我有一个烦人的问题。我有这个简单的服务器代码(比方说):
#!/usr/bin/env python3
import wsgiref.simple_server
def my_func(env, start_response):
start_response('200 OK', [])
return [''.encode()]
server = wsgiref.simple_server.make_server(
'0.0.0.0',
19891,
my_func,
)
server.serve_forever()
但是,5 次尝试中的 1 次(因此大约 20% 的请求)的服务速度非常非常慢。当我在这个巨大的延迟到位时中断服务器处理时,我总是遇到以下异常:
Exception happened during processing of request from ('192.168.1.100', 3540)
Traceback (most recent call last):
File "/usr/lib/python3.5/socketserver.py", line 313, in _handle_request_noblock
self.process_request(request, client_address)
File "/usr/lib/python3.5/socketserver.py", line 341, in process_request
self.finish_request(request, client_address)
File "/usr/lib/python3.5/socketserver.py", line 354, in finish_request
self.RequestHandlerClass(request, client_address, self)
File "/usr/lib/python3.5/socketserver.py", line 681, in __init__
self.handle()
File "/usr/lib/python3.5/wsgiref/simple_server.py", line 119, in handle
self.raw_requestline = self.rfile.readline(65537)
File "/usr/lib/python3.5/socket.py", line 575, in readinto
return self._sock.recv_into(b)
KeyboardInterrupt
您知道如何避免这种烦人的事情吗?或者这种行为背后的原因是什么?
更新1:我已经尝试使用 TCP_NODELAY 修改 simple_server.py -> WSGIServer-> server_bind 函数,如下所示:
def server_bind(self):
"""Override server_bind to store the server name."""
import socket
self.socket.setsockopt(socket.IPPROTO_TCP, socket.TCP_NODELAY,1)
HTTPServer.server_bind(self)
self.setup_environ()
不幸的是没有变化:(