25

For my class I'm supposed to find out what's wrong with a piece of code, and the part I'm having trouble deciphering is

// joining a thread blocks until that thread finishes
a.join();
b.join();

Is joining a thread the same as locking a thread? Because I think the point of this assignment is you're not supposed to leave threads unlocked.

49

This is how one thread waits for the completion of another thread!

A nice use case of join is - say for example the main() function/thread creates a thread and doesn't wait ( using join ) for the created thread to complete and simply exits, then the newly created thread will also stop!

Here is a nice explanation of Thread Management in general and Thread Join in particular! And here are some code snippets that show you some use cases of join and what happens when you don't use it!

0
7

Think of starting a thread as "forking" your process into two distinct threads of execution. Then, join is the reverse -- it's where these two separate threads join together (and only the parent continues from there).

6

The comment says it all, really. Joining a thread means to wait for it to complete. That is, block the current thread until another completes.

6

To join a thread means to wait until that thread is live. When the thread exits, the thread calling join() will continue executing. Thus, in the above example, the thread (presumably main thread) that is calling a.join() and b.join() will wait until both threads a and b (in that order) finish their job and then continue executing the code that is after b.join().

5
  1. join() waits on a thread to complete it's execution.
  2. You need to either detach() a thread or join() a thread for managing it.
  3. join() also, cleans up the thread occupied resources. You will find join() called in the destructor of an RAII class because of the same reason.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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