How do I fix a "JSONDecodeError: No JSON object could be decoded: line 1 column 0 (char 0)"?

Question 1

How do I fix a "JSONDecodeError: No JSON object could be decoded: line 1 column 0 (char 0)"?

python json twitter simplejson

user374372 · Jul 30, 2010 · Viewed 19.4k times · Source

Answer

Answer

There were a couple problems with your initial code. First you never read in the content from twitter, just opened the url. Second in the url you set a callback (twitterSearch). What a call back does is wrap the returned json in a function call so in this case it would have been twitterSearch(). This is useful if you want a special function to handle the returned results.

import simplejson
import urllib2

def search_twitter(quoted_search_term): 
    url = "http://search.twitter.com/search.json?&q=%%23%s" % quoted_search_term
    f = urllib2.urlopen(url)
    content = f.read()
    json = simplejson.loads(content)
    return json

Question 2

I'm trying to get Twitter API search results for a given hashtag using Python, but I'm having trouble with this "No JSON object could be decoded" error. I had to add the extra % towards the end of the URL to prevent a string formatting error. Could this JSON error be related to the extra %, or is it caused by something else? Any suggestions would be much appreciated.

A snippet:

import simplejson
import urllib2

def search_twitter(quoted_search_term): 
    url = "http://search.twitter.com/search.json?callback=twitterSearch&q=%%23%s" % quoted_search_term
    f = urllib2.urlopen(url)
    json = simplejson.load(f)
    return json

How do I fix a "JSONDecodeError: No JSON object could be decoded: line 1 column 0 (char 0)"?

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