1

I am making a program that controls 2 motors through a raspberry Pi. I am running python code and I am wondering how to achieve the following :

  • Run motor1
  • Run motor2 simultaneously
  • Wait for both motors to finish
  • Run motor1
  • Run motor2 simultaneously
  • etc.

    What I have done so far is creating a Thread and using a queue.

    class Stepper(Thread):
    
        def __init__(self, stepper):
            Thread.__init__(self)
            self.stepper = stepper    
            self.q = Queue(maxsize=0)
    
        def setPosition(self, pos):
            self.q.put(pos)
    
        def run(self):
            while not self.q.empty():
                item = self.q.get()
                // run motor and do some stuff 
    
    thread_1 = Stepper(myStepper1)
    thread_2 = Stepper(myStepper2)
    thread_1.start()
    thread_2.start()
    
    loop = 10
    while(loop):
        thread_1.setPosition(10)
        thread_2.setPosition(30)
        # I want to wait here
        thread_1.setPosition(10)
        thread_2.setPosition(30)
        loop = loop - 1
    
        thread_1.join()
        thread_2.join()
    

Both thread_1 and thread_2 won't finish at the same time depending of the numbers of steps the motor need to process. I have tried to use the Lock() functionality but I am not sure how to correctly implement it. I also thought about re-creating the Threads but not sure if this is the correct solution.

  • Please fix your indents it's disturbance when other reads your code. – Philip Tzou Oct 15 '16 at 21:43
  • Where do you remove Items from self.q and where do you initialize it like q = Queue() – rocksteady Oct 15 '16 at 22:05
  • Yes, the queue is initialised in the def init like so : self.q = Queue(maxsize=0) (each thread has its own queue) ; I also do a item = self.q.get() in my run() method, I will update my code. – batmat Oct 16 '16 at 10:50
1

You can use Semaphore actually:

from threading import Semaphore

class Stepper(Thread):

    def __init__(self, stepper, semaphore):
        Thread.__init__(self)
        self.stepper = stepper
        self.semaphore = semaphore

    def setPosition(self, pos):
        self.q.put(pos)

    def run(self):
        while not self.q.empty():
            try:
                # run motor and do some stuff
            finally:
                self.semaphore.release()  # release semaphore when finished one cycle

semaphore = Semaphore(2)
thread_1 = Stepper(myStepper1, semaphore)
thread_2 = Stepper(myStepper2, semaphore)
thread_1.start()
thread_2.start()

loop = 10
for i in range(loop):
    semaphore.acquire()
    semaphore.acquire()
    thread_1.setPosition(10)
    thread_2.setPosition(30)
    semaphore.acquire()
    semaphore.acquire()  # wait until the 2 threads both released the semaphore
    thread_1.setPosition(10)
    thread_2.setPosition(30)
  • Some try finallys would suit here perfectly, in order to make sure the lock is released. – rocksteady Oct 15 '16 at 22:19
  • @rocksteady true. – Philip Tzou Oct 15 '16 at 22:21
  • Thanks, I am trying with semaphore, but I am running into problems : - It seems that when I start() the thread, because the queue is empty, the thread stops, and never run again. (if I call self.run() in the setPosition() for example, the threads won't run simultaneously anymore) - I can add a while(True) in the run method, but then the thread will never stops and program will never ends. – batmat Oct 16 '16 at 10:44
0

You can use the thread's join method like so:

thread_1.join() # Wait for thread_1 to finish
thread_2.join() # Same for thread_2

As per the documentation at https://docs.python.org/3/library/threading.html#threading.Thread.join:

A thread can be join()ed many times.

To run threads repeatedly, you will need to reinitialize the Thread object after each run.

  • I am not sure how to "reinitialize the Thread object after each run". Is that just a thread_1 = Stepper(myStepper1) in my while(loop) ? I am not sure if this is the best solution, but again I am new in python code. – batmat Oct 16 '16 at 10:56

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.