Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I'm trying to grab the title out with of a webpage using the following statement:

titl1 = re.findall(r'<title>(.*?)</title>',the_webpage)

Using that, I get ['random webpage example1']. How do I remove the quotes and brackets?


I'm also trying to grab a set of links that change hourly (which is why I need the wildcard) using this: links = re.findall(r'(file=(.*?).mp3)',the_webpage).

I get

[('file=http://media.kickstatic.com/kickapps/images/3380/audios/944521.mp3', 
  'http://media.kickstatic.com/kickapps/images/3380/audios/944521'), 
 ('file=http://media.kickstatic.com/kickapps/images/3380/audios/944521.mp3', 
  'http://media.kickstatic.com/kickapps/images/3380/audios/944521'), 
 ('file=http://media.kickstatic.com/kickapps/images/3380/audios/944521.mp3', 
  'http://media.kickstatic.com/kickapps/images/3380/audios/944521')]

How do I get the mp3 links without the file=?


I also want to download the mp3 files and append them with the title of the website so it will show

random webpage example1.mp3

How would I do this? I'm still learning Python and regex and this is kinda stumping me.

share|improve this question
5  
regex is generally not a good candidate for parsing XML/HTML. You might find BeautifulSoup useful -- grabbing all links would be as simple as soup.find_all('a'). Take a look at the docs. –  Shawn Chin Aug 1 '12 at 20:59
2  
You should look at BeautifulSoup which is more suitable for url parsing. –  xbb Aug 1 '12 at 20:59
1  
Oh.. and you might find this useful for formatting your question: stackoverflow.com/editing-help –  Shawn Chin Aug 1 '12 at 21:02

4 Answers 4

At least for part 1, you could do

>>> mytitle = title1[0]
>>> print mytitle
random webpage example1

The regex is returning a list of strings that match, so you just need to grab the first item on the list.

Similarly, for part two, the regex is returning a list with tuples inside. You could do:

>>> download_links = [href for (discard, href) in links]
>>> print download_links
['http://media.kickstatic.com/kickapps/images/3380/audios/944521', 'http://media.kickstatic.com/kickapps/images/3380/audios/944521', 'http://media.kickstatic.com/kickapps/images/3380/audios/944521']  

As for download files, use urlib2 (at least for python 2.x, not sure about python 3.x). See this question for details.

share|improve this answer

For the 1st part titl1 = re.findall(r'<title>(.*?)</title>',the_webpage) will return a list and when you print a list it is printed with the brackets and quotes. So try print title[0] if you are sure there will always be only one match. (You can also try re.search instead)


For the second part if you change your re pattern from "(file=(.*?)\.mp3)" to "file=(.*?)\.mp3" you will get only the 'http://linkInThisPart/path/etc/etc' part you'll need to add the .mp3 extension though.

i.e

audio_links = [x +'.mp3' for x in re.findall(r'file=(.*?)\.mp3',web_page)]

To download the files you might want to look into urllib,urllib2

import urllib2
url='http://media.kickstatic.com/kickapps/images/3380/audios/944521.mp3'
req=urllib2.Request(url)
temp_file=open('random webpage example1.mp3','wb')
buffer=urllib2.urlopen(req).read()
temp_file.write(buff)
temp_file.close()
share|improve this answer
    
so when i use the links audio_links = [x +'.mp3' for x in re.findall(r'file=(.*?)\.mp3',web_page)] all i get for a return are ['', '', ''] –  jokajinx Aug 3 '12 at 13:15
    
the title worked great through thanks –  jokajinx Aug 3 '12 at 13:17
    
Try just a . instead of the \. ? –  ffledgling Aug 3 '12 at 18:15

First off, you don't want to remove the quotes, they're just there to tell you that the object is a string. The square brackets denote a list. Since re.findall finds all matches (not just 1), it gives them back to you as a list. However, because there was only 1 match, you have a list of length 1. NOTE: If there is more than one match, you'll end up with more than one element in the list and will have to worry about which one you use. In this case however, access the first (and only) index of the list to get the string in it:

x = ['random webpage example1']
title = x[0]
#title = 'random webpage example1'

The second part of your question deals with tuples (represented by the parentheses). Tuples are like lists with a few differences (for more information, see the documentation). What's important in this case is that you can still access them by index. To get the mp3 links without the "file=" prefix, just remove the prefix by taking a substring of the link. This is done the same way with a string as it is with a list (with the square brackets).

