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This is a server in Cherrypy that I programmed and I want add the query string.

But when I use the redirect the site and it appears that does not work with the localhost:8080/index?foo=1&foo=2 Why?

My project

import cherrypy
import urllib
#import requests

class Root(object):
    @cherrypy.expose
    def index(self):
        jsondict = [('foo', '1'), ('foo', '2')]
        p = urllib.urlencode(jsondict)
        #url = urllib.urlopen("http://localhost:8080?%s" % params)
        #urlVar = 1
        #urlVar2 = 2
        #requests.get("localhost:8080/?", params =p)

        raise cherrypy.HTTPRedirect("localhost:8080/index?" + p)

cherrypy.config.update({

        'server.socketPort': 8080

})
cherrypy.quickstart(Root())

But I want add the variable on the Url while the site's starting

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1 Answer 1

up vote 1 down vote accepted

According to docs you must not specify host and also you need to have a view that handles your query parameters, so do something like this:

class Root(object):
    @cherrypy.expose
    def index(self, foo=None):
        if not foo:
            jsondict = [('foo', '1'), ('foo', '2')]
            p = urllib.urlencode(jsondict)
            #url = urllib.urlopen("http://localhost:8080?%s" % params)
            #urlVar = 1
            #urlVar2 = 2
            #requests.get("localhost:8080/?", params =p)

            raise cherrypy.HTTPRedirect("/index?" + p)

        return foo
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1  
GooD!!!! 404 Not Found Unexpected query string parameters: foo, fo Traceback (most recent call last): File "/usr/lib/python2.7/dist-packages/cherrypy/_cprequest.py", line 656, in respond response.body = self.handler() File "/usr/lib/python2.7/dist-packages/cherrypy/lib/encoding.py", line 188, in call self.body = self.oldhandler(*args, **kwargs) File "/usr/lib/python2.7/dist-packages/cherrypy/_cpdispatch.py", line 40, in call raise sys.exc_info()[1] HTTPError: (404, 'Unexpected query string parameters: foo, fo') Why now this error? –  Mirko Cianfarani Apr 6 '13 at 22:19
1  
Because your index handler/view does not accept any parameters. Read the docs to see how to define a view with parameters. –  gatto Apr 6 '13 at 22:22
1  
See the edit for advice. In your original version yes, the view always redirected to itself. –  gatto Apr 6 '13 at 22:33
1  
ok I find the solution for Unexpected query string parameters but now I have problem that the server is redirecting the request for this address in a way that will never complete. Now I open the new question –  Mirko Cianfarani Apr 6 '13 at 22:37
1  
See my example, it works ok without going into redirect loop. –  gatto Apr 6 '13 at 22:39

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