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void OnReceived(std::shared_ptr<uint8_t> buffer, int len) {

int main(){
std::vector<char> buffer(1000);

am trying to cast it but i cant i dont know why!!!

Error   1   error C2664: 'std::tr1::_Ptr_base<_Ty>::_Reset0' : cannot convert parameter 1 from 'char *' to 'uint8_t *'  c:\program files\microsoft visual studio 10.0\vc\include\memory 1705

so how can i convert it?

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Maybe (std::shared_ptr<uint8_t>)(uint8_t*) – ikegami May 25 '11 at 22:34
The point of types is for safety, of which you defeat the purpose by trying to cast anyway. You should try to understand the role of each type and solve it that way, not try to ignore them. – GManNickG May 25 '11 at 23:10

4 Answers 4

up vote 4 down vote accepted

You really don't want to do that. Aside from the fact that char and uint8_t may be distinct types, even if you force the code to compile, your buffer will be deallocated twice, likely crashing your program. Just change OnReceived to accept a raw pointer.

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+1 - the purpose of a smart pointer is to control object lifetime. If a function can't affect the object lifetime, it doesn't matter if you pass it a smart pointer or a dumb one, and the dumb one is easier to work with. – Mark Ransom May 25 '11 at 22:43

Beyond the type mismatch, you don't want to do that. It'll almost cause a crash when both the vector destructor and the shared_ptr deallocate the same memory. You should consider boost::shared_array or a shared pointer to the entire vector (shared_ptr<std::vector>) instead of what you're doing now. Or as Igor suggests, OnReceived could be changed to accept a raw pointer if it doesn't need shared ownership of the buffer.

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uint8_t is an unsigned char so you'll either need to change the type of buffer or reinterpret_cast somewhere along the line.

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Try casting it to the appropriate type before passing it in, such as:

OnReceived((std::shared_ptr<uint8_t>)(uint8_t *),rcvlen);

or, probably a better solution, convert your std::vector to a vector of uint8_t.

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