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I have links of the form:

http://youtubeinmp3.com/fetch/?video=LINK_TO_YOUTUBE_VIDEO_HERE

If you put links of this type in an <a> tag on a webpage, clicking them will download an MP3 of the youtube video at the end of the link. Source is here.

I'd like to mimic this process from the command-line by making post requests (or something of that sort), but I'm not sure how to do it in Python! Can I get any advice, please, or is this more difficult than I'm making it out to be?

  • There is a function in the standard library that does exactly this. – Stefano Sanfilippo May 31 '15 at 17:23
  • Awesome. What's the function? – user3757174 May 31 '15 at 17:25
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As Mark Ma mentioned, you can get it done without leaving the standard library by utilizing urllib2. I like to use Requests, so I cooked this up:

import os
import requests

dump_directory = os.path.join(os.getcwd(), 'mp3')
if not os.path.exists(dump_directory):
    os.makedirs(dump_directory)


def dump_mp3_for(resource):
    payload = {
        'api': 'advanced',
        'format': 'JSON',
        'video': resource
    }
    initial_request = requests.get('http://youtubeinmp3.com/fetch/', params=payload)
    if initial_request.status_code == 200:  # good to go
        download_mp3_at(initial_request)


def download_mp3_at(initial_request):
    j = initial_request.json()
    filename = '{0}.mp3'.format(j['title'])
    r = requests.get(j['link'], stream=True)
    with open(os.path.join(dump_directory, filename), 'wb') as f:
        print('Dumping "{0}"...'.format(filename))
        for chunk in r.iter_content(chunk_size=1024):
            if chunk:
                f.write(chunk)
                f.flush()

It's then trivial to iterate over a list of YouTube video links and pass them into dump_mp3_for() one-by-one.

for video in ['http://www.youtube.com/watch?v=i62Zjga8JOM']:
    dump_mp3_for(video)
  • Your edit is incorrect. Python 2 also supports the with context manager. – MattDMo May 31 '15 at 18:35
  • I did not realize that. Fixed. – Michael Blakeley May 31 '15 at 18:49
1

In its API Doc, it provides one version of URL which returns download link as JSON: http://youtubeinmp3.com/fetch/?api=advanced&format=JSON&video=http://www.youtube.com/watch?v=i62Zjga8JOM

Ok Then we can use urllib2 to call the API and fetch API result, then unserialize with json.loads(), and download mp3 file using urllib2 again.

import urllib2
import json

r = urllib2.urlopen('http://youtubeinmp3.com/fetch/?api=advanced&format=JSON&video=http://www.youtube.com/watch?v=i62Zjga8JOM')
content = r.read()
# extract download link
download_url = json.loads(content)['link']
download_content = urllib2.urlopen(download_url).read()
# save downloaded content to file
f = open('test.mp3', 'wb')
f.write(download_content)
f.close()

Notice the file should be opened using mode 'wb', otherwise the mp3 file cannot be played correctly. If the file is big, downloading will be a time-consuming progress. And here is a post describes how to display downloading progress in GUI (PySide)

0

If you want to download video or just the audio from YouTube you can use this module pytube it does all the hard work.

You can also list the audio only:

from pytube import YouTube

# initialize a YouTube object by the url
yt = YouTube("YOUTUBE_URL")

# that will get all audio files available
audio_list = yt.streams.filter(only_audio=True).all()
print(audio_list)  

And then download it:

# that will download the file to current working directory
yt.streams.filter(only_audio=True)[0].download()

Complete Code:

from pytube import YouTube
yt = YouTube ("YOUTUBE_URL")
audio = yt.streams.filter(only_audio=True).first()
audio.download()

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