20

I am using xmlrpclib.ServerProxy to make RPC calls to a remote server. If there is not a network connection to the server it takes the default 10 seconds to return a socket.gaierror to my program.

This is annoying when doing development without a network connection, or if the remote server is down. Is there a way to update the timeout on my ServerProxy object?

I can't see a clear way to get access to the socket to update it.

10 Answers 10

20

An more straightforward solution is at: http://www.devpicayune.com/entry/200609191448

import xmlrpclib 
import socket

x = xmlrpclib.ServerProxy('http:1.2.3.4')  
socket.setdefaulttimeout(10)        #set the timeout to 10 seconds 
x.func_name(args)                   #times out after 10 seconds
socket.setdefaulttimeout(None)      #sets the default back
  • How does the socket apply to the xmlrpclib? We are never setting the socket on x. – ashchristopher Nov 26 '09 at 15:33
  • 1
    @ashchristopher: I have not tested this code, but it looks like setdefaulttimeout is a global default value. So if xmlrpclib does not set any specific timeout value, it will probably use the global default. – MiniQuark Oct 18 '10 at 12:02
  • 1
    @MiniQuark: Correct, it's a global default (None) which means that new socket objects have no timeout. The setdefaulttimeout function has the advantage that it works for HTTPS/SSL sockets, where the other posted examples only work with HTTP. – Jeff Bauer Jan 28 '11 at 21:41
  • @Jeff Bauer: the community wiki example with HTTP can also be done with subclassing HTTPSConnection, HTTPS and SafeTransport. This should work the very same way. – housemaister Apr 8 '11 at 13:24
  • 1
    Definitely the winner for my code. I added 2 lines and done compared to adding 3 classes what the others suggest. TL;DR by the way. – Giszmo Jul 26 '13 at 1:20
16

clean non global version.

import xmlrpclib
import httplib


class TimeoutHTTPConnection(httplib.HTTPConnection):
    def connect(self):
        httplib.HTTPConnection.connect(self)
        self.sock.settimeout(self.timeout)


class TimeoutHTTP(httplib.HTTP):
    _connection_class = TimeoutHTTPConnection

    def set_timeout(self, timeout):
        self._conn.timeout = timeout


class TimeoutTransport(xmlrpclib.Transport):
    def __init__(self, timeout=10, *l, **kw):
        xmlrpclib.Transport.__init__(self, *l, **kw)
        self.timeout = timeout

    def make_connection(self, host):
        conn = TimeoutHTTP(host)
        conn.set_timeout(self.timeout)
        return conn


class TimeoutServerProxy(xmlrpclib.ServerProxy):
    def __init__(self, uri, timeout=10, *l, **kw):
        kw['transport'] = TimeoutTransport(
            timeout=timeout, use_datetime=kw.get('use_datetime', 0))
        xmlrpclib.ServerProxy.__init__(self, uri, *l, **kw)


if __name__ == "__main__":
    s = TimeoutServerProxy('http://127.0.0.1:9090', timeout=2)
    s.dummy()
  • Works perfectly for me, Python2.5 on Debian. BTW, you have a spurious '.' character in the imports, and 'import socket' is unused. – Jonathan Hartley Oct 5 '10 at 15:46
  • 5
    Not working for me on Python 2.7. When I make an RPC call, I get the error AttributeError: TimeoutHTTP instance has no attribute 'getresponse' – AFoglia Aug 3 '11 at 7:54
  • get AttributeError: module 'http.client' has no attribute 'HTTPClient' when I migrate to python3. – LetsOMG Aug 28 '18 at 22:51
5

I have looked at several ways to solve this issue and by far the most elegant is described here: https://seattle.cs.washington.edu/browser/seattle/trunk/demokit/timeout_xmlrpclib.py?rev=692

The technique was originally presented here, but this link is dead: http://blog.bjola.ca/2007/08/using-timeout-with-xmlrpclib.html

This works with Python 2.5 and 2.6. The new link claims to work with Python 3.0 as well.

