52

I have the following code:

@asyncio.coroutine
def do_something_periodically():
    while True:
        asyncio.async(my_expensive_operation())
        yield from asyncio.sleep(my_interval)
        if shutdown_flag_is_set:
            print("Shutting down")
            break

I run this function until complete. The problem occurs when shutdown is set - the function completes and any pending tasks are never run.

This is the error:

task: <Task pending coro=<report() running at script.py:33> wait_for=<Future pending cb=[Task._wakeup()]>>

How do I schedule a shutdown correctly?

To give some context, I'm writing a system monitor which reads from /proc/stat every 5 seconds, computes the cpu usage in that period, and then sends the result to a server. I want to keep scheduling these monitoring jobs until I receive sigterm, when I stop scheduling, wait for all current jobs to finish, and exit gracefully.

  • To give some context, I'm writing a system monitor which reads from /proc/stat every 5 seconds, computes the cpu usage in that period, and then sends the result to a server. I want to keep scheduling these monitoring jobs until I receive sigterm, when I stop scheduling, wait for all current jobs to finish, and exit gracefully. – derekdreery Jan 6 '15 at 10:27
  • have you tried yield from my_expensive_operation() \n yield from asyncio.sleep(my_interval - timer() % my_interval) instead? – jfs Jan 6 '15 at 10:32
  • I could just sleep for long enough that I know everything has finished, but this doesn't seem very clean. I was wondering if there was a way to schedule tasks and then run the loop until all scheduled tasks are complete. In javascript (node.js), if the main program reaches the end but there are callbacks set, then the process runs until all callbacks are removed. – derekdreery Jan 6 '15 at 10:36
  • Oh sorry I see what you mean - you mean to not schedule with async, rather make the current process wait until the previous one is finished. It just feels like you should be able to do what I want to do (schedule tasks) and then wait till they are all finished. – derekdreery Jan 6 '15 at 10:38
  • Keep the futures returned by async() (remove finished jobs). In principle, you could get all current Task instance (there might be a class attribute). – jfs Jan 6 '15 at 10:52
51

You can retrieve unfinished tasks and run the loop again until they finished, then close the loop or exit your program.

pending = asyncio.all_tasks()
loop.run_until_complete(asyncio.gather(*pending))
  • pending is a list of pending tasks.
  • asyncio.gather() allows to wait on several tasks at once.

If you want to ensure all the tasks are completed inside a coroutine (maybe you have a "main" coroutine), you can do it this way, for instance:

async def do_something_periodically():
    while True:
        asyncio.create_task(my_expensive_operation())
        await asyncio.sleep(my_interval)
        if shutdown_flag_is_set:
            print("Shutting down")
            break

    await asyncio.gather(*asyncio.all_tasks())

Also, in this case, since all the tasks are created in the same coroutine, you already have access to the tasks:

async def do_something_periodically():
    tasks = []
    while True:
        tasks.append(asyncio.create_task(my_expensive_operation()))
        await asyncio.sleep(my_interval)
        if shutdown_flag_is_set:
            print("Shutting down")
            break

    await asyncio.gather(*tasks)
| improve this answer | |
  • 1
    Very helpful! Just a note about the second method: I think that each task you append to the list represents an open file descriptor — this means that on (say) Linux, you could hit your open file limit (ulimit -n) before the coroutine is finished. – detly May 26 '15 at 3:47
  • Hi, What do you mean by "represents"? AFAIK, tasks don't open file objects. – Martin Richard Jun 30 '15 at 9:02
  • I have found, using the second method, that I get error messages about having too many open file descriptors. I think that each task requires a file descriptor to work. Note that a "file descriptor" is not the same thing as an open file, they might be also be those used by the select() call (which I believe the asyncio library uses). So if you have a user limit of a few thousand open file descriptors, and many more tasks than that, you may encounter problems. – detly Jun 30 '15 at 11:11
  • Having said that, I haven't actually confirmed that this is the problem, because I found other ways to solve the problem. The "too many file descriptors" error could have been related to some other mistake I made. So I could well be wrong about this. – detly Jun 30 '15 at 11:13
  • 3
    I can confirm that the only file descriptors opened by asyncio for its own use are the selector and a self-pipe, so 3 file descriptors. A Task object don't hold any resource object by itself so it must be an unrelated bug. – Martin Richard Jun 30 '15 at 13:15
10

