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I am doing a CA and I have to parse the page using beautiful soup, I did with the code 

r = urlopen(url)    # download the page
res1 = str(r.read()) # put the content into a variable
soup = BeautifulSoup(res1,'html.parser')
for link in soup.find_all('a'):
    print(link.get('href'))

but then I have to print how many different pages have been crawled.

Is anybody has a tip to give me ?

Thank you very much

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6
  • Only one page is crawled in this code
    – OneCricketeer
    Mar 7, 2016 at 21:51
  • your comment says it all # download the **page**
    – danidee
    Mar 7, 2016 at 21:53
  • FWIW, you don't need to "put" the content into a variable like you do in line 2. You can just call it like soup = BeautifulSoup(res1.read(),'html.parser')
    – n1c9
    Mar 7, 2016 at 21:55
  • You don't even have to call read, BeautifulSoup(urlopen(url), ...) is sufficient - BeautifulSoup accepts file-like objects.
    – Steinar Lima
    Mar 7, 2016 at 22:55
  • "I am doing a CA..." --- Certificate Authority? Collision Analysis? College Application? Heavy Cruiser?
    – Kevin J. Chase
    Mar 7, 2016 at 23:03

1 Answer 1

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As @cricket_007 mentioned in the comments, your current code 'crawls' (i.e. retrieves) only one page.

If you need to print how many links did you find in the document, you can just do

print(len(soup.find_all('a')))

Note that soup.find_all('a') is a list of the corresponding tags, so it's len gives you a number of links.

If you really need to crawl website (e.g. to retrieve page, get all links from this page, follow every of these links, retrieve the page it refers to and so on), I'd suggest using RoboBrowser instead of "pure" BeautifulSoup.

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