What you want to do is go through the entire list of tuples, look at the string in the first index of the tuple and remove the "file=" prefix from it.

files = [('file=http://media.kickstatic.com/kickapps/images/3380/audios/944521.mp3', 
    'http://media.kickstatic.com/kickapps/images/3380/audios/944521'), 
    ('file=http://media.kickstatic.com/kickapps/images/3380/audios/944521.mp3', 
    'http://media.kickstatic.com/kickapps/images/3380/audios/944521'), 
    ('file=http://media.kickstatic.com/kickapps/images/3380/audios/944521.mp3', 
    'http://media.kickstatic.com/kickapps/images/3380/audios/944521')]

urls = [x[0][5:] for x in files]
#urls = ['http://media.kickstatic.com/kickapps/images/3380/audios/944521.mp3',
#        'http://media.kickstatic.com/kickapps/images/3380/audios/944521.mp3',
#        'http://media.kickstatic.com/kickapps/images/3380/audios/944521.mp3']

The [x[0][5:] for x in files] syntax simply means construct a list (notice the outside brackets) of all the elements in files, but add x[0][5:] to the new list instead of just x (where x represents the element in the list). x[0] gets the first part of the tuple (the one with the mp3 link), and the [5:] means take the string from the 5th index (counting from 0) to the end. This syntax is called a list comprehension.

Now that you have your links in a list, you can use a built-in Python library like urllib to download the files for you. An excellent reference example can be found here.

Assuming you have a function called download_file(url, filename) that downloads files from url and saves them in a local file called filename, just iterate over the addresses in the list (urls in the previous example) one at a time, passing them into the function. Example:

for url in urls:
    download_file(url, url.split('/')[-1])

The url.split('/')[-1] splits the url into a list on the slashes, and the [-1] takes the last one. For example, if the url is http://domain.com/folder/file.mp3, it will produce file.mp3.

If you want to use the title of the webpage as the filename, just pass it in instead.

share|improve this answer

Code:

#!/usr/bin/env python

import re,urllib,urllib2

Url = "http://www.ihiphopmusic.com/music/rick-ross-sixteen-feat-andre-3000"
print Url
print 'test .............'
req = urllib2.Request(Url)
print "1"
response = urllib2.urlopen(req)
print "2"
the_webpage = response.read()
print "3"
titl1 = re.findall(r'<title>(.*?)</title>',the_webpage)
print "4"
a2 = [x +'.mp3' for x in re.findall(r'file=(.*?)\.mp3',the_webpage)]
print "5"
a2 = [x[0][5:] for x in a2]
print "6"
ti = titl1[0]
print ti
print "7"
print a2
print "8"

print "9"
#print the_page
print "10"

req=urllib2.Request(a2)
print "11"
temp_file=open(ti)
print "12"
buffer=urllib2.urlopen(req).read()
print "13"
temp_file.write(buff)
print "14"
temp_file.close()
print "15"
print "16"

Results

http://www.ihiphopmusic.com/music/rick-ross-sixteen-feat-andre-3000
test .............
1
2
3
4
5
6
Rick Ross - Sixteen (feat. Andre 3000)
7
['', '', '']
8
9
10
Traceback (most recent call last):
  File "grub.py", line 29, in <module>
    req=urllib2.Request(a2)
  File "/usr/lib/python2.7/urllib2.py", line 198, in __init__
    self.__original = unwrap(url)
  File "/usr/lib/python2.7/urllib.py", line 1056, in unwrap
    url = url.strip()
AttributeError: 'list' object has no attribute 'strip'
share|improve this answer
1  
Try to format your code. –  ffledgling Aug 6 '12 at 2:45

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.