As of Python 3.7 the above answer uses multiple deprecated APIs (asyncio.async and Task.all_tasks,@asyncio.coroutine, yield from, etc.) and you should rather use this:

import asyncio


async def my_expensive_operation(expense):
    print(await asyncio.sleep(expense, result="Expensive operation finished."))


async def do_something_periodically(expense, interval):
    while True:
        asyncio.create_task(my_expensive_operation(expense))
        await asyncio.sleep(interval)


loop = asyncio.get_event_loop()
coro = do_something_periodically(1, 1)

try:
    loop.run_until_complete(coro)
except KeyboardInterrupt:
    coro.close()
    tasks = asyncio.all_tasks(loop)
    expensive_tasks = {task for task in tasks if task._coro.__name__ != coro.__name__}
    loop.run_until_complete(asyncio.gather(*expensive_tasks))
| improve this answer | |
  • 1
    The flag shutdown_flag_is_set will never be set inside do_something_periodically. The KeyboardInterrupt will already have caused do_something_periodically to exit – Governa Nov 13 '18 at 22:49
  • True, I have added another approach – throws_exceptions_at_you Jan 8 '19 at 12:30
3

I'm not sure if this is what you've asked for but I had a similar problem and here is the ultimate solution that I came up with.

The code is python 3 compatible and uses only public asyncio APIs (meaning no hacky _coro and no deprecated APIs).

import asyncio

async def fn():
  await asyncio.sleep(1.5)
  print('fn')

async def main():
    print('main start')
    asyncio.create_task(fn()) # run in parallel
    await asyncio.sleep(0.2)
    print('main end')


def async_run_and_await_all_tasks(main):
  def get_pending_tasks():
      tasks = asyncio.Task.all_tasks()
      pending = [task for task in tasks if task != run_main_task and not task.done()]
      return pending

  async def run_main():
      await main()

      while True:
          pending_tasks = get_pending_tasks()
          if len(pending_tasks) == 0: return
          await asyncio.gather(*pending_tasks)

  loop = asyncio.new_event_loop()
  run_main_coro = run_main()
  run_main_task = loop.create_task(run_main_coro)
  loop.run_until_complete(run_main_task)

# asyncio.run(main()) # doesn't print from fn task, because main finishes earlier
async_run_and_await_all_tasks(main)

output (as expected):

main start
main end
fn

That async_run_and_await_all_tasks function will make python to behave in a nodejs manner: exit only when there are no unfinished tasks.

| improve this answer | |
2

Use a wrapper coroutine that waits until the pending task count is 1 before returning.

async def loop_job():
    asyncio.create_task(do_something_periodically())
    while len(asyncio.Task.all_tasks()) > 1:  # Any task besides loop_job() itself?
        await asyncio.sleep(0.2)

asyncio.run(loop_job())
| improve this answer | |
1

You might also consider using asyncio.shield, although by doing this way you won't get ALL the running tasks finished but only shielded. But it still can be useful in some scenarios.

Besides that, as of Python 3.7 we also can use the high-level API method asynio.run here. As Python core developer, Yury Selivanov suggests: https://youtu.be/ReXxO_azV-w?t=636
Note: asyncio.run function has been added to asyncio in Python 3.7 on a provisional basis.

Hope that helps!

import asyncio


async def my_expensive_operation(expense):
    print(await asyncio.sleep(expense, result="Expensive operation finished."))


async def do_something_periodically(expense, interval):
    while True:
        asyncio.create_task(my_expensive_operation(expense))
        # using asyncio.shield
        await asyncio.shield(asyncio.sleep(interval))


coro = do_something_periodically(1, 1)

if __name__ == "__main__":
    try:
        # using asyncio.run
        asyncio.run(coro)
    except KeyboardInterrupt:
        print('Cancelled!')
| improve this answer | |

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