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I get the following error when running the below code.

urllib2.HTTPError: HTTP Error 400: Bad Request

Can someone help me with this? I was also wondering if there was a way to run this through requests? (and skip urllib, urllib2 altogether)


import simplejson as json

import urllib2, urllib, string

import sys

read_token = 'some_token'

saveout = sys.stdout
outfile = open('sentiment.txt', 'w')
sys.stdout = outfile

feedUrl='' + read_token + '&limit=5'

def GetJsonResponse(requestUrl, content = None):
        request = urllib2.Request(requestUrl)
        response = urllib2.urlopen(request, content)
        result = json.load(response)
        return result

def GetJsonResponse(requestUrl, content = None):
        response = requests.get("requestUrl",  )
        result = json.load(response)
        return result

response = GetJsonResponse(feedUrl)
for counter in range(0, len(response['data'])):
    print response['data'][counter]['from']['name']
    print '-------------------------'
    print response['data'][counter]['message']
    response.decode('utf-8', 'ignore')

sys.stdout = saveout
share|improve this question
unwise to publically publish the access token. –  isedev Feb 1 '13 at 23:53
user requests the library it will make your life easier. and don't publish your access token. –  lv10 Feb 2 '13 at 0:06
Thanks isedev and lv10 –  Jay Setti Feb 2 '13 at 0:16
for requests the library you can do something like: request = requests.get(requestUrl) –  lv10 Feb 2 '13 at 0:38
I forgot to say that since you are dealing with json data, you could also use builtin JSON decoder which you can use by simply using request.json(). I also noticed that in your GetJsonResponse function response has a missing parameter after the , –  lv10 Feb 2 '13 at 0:48

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