  • Unfortunately that no longer works with the latest xmlrpclib as far as I can tell. – ashchristopher Dec 17 '08 at 4:02
  • Which version of Python are you using? – Troy J. Farrell Dec 17 '08 at 15:43
  • Link is now dead.. – bdbaddog Dec 1 '10 at 19:52
  • Added a link that uses the same source. – Troy J. Farrell Jul 20 '11 at 3:00
4

I wanted a small, clean, but also explicit version, so based on all other answers here, this is what I came up with:

import xmlrpclib


class TimeoutTransport(xmlrpclib.Transport):

    def __init__(self, timeout, use_datetime=0):
        self.timeout = timeout
        # xmlrpclib uses old-style classes so we cannot use super()
        xmlrpclib.Transport.__init__(self, use_datetime)

    def make_connection(self, host):
        connection = xmlrpclib.Transport.make_connection(self, host)
        connection.timeout = self.timeout
        return connection


class TimeoutServerProxy(xmlrpclib.ServerProxy):

    def __init__(self, uri, timeout=10, transport=None, encoding=None, verbose=0, allow_none=0, use_datetime=0):
        t = TimeoutTransport(timeout)
        xmlrpclib.ServerProxy.__init__(self, uri, t, encoding, verbose, allow_none, use_datetime)


proxy = TimeoutServerProxy(some_url)

I didn't realize at first xmlrpclib has old-style classes so I found it useful with a comment on that, otherwise everything should be pretty self-explanatory.

I don't see why httplib.HTTP would have to be subclassed as well, if someone can enlighten me on this, please do. The above solution is tried and works.

2

Here is code that works on Python 2.7 (probably for other 2.x versions of Python) without raising AttributeError, instance has no attribute 'getresponse'.


class TimeoutHTTPConnection(httplib.HTTPConnection):
    def connect(self):
        httplib.HTTPConnection.connect(self)
        self.sock.settimeout(self.timeout)

class TimeoutHTTP(httplib.HTTP):
    _connection_class = TimeoutHTTPConnection

    def set_timeout(self, timeout):
        self._conn.timeout = timeout

class TimeoutTransport(xmlrpclib.Transport):
    def __init__(self, timeout=socket._GLOBAL_DEFAULT_TIMEOUT, *args, **kwargs):
        xmlrpclib.Transport.__init__(self, *args, **kwargs)
        self.timeout = timeout

    def make_connection(self, host):
        if self._connection and host == self._connection[0]:
            return self._connection[1]

        chost, self._extra_headers, x509 = self.get_host_info(host)
        self._connection = host, httplib.HTTPConnection(chost)
        return self._connection[1]


transport = TimeoutTransport(timeout=timeout)
xmlrpclib.ServerProxy.__init__(self, uri, transport=transport, allow_none=True)
  • It looks like incomplete snippet. – Denis Barmenkov Jul 20 '12 at 13:01
1

Based on the one from antonylesuisse, a working version (on python >= 2.6).

# -*- coding: utf8 -*-
import xmlrpclib
import httplib
import socket

class TimeoutHTTP(httplib.HTTP):
   def __init__(self, host='', port=None, strict=None,
                timeout=socket._GLOBAL_DEFAULT_TIMEOUT):
        if port == 0:
            port = None
        self._setup(self._connection_class(host, port, strict, timeout))

class TimeoutTransport(xmlrpclib.Transport):
    def __init__(self, timeout=socket._GLOBAL_DEFAULT_TIMEOUT, *args, **kwargs):
        xmlrpclib.Transport.__init__(self, *args, **kwargs)
        self.timeout = timeout

    def make_connection(self, host):
        host, extra_headers, x509 = self.get_host_info(host)
        conn = TimeoutHTTP(host, timeout=self.timeout)
        return conn

class TimeoutServerProxy(xmlrpclib.ServerProxy):
    def __init__(self, uri, timeout=socket._GLOBAL_DEFAULT_TIMEOUT,
                 *args, **kwargs):
        kwargs['transport'] = TimeoutTransport(timeout=timeout,
                                    use_datetime=kwargs.get('use_datetime', 0))
        xmlrpclib.ServerProxy.__init__(self, uri, *args, **kwargs)
1

