Style export with C++ call (stdcall)
void API_EXPORT _stdcall printS(char* msg) {
	printf(msg);
	printf("printed from a _stdcall function\n");
}


 

EntryPoint参数可以使用eXeScope,或VC6.0自带的dependency查看C++生成的dll。

可参考:https://www.cnblogs.com/mfrbuaa/p/3806388.html

 

 

整体引用例程可参考:https://github.com/Xinnx/MarshalingTest