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I'm using PyQt4's QtWebKit to a render a webpage in memory, because I need the javascript executed as I need to retrieve an embedded flash video element. Currently the code I'm using looks like this:

import sys
from PyQt4.QtGui import *
from PyQt4.QtCore import *
from PyQt4.QtWebKit import QWebSettings, QWebPage

class Render(QWebPage):
    def __init__(self, url): = QApplication(sys.argv)

        # Settings
        s = self.settings()
        s.setAttribute(QWebSettings.AutoLoadImages, False)
        s.setAttribute(QWebSettings.JavascriptCanOpenWindows, False)
        s.setAttribute(QWebSettings.PluginsEnabled, True)


    def _loadFinished(self, result):
        self.frame = self.mainFrame()

def get_page_source(url):
    r = Render(url)
    html = r.frame.toHtml()
    return html

Now this works OK, though it is extremely slow to initialize(taking anywhere between 5-30 seconds to start), however it only works OK for a single page. Meaning that on the first webpage, my final output looks like this:

    <embed type="application/x-shockwave-flash" src="/player.swf" width="560" height="440" style="undefined" id="mediaplayer" name="mediaplayer" quality="high" allowfullscreen="true" wmode="opaque" flashvars="width=560&amp;height=440&amp;autostart=true&amp;fullscreen=true&amp;file=FILELINK"></embed>

But on successive attempts, it looks like this:

                <a href="">ATTENTION:<br>This video will not play. You currently do not have Adobe Flash installed on this computer. Please click here to download it (it's free!)

What is happening here that I'm not aware of?

share|improve this question
What exactly are you trying to retrieve - just 'file=FILELINK'? –  Hugh Bothwell Jul 4 '12 at 23:38
@HughBothwell Yes, but that is not a problem. I need to know why it breaks after successive attempts to retrieve pages. –  Atheuz Jul 4 '12 at 23:43

1 Answer 1

up vote 1 down vote accepted

It looks like your javascript interpreter only kicks in on the first page; the second page loads but never gets its javascript run; but that's irrelevant to your real problem, which is that the name of the video file is hidden in the chunk of code that looks like

<script type="text/javascript">
    var googleCode = 'czEuYWRkVmFyaWFibGUoImZpbGUiLCJodHRwOi8vd2lsbGlhbS5yaWtlci53aW1wLmNvbS9sb2FkdmlkZW8vMDA5YzUwMzNkZmYyMDQ3MmJiYzBjMjk2NmJjNzI2MjIvNGZmNGQ2ZDYvd2ViLXZpZGVvcy9iZTVjYWI2YjcxNmU0OWExZjFiYzc3NGNlMjVlZDg0Yl93YWtlci5mbHYiKTs=';

If you call up a javascript console and run lxUTILsign.decode(googleCode); you get


The bad news is that lxUTILsign is thoroughly obfuscated; the good news is, that's irrelevant, because it is simply a base64 decoder, and Python already has one (batteries included, baby!).

import base64
import urllib2
import re

def get_video_url(page_url):
    html = urllib2.urlopen(url).read()
    match ="googleCode = '(.*?)'", html)
    if match is None:
        raise ValueError('googleCode not found')
    googleString = base64.b64decode(
    match ='","(.*?)"', googleString)
    if match is None:
        raise ValueError("didn't find video url")

url = ''
print get_video_url(url)

share|improve this answer
Welp, that's one way of doing it and quite a lot faster than actually rendering the page. I didn't know where it was getting the url from. Thanks a bunch. –  Atheuz Jul 5 '12 at 5:55

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