Here is a verbatim copy from http://code.activestate.com/recipes/473878/

def timeout(func, args=(), kwargs={}, timeout_duration=1, default=None):
    import threading
    class InterruptableThread(threading.Thread):
        def __init__(self):
        threading.Thread.__init__(self)
        self.result = None

        def run(self):
            try:
                self.result = func(*args, **kwargs)
            except:
                self.result = default

    it = InterruptableThread()
    it.start()
    it.join(timeout_duration)
    if it.isAlive():
        return default
    else:
        return it.result
0

Here another smart and very pythonic solution using Python's with statement:

import socket
import xmlrpc.client

class MyServerProxy:
    def __init__(self, url, timeout=None):
        self.__url = url
        self.__timeout = timeout
        self.__prevDefaultTimeout = None

    def __enter__(self):
        try:
            if self.__timeout:
                self.__prevDefaultTimeout = socket.getdefaulttimeout()
                socket.setdefaulttimeout(self.__timeout)
            proxy = xmlrpc.client.ServerProxy(self.__url, allow_none=True)
        except Exception as ex:
            raise Exception("Unable create XMLRPC-proxy for url '%s': %s" % (self.__url, ex))
        return proxy
    def __exit__(self, type, value, traceback):
        if self.__prevDefaultTimeout is None:
            socket.setdefaulttimeout(self.__prevDefaultTimeout)

This class can be used like this:

with MyServerProxy('http://1.2.3.4', 20) as proxy:
    proxy.dummy()
0

Based on the one from antonylesuisse, but works on Python 2.7.5, resolving the problem:AttributeError: TimeoutHTTP instance has no attribute 'getresponse'

class TimeoutHTTP(httplib.HTTP):
    def __init__(self, host='', port=None, strict=None,
                timeout=socket._GLOBAL_DEFAULT_TIMEOUT):
        if port == 0:
            port = None
        self._setup(self._connection_class(host, port, strict, timeout))

    def getresponse(self, *args, **kw):
        return self._conn.getresponse(*args, **kw)

class TimeoutTransport(xmlrpclib.Transport):
    def __init__(self,  timeout=socket._GLOBAL_DEFAULT_TIMEOUT, *l, **kw):
        xmlrpclib.Transport.__init__(self, *l, **kw)
        self.timeout=timeout

    def make_connection(self, host):
        host, extra_headers, x509 = self.get_host_info(host)
        conn = TimeoutHTTP(host, timeout=self.timeout)
        return conn

class TimeoutServerProxy(xmlrpclib.ServerProxy):
    def __init__(self, uri, timeout= socket._GLOBAL_DEFAULT_TIMEOUT, *l, **kw):
        kw['transport']=TimeoutTransport(timeout=timeout, use_datetime=kw.get('use_datetime',0))
        xmlrpclib.ServerProxy.__init__(self, uri, *l, **kw)

proxy = TimeoutServerProxy('http://127.0.0.1:1989', timeout=30)
print proxy.test_connection()
0

The following example works with Python 2.7.4.

import xmlrpclib
from xmlrpclib import *
import httplib

def Server(url, *args, **kwargs):
    t = TimeoutTransport(kwargs.get('timeout', 20))
    if 'timeout' in kwargs:
       del kwargs['timeout']
    kwargs['transport'] = t
    server = xmlrpclib.Server(url, *args, **kwargs)
    return server

TimeoutServerProxy = Server

class TimeoutTransport(xmlrpclib.Transport):

    def __init__(self, timeout, use_datetime=0):
        self.timeout = timeout
        return xmlrpclib.Transport.__init__(self, use_datetime)

    def make_connection(self, host):
        conn = xmlrpclib.Transport.make_connection(self, host)
        conn.timeout = self.timeout
        return connrpclib.Server(url, *args, **kwargs)

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.