6

NEWEST UPDATE: I'm reducing my question to how to get all links from a site, including sublinks of each page etc, recursively.

I think I know how to get all sublinks of one page:

from bs4 import BeautifulSoup
import requests
import re

def get_links(site, filename):
    f=open(filename, 'w')
    url = requests.get(site)
    data = url.text
    soup = BeautifulSoup(data, 'lxml')
    for links in soup.find_all('a'):
        f.write(str(links.get('href'))+"\n")
    f.close()

r="https://en.wikipedia.org/wiki/Main_Page"
filename="wiki"
get_links(r,filename)

How do I recursively ensure all links on the site are also harvested and written onto the same file?

So I tried this, and it's not even compiling.

def is_url(link):
    #checks using regex if 'link' is a valid url
    url = re.findall('http[s]?://(?:[a-zA-Z]|[0-9]|[$-_@.&+#]|[!*/\\,() ]|(?:%[0-9a-fA-F][0-9a-fA-F]))+', link)
    return (" ".join(url)==link)

def get_links(site, filename):
    f=open(filename, 'a')
    url = requests.get(site)
    data = url.text
    soup = BeautifulSoup(data, 'lxml')
    for links in soup.find_all('a'):
        if is_url(links):
            f.write(str(links.get('href'))+"\n")
            get_links(links, filename)
    f.close()
6
  • Can you provide the part where the functions are being called? Also note that get_links and read_text leave file handlers open. That can be a problem.
    – bla
    May 10, 2018 at 23:42
  • @bla I will update this right away. Thanks for the tip also!
    – PolkaDot
    May 11, 2018 at 5:44
  • @polkadot have you considered using scrapy? May 11, 2018 at 7:11
  • @JonClements I actually started with scrapy, but i'm quite a novice and it proved too complex, if only because I could find more help online for beautiful soup.
    – PolkaDot
    May 11, 2018 at 7:12
  • @polkadot okay... Without knowing what difficulties you had - it's hard to help there - but it'd literally be changing 2/3 lines from a default spider template which is IMHO a lot easier than your current approach. You might also want to consider if something like gnu.org/software/wget would work for you. May 11, 2018 at 7:32

1 Answer 1

7

Answering your question, this is how I would fetch all links of a page with beautilfulsoup and save them to a file:

from bs4 import BeautifulSoup
import requests


def get_links(url):
    response = requests.get(url)
    data = response.text
    soup = BeautifulSoup(data, 'lxml')

    links = []
    for link in soup.find_all('a'):
        link_url = link.get('href')

        if link_url is not None and link_url.startswith('http'):
            links.append(link_url + '\n')

    write_to_file(links)
    return links


def write_to_file(links):
    with open('data.txt', 'a') as f:
        f.writelines(links)


def get_all_links(url):
    for link in get_links(url):
        get_all_links(link)


r = 'https://en.wikipedia.org/wiki/Main_Page'
write_to_file([r])
get_all_links(r)

This will, however, not prevent cicles (which would result in infinite recursion). In order to do so you may use a set to store already visited links and not visit them again.

You should really consider using something like Scrapy for this kind of task. I think a CrawlSpider is what you should look into.

For the purpose of extracting the urls from the wikipedia.org domain you may do something like this:

from scrapy.spiders import CrawlSpider
from scrapy.spiders import Rule
from scrapy.linkextractors import LinkExtractor

from scrapy import Item
from scrapy import Field


class UrlItem(Item):
    url = Field()


class WikiSpider(CrawlSpider):
    name = 'wiki'
    allowed_domains = ['wikipedia.org']
    start_urls = ['https://en.wikipedia.org/wiki/Main_Page/']

    rules = (
        Rule(LinkExtractor(), callback='parse_url'),
    )

    def parse_url(self, response):
        item = UrlItem()
        item['url'] = response.url

        return item

And run it with

scrapy crawl wiki -o wiki.csv -t csv

and you get the urls in a csv format on the wiki.csv file.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.