Mar*_*lla 1 python stack-trace python-asyncio
这是我尝试过的:
>>> import asyncio
>>> @asyncio.coroutine
... def f():
... print("RUN")
... raise Exception("ciao")
...
>>> asyncio.ensure_future(f())
<Task pending coro=<coro() running at /usr/lib/python3.4/asyncio/coroutines.py:139>>
>>> loop = asyncio.get_event_loop()
>>> loop.run_forever()
RUN
并且不检索堆栈跟踪。如果我运行协程asyncio.run_until_complete(f())就没有问题。
您必须在某处等待协程的结果,并且会在该上下文中引发异常。所有协程都需要“等待”;asyncio.run_until_complete()会为你隐含地做到这一点,但run_forever()不能,因为它应该永远运行。这是一个如何查看异常的示例(使用 Python 3.5 语法):
>>> import asyncio
>>> import traceback
>>> async def f():
... raise Exception("Viva la revolución!")
...
>>> task_f = asyncio.ensure_future(f())
>>> async def g():
... try:
... await task_f
... except Exception:
... traceback.print_exc()
...
>>> task_g = asyncio.ensure_future(g())
>>> asyncio.get_event_loop().run_forever()
Traceback (most recent call last):
File "<ipython-input-5-0d9e3c563e35>", line 3, in g
await task_f
File "/usr/lib/python3.5/asyncio/futures.py", line 363, in __iter__
return self.result() # May raise too.
File "/usr/lib/python3.5/asyncio/futures.py", line 274, in result
raise self._exception
File "/usr/lib/python3.5/asyncio/tasks.py", line 239, in _step
result = coro.send(None)
File "<ipython-input-3-928dc548dc3e>", line 2, in f
raise Exception("Viva la revolución!")
Exception: Viva la revolución!
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