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I'm actually not sure if it tries to stream the video at all, it just takes a few seconds longer than normal to parse a YouTube page.

I'm looking to parse a random Youtube video page to see if it has been removed or not, and I'm looking to make sure everything but the video itself gets loaded. I've got the following code that works, only that it takes a while for it to finish (I'm assuming the video starts to load which slows it down, haven't tested to confirm though)

import requests, bs4

url = ''
parameters = {'magic_var' : 'no_load'}
r = requests.get(url, params=parameters)
soup = bs4.BeautifulSoup(r.content)

My question is whether or not there's some sort of parameter that I can set to make sure the video doesn't start loading immediately on a page request.

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What are you going to do with the content? If you need certain information that can be retrieved from Youtub API, use the API. –  User007 Feb 21 '13 at 21:24
Do you have flash inside Python to load the video??? –  JBernardo Feb 21 '13 at 21:28
@User007 purely parse whether or not it's been removed, by looking for a h1 with a unavailable-message id. I will look into the YTAPI. –  TankorSmash Feb 21 '13 at 21:30
@JBernardo No, the example code is pretty much all I'll be doing with it. soup.Find is as far as I go. –  TankorSmash Feb 21 '13 at 21:30

2 Answers 2

up vote 1 down vote accepted

Your browser will stream the video on a separate request, after it loaded the page (and the flash player referenced by the page). The video is not part of the page data itself. Neither are the styles, scripts, and images; they are all just references encoded in the HTML page for the browser to interpret.

Just requesting the page in and of itself will not start the video being streamed, no.

In other words, all requests.get() will load is the basic HTML markup that your browser also loads. Unless you then interpret that HTML markup and start loading the resources referenced in the page, you will not automatically start loading anything else.

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Okay, so it's just that the page is complex enough that bs4 takes a a second or two to parse it. Thanks. –  TankorSmash Feb 21 '13 at 21:32
@TankorSmash: exactly. Perhaps use a different underlying parser (beautifulsoup can use several, perhaps lxml is going to be faster). Or perhaps the HTTP request is slow? –  Martijn Pieters Feb 21 '13 at 21:34
That was what I tried at first, but got a parsing error, though I didn't pay enough attention to the actual message to try and solve it. –  TankorSmash Feb 21 '13 at 21:36
With the 'lxml' setting or the 'xml' one? It could be the input HTML is malformed and that lxml wants to parse it in a stricter manner. –  Martijn Pieters Feb 21 '13 at 21:37
Should have been more specific, I just did something like lxml.etree.parse(r.content), I haven't played around with anything else in lxml. –  TankorSmash Feb 21 '13 at 21:43

How about use network analyzers and see where the video coming from? So far I understand that all the videos are coming from one host name: example:

and autoplay will eather be 1 - to start playin or 0.

If video_id is no longer exists, you will see something like Invalid parameters on the screen.

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That's a pretty clever trick, thanks! –  TankorSmash Feb 21 '13 at 22:33

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