43
import urllib2

website = "WEBSITE"
openwebsite = urllib2.urlopen(website)
html = getwebsite.read()

print html

So far so good.

But I want only href links from the plain text HTML. How can I solve this problem?

10 Answers 10

101

Try with Beautifulsoup:

from BeautifulSoup import BeautifulSoup
import urllib2
import re

html_page = urllib2.urlopen("http://www.yourwebsite.com")
soup = BeautifulSoup(html_page)
for link in soup.findAll('a'):
    print link.get('href')

In case you just want links starting with http://, you should use:

soup.findAll('a', attrs={'href': re.compile("^http://")})

In Python 3 with BS4 it should be:

from bs4 import BeautifulSoup
import urllib.request

html_page = urllib.request.urlopen("http://www.yourwebsite.com")
soup = BeautifulSoup(html_page, "html.parser")
for link in soup.findAll('a'):
    print(link.get('href'))
| improve this answer | |
  • BeautifulSoup can not automatically close meta tags, for example. The DOM model is invalid and there is no guarantee that you'll find what you are looking for. – Antonio Dec 28 '13 at 16:16
  • another problem with bsoup is, the format of the link will change from its original. So, if you want to change the original link to point to another resource, at the moment I still have no idea how yo do this with bsoup. Any suggestion? – swdev Oct 28 '14 at 0:54
  • Not all links contain http. E.g., if you code your site to remove the protocol, the links will start with //. This means just use whatever protocol the site is loaded with (either http: or https:). – reubano Jan 15 '17 at 17:19
  • 5
    A reminder for people came across this answer recently, BeautifulSoup3 is no longer supported in Python 3, the latest version would be BeautifulSoup4, you can import it with from bs4 import BeautifulSoup – jackz314 Dec 2 '19 at 23:51
30

You can use the HTMLParser module.

The code would probably look something like this:

from HTMLParser import HTMLParser

class MyHTMLParser(HTMLParser):

    def handle_starttag(self, tag, attrs):
        # Only parse the 'anchor' tag.
        if tag == "a":
           # Check the list of defined attributes.
           for name, value in attrs:
               # If href is defined, print it.
               if name == "href":
                   print name, "=", value


parser = MyHTMLParser()
parser.feed(your_html_string)

Note: The HTMLParser module has been renamed to html.parser in Python 3.0. The 2to3 tool will automatically adapt imports when converting your sources to 3.0.

| improve this answer | |
  • I come to realize that, if a link contains the special HTML character such as &, it get converted into its textual representation, such as & in this case. How do you preserve the original string? – swdev Oct 28 '14 at 3:20
  • 1
    I likte this solution best, since it doesn't need external dependencies – DomTomCat Apr 27 '16 at 6:09
  • 1
    @swdev - I realize this is a few years late, but url encoding/decoding is how to handle that. – StingyJack Apr 4 '19 at 20:17
14

Look at using the beautiful soup html parsing library.

http://www.crummy.com/software/BeautifulSoup/

You will do something like this:

import BeautifulSoup
soup = BeautifulSoup.BeautifulSoup(html)
for link in soup.findAll("a"):
    print link.get("href")
| improve this answer | |
  • Thanks! But use link instead a. – Evgenii Mar 4 '14 at 12:30
8

Using BS4 for this specific task seems overkill.

Try instead:

website = urllib2.urlopen('http://10.123.123.5/foo_images/Repo/')
html = website.read()
files = re.findall('href="(.*tgz|.*tar.gz)"', html)
print sorted(x for x in (files))

I found this nifty piece of code on http://www.pythonforbeginners.com/code/regular-expression-re-findall and works for me quite well.

I tested it only on my scenario of extracting a list of files from a web folder that exposes the files\folder in it, e.g.:

enter image description here

and I got a sorted list of the files\folders under the URL

| improve this answer | |
5

My answer probably sucks compared to the real gurus out there, but using some simple math, string slicing, find and urllib, this little script will create a list containing link elements. I test google and my output seems right. Hope it helps!

import urllib
test = urllib.urlopen("http://www.google.com").read()
sane = 0
needlestack = []
while sane == 0:
  curpos = test.find("href")
  if curpos >= 0:
    testlen = len(test)
    test = test[curpos:testlen]
    curpos = test.find('"')
    testlen = len(test)
    test = test[curpos+1:testlen]
    curpos = test.find('"')
    needle = test[0:curpos]
    if needle.startswith("http" or "www"):
        needlestack.append(needle)
  else:
    sane = 1
for item in needlestack:
  print item
| improve this answer | |
4

Here's a lazy version of @stephen's answer

from urllib.request import urlopen
from itertools import chain
from html.parser import HTMLParser

class LinkParser(HTMLParser):
    def reset(self):
        HTMLParser.reset(self)
        self.links = iter([])

    def handle_starttag(self, tag, attrs):
        if tag == 'a':
            for name, value in attrs:
                if name == 'href':
                    self.links = chain(self.links, [value])


def gen_links(f, parser):
    encoding = f.headers.get_content_charset() or 'UTF-8'

    for line in f:
        parser.feed(line.decode(encoding))
        yield from parser.links

Use it like so:

>>> parser = LinkParser()
>>> f = urlopen('http://stackoverflow.com/questions/3075550')
>>> links = gen_links(f, parser)
>>> next(links)
'//stackoverflow.com'
| improve this answer | |
4

Using requests with BeautifulSoup and Python 3:

import requests 
from bs4 import BeautifulSoup


page = requests.get('http://www.website.com')
bs = BeautifulSoup(page.content, features='lxml')
for link in bs.findAll('a'):
    print(link.get('href'))
| improve this answer | |
2

This is way late to answer but it will work for latest python users:

from bs4 import BeautifulSoup
import requests 


html_page = requests.get('http://www.example.com').text

soup = BeautifulSoup(html_page, "lxml")
for link in soup.findAll('a'):
    print(link.get('href'))

Don't forget to install "requests" and "BeautifulSoup" package and also "lxml". Use .text along with get otherwise it will throw an exception.

"lxml" is used to remove that warning of which parser to be used. You can also use "html.parser" whichever fits your case.

| improve this answer | |
0

This answer is similar to others with requests and BeautifulSoup, but using list comprehension.

Because find_all() is the most popular method in the Beautiful Soup search API, you can use soup("a") as a shortcut of soup.findAll("a") and using list comprehension:

import requests
from bs4 import BeautifulSoup

URL = "http://www.yourwebsite.com"
page = requests.get(URL)
soup = BeautifulSoup(page.content, features='lxml')
# Find links
all_links = [link.get("href") for link in soup("a")]
# Only external links
ext_links = [link.get("href") for link in soup("a") if "http" in link.get("href")]

https://www.crummy.com/software/BeautifulSoup/bs4/doc/#calling-a-tag-is-like-calling-find-all

| improve this answer | |
0

Simplest way for me:

from urlextract import URLExtract
from requests import get

url = "sample.com/samplepage/"
req = requests.get(url)
text = req.text
# or if you already have the html source:
# text = "This is html for ex <a href='http://google.com/'>Google</a> <a href='http://yahoo.com/'>Yahoo</a>"
text = text.replace(' ', '').replace('=','')
extractor = URLExtract()
print(extractor.find_urls(text))

output:

['http://google.com/', 'http://yahoo.com/']

| improve this answer | |

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