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.

I'm working on a multi-threaded server application. I have this struct that I try to pass to 2 Threads:

struct params{
  SafeQueue<int> *mq;
  Database *db;
};
class Server{
  Server(Database *db){
    DWORD sthread, ethread;
    params *p;
    p = new params;
    p->db = db;
    SafeQueue<int> *msgq = new SafeQueue<int>;
    p->mq = msgq;
    cout << "Address of params: " << p << endl;
    cout << "Address of SafeQueue: " << msgq << endl;
    cout << "Starting Server...\n";
    CreateThread(NULL, 0, smtpReceiver, &p, 0, &sthread); 
    CreateThread(NULL, 0, mQueue, &p, 0, &ethread);
  }
}
DWORD WINAPI mailQueue(LPVOID lpParam){
  params *p = (params *) lpParam;
  SafeQueue<int> *msgQ = p->mq;
  cout << "Address of params: " << p << endl;
  cout << "Address of SafeQueue: " << msgQ << endl;
  cout << "Queue thread started...\n";
}

Now the issue I'm having is the pointer to SafeQueue in the mailQueue thread has the address of the params struct... See output:

Address of params: 0x23878
Address of SafeQueue: 0x212c8
Starting Server...
Address of params: 0x28fe60
Address of SafeQueue: 0x23878
Queue thread started...
share|improve this question

1 Answer 1

up vote 2 down vote accepted
CreateThread(NULL, 0, mQueue, &p, 0, &ethread);
                              ^^

This should be just p

You pass a params** to the mailQueue thread then cast it to params* and dereference it, that's undefined behaviour. What happens in practice is that p->mq is the address at *p (because offsetof(params, mq) == 0) which is the value of p in the Server constructor, as you're seeing in the cout output.

To fix it, you should be passing a params* to the new thread, i.e. the variable p not its address.

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.