我有一个外部服务(ExternalDummyService),我在其中注册了一个回调。我想从该回调创建一个 observable 并订阅多个异步进程。
pyfiddle 中的完整代码:https ://pyfiddle.io/fiddle/da1e1d53-2e34-4742-a0b9-07838f2c13df * 请注意,在 pyfiddle 版本中,“睡眠”被替换为“for i in range(10000): foo + = i" 因为睡眠不能正常工作。
主要代码是这样的:
thread = ExternalDummyService()
external_obs = thread.subject.publish()
external_obs.subscribe(slow_process)
external_obs.subscribe(fast_process)
external_obs.connect()
thread.start()
class ExternalDummyService(Thread):
def __init__(self):
self.subject = Subject()
def run(self):
for i in range(5):
dummy_msg = { ... }
self.subject.on_next(dummy_msg)
def fast_process(msg):
print("FAST {0} {1}".format(msg["counter"], 1000*(time() - msg["timestamp"])))
sleep(0.1)
def slow_process(msg):
print("SLOW {0} {1}".format(msg["counter"], 1000*(time() - msg["timestamp"])))
sleep(1)
我得到的输出是这个,两个进程同步运行,并且 ExternalDummyService 在两个进程完成每次执行之前不会发出新值:
emitting 0
STARTED
SLOW 0 1.0008811950683594
FAST 0 2.0122528076171875
emitting 1
SLOW 1 1.5070438385009766
FAST 1 1.5070438385009766
emitting 2
SLOW 2 0.5052089691162109
FAST 2 0.9891986846923828
emitting 3
SLOW 3 1.0006427764892578
FAST 3 1.0006427764892578
emitting 4
SLOW 4 1.0013580322265625
FAST 4 1.0013580322265625
FINISHED
我想得到这样的东西,服务发出消息而不等待进程运行并且进程异步运行:
STARTED
emitting 0
emitting 1
emitting 2
FAST 0 2.0122528076171875
FAST 1 1.5070438385009766
emitting 3
SLOW 0 1.0008811950683594
FAST 2 0.9891986846923828
emitting 4
FAST 3 1.0006427764892578
SLOW 1 1.5070438385009766
FAST 4 1.0013580322265625
SLOW 2 0.5052089691162109
SLOW 3 1.0006427764892578
SLOW 4 1.0013580322265625
FINISHED
我尝试过使用 share()、ThreadPoolScheduler 和其他我不知道我在做什么的事情。
谢谢!