Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am using the following code to open a url and retrieve it's response :

def get_issue_report(query):
    request = urllib2.Request(query)
    response = urllib2.urlopen(request)
    response_headers = response.info()
    print response.read()

The response I get is as follows :

<?xml version='1.0' encoding='UTF-8'?><entry xmlns='http://www.w3.org/2005/Atom' xmlns:gd='http://schemas.google.com/g/2005' xmlns:issues='http://schemas.google.com/projecthosting/issues/2009' gd:etag='W/&quot;DUUFQH47eCl7ImA9WxBbFEg.&quot;'><id>http://code.google.com/feeds/issues/p/chromium/issues/full/2</id><published>2008-08-30T16:00:21.000Z</published><updated>2010-03-13T05:13:31.000Z</updated><title>Testing if chromium id works</title><content type='html'>&lt;b&gt;What steps will reproduce the problem?&lt;/b&gt;
&lt;b&gt;1.&lt;/b&gt;
&lt;b&gt;2.&lt;/b&gt;
&lt;b&gt;3.&lt;/b&gt;

&lt;b&gt;What is the expected output? What do you see instead?&lt;/b&gt;


&lt;b&gt;Please use labels and text to provide additional information.&lt;/b&gt;
 </content><link rel='replies' type='application/atom+xml' href='http://code.google.com/feeds/issues/p/chromium/issues/2/comments/full'/><link rel='alternate' type='text/html' href='http://code.google.com/p/chromium/issues/detail?id=2'/><link rel='self' type='application/atom+xml' href='https://code.google.com/feeds/issues/p/chromium/issues/full/2'/><author><name>rah...@google.com</name><uri>/u/@VBJVRVdXDhZCVgJ%2FF3tbUV5SAw%3D%3D/</uri></author><issues:closedDate>2008-08-30T20:48:43.000Z</issues:closedDate><issues:id>2</issues:id><issues:label>Type-Bug</issues:label><issues:label>Priority-Medium</issues:label><issues:owner><issues:uri>/u/kuchhal@chromium.org/</issues:uri><issues:username>kuchhal@chromium.org</issues:username></issues:owner><issues:stars>4</issues:stars><issues:state>closed</issues:state><issues:status>Invalid</issues:status></entry>

I would like to get rid of the characters like &lt, &gt etc. I tried using

response.read().decode('utf-8')

but this doesn't help much.

Just in case, the response.info() prints the following :

Content-Type: application/atom+xml; charset=UTF-8; type=entry
Expires: Fri, 01 Jul 2011 11:15:17 GMT
Date: Fri, 01 Jul 2011 11:15:17 GMT
Cache-Control: private, max-age=0, must-revalidate, no-transform
Vary: Accept, X-GData-Authorization, GData-Version
GData-Version: 1.0
ETag: W/"DUUFQH47eCl7ImA9WxBbFEg."
Last-Modified: Sat, 13 Mar 2010 05:13:31 GMT
X-Content-Type-Options: nosniff
X-Frame-Options: SAMEORIGIN
X-XSS-Protection: 1; mode=block
Server: GSE
Connection: close

Here's the URL : https://code.google.com/feeds/issues/p/chromium/issues/full/2

share|improve this question
1  
You can't decode via decode('utf-8') because those are not unicode code points but HTML escaped characters! :) [others have already answered to how properly decode them, I just wanted to explain why...] –  mac Jul 1 '11 at 11:25
    
possible duplicate of How do I unescape HTML entities in a string in Python 3.1? –  Andreas Jung Jul 1 '11 at 11:28
    
Mac/Sentinel, Thanks for the quick and great response! :-) –  Dexter Jul 1 '11 at 11:41

3 Answers 3

up vote 0 down vote accepted
from HTMLParser import HTMLParser
import urllib2


query="http://code.google.com/feeds/issues/p/chromium/issues/full/2"

def get_issue_report(query):
    request = urllib2.Request(query)
    response = urllib2.urlopen(request)
    response_headers = response.info()
    return response.read()

s = get_issue_report(query)

p = HTMLParser()

print p.unescape(s)

p.close()
share|improve this answer

Sentinel has explained how you can decode entity references like &lt; but there's a bit more to the problem than that.

The example you give suggests that you are reading an Atom feed. If you want to do this reliably in Python, then I recommend using Mark Pilgrim's Universal Feed Parser.

Here's how one would read the feed in your example:

>>> import feedparser
>>> d = feedparser.parse('http://code.google.com/feeds/issues/p/chromium/issues/full/2')
>>> len(d.entries)
1
>>> print d.entries[0].title
Testing if chromium id works
>>> print d.entries[0].description
<b>What steps will reproduce the problem?</b>
<b>1.</b>
<b>2.</b>
<b>3.</b>

<b>What is the expected output? What do you see instead?</b>


<b>Please use labels and text to provide additional information.</b>

Using feedparser is likely to be much more reliable and convenient than trying to do your own XML parsing, entity decoding, date parsing, HTML sanitization, and so on.

share|improve this answer
    
Gareth, Thanks! I should try this. It looks a better option. –  Dexter Jul 1 '11 at 11:39
    
Unfortunately, even feedparser is unable to convert all HTML entities like quot etc. Moreover, I am unable to add feedparser to my build path environment in Eclipse with PyDev plugin. Therefore, HTMLParser is the best option for me. –  Dexter Jul 2 '11 at 9:43

Use

xml.sax.saxutils.unescape()

http://docs.python.org/library/xml.sax.utils.html#module-xml.sax.saxutils

share|improve this answer
    
Is this the "Best" solution? There would be certain characters which may go unescaped. I would like to decode the data as I open the URL and rather not "process" it later. –  Dexter Jul 1 '11 at 11:23
    
obviously your URL returns the data exactly that way. –  Andreas Jung Jul 1 '11 at 11:24
    
How do I know, in what format I receive the data? –  Dexter Jul 1 '11 at 11:28
    
How should we know? Give us the URL :) –  Andreas Jung Jul 1 '11 at 11:29
    
When I use the JSON format I receive the data in a proper unicode format code.google.com/feeds/issues/p/chromium/issues/full/2?alt=json –  Dexter Jul 1 '11 at 11:31

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.