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I'm trying to write a basic web crawler in Python. The trouble I have is parsing the page to extract url's. I've both tried BeautifulSoup and regex however I cannot achieve an efficient solution.

As an example: I'm trying to extract all the member urls in Facebook's Github page. ( The code I've written extracts member URL's;

def getMembers(url):
  text = urllib2.urlopen(url).read();
  soup = BeautifulSoup(text);
  memberList = []
    #Retrieve every user from the company
    #url = ""

  data = soup.findAll('ul',attrs={'class':'members-list'});
  for div in data:
    links = div.findAll('li')
    for link in links:
          memberList.append("" + str(link.a['href']))

  return memberList

However this takes quite a while to parse and I was wondering if I could do it more efficiently, since crawling process is too long.

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Have you tried using a different parser? You can use the lxml parser with beautiful soup, making it quite quick. – kreativitea Nov 6 '12 at 22:23
@kreativitea I'm checking it right now. Thanks a lot for the help! – Ali Nov 6 '12 at 22:23
Sure, this not your internet connection? Processing itself should be quick. My suggestions: write your output to a file, and check how long it takes. – RParadox Nov 6 '12 at 22:40
measure separately how long it takes to get text (urllib2) and to find links in it (BeautifulSoup). You could use timeit.default_timer() or run python -mcProfile github might be responding sloowly. – J.F. Sebastian Nov 7 '12 at 0:51

3 Answers 3

up vote 1 down vote accepted

I suggest that you use GitHub API, that let you do exactly what you want to accomplish. Then it's only a matter of using a json parser and you are done.

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In order to prevent writing the scraper yourself you can use available ones. Maybe try scrapy, it uses python and it's available on github.

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Check the post Extremely Simple Web Crawler for a simple and easy to understand python script that crawls webpages and collects all the valid hyperlinks depending on the seed URL and depth:

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