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I want to use the Python Scrapy module to scrape all the URLs from my website and write the list to a file. I looked in the examples but didn't see any simple example to do this.

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  • 7
    StackOverflow isn't a site to ask people to write your code for you - try something and then come ask a question about a specific problem you run into.
    – Amber
    Commented Mar 5, 2012 at 2:47
  • Have you tried the tutorial there? It's quite self explanatory. If you /have/ tried the tutorial and still have trouble, try posting some code that you've tried first (+1 @Amber) Commented Mar 5, 2012 at 2:58
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    Amber, and inspectorG4dget, I wrote the program that does this, but can't post it yet because I don't have enough reputation - there's a waiting time. I'll post the solution tomorrow morning.
    – Adam F
    Commented Mar 5, 2012 at 6:16

2 Answers 2

52

Here's the python program that worked for me:

from scrapy.selector import HtmlXPathSelector
from scrapy.spider import BaseSpider
from scrapy.http import Request

DOMAIN = 'example.com'
URL = 'http://%s' % DOMAIN

class MySpider(BaseSpider):
    name = DOMAIN
    allowed_domains = [DOMAIN]
    start_urls = [
        URL
    ]

    def parse(self, response):
        hxs = HtmlXPathSelector(response)
        for url in hxs.select('//a/@href').extract():
            if not ( url.startswith('http://') or url.startswith('https://') ):
                url= URL + url 
            print url
            yield Request(url, callback=self.parse)

Save this in a file called spider.py.

You can then use a shell pipeline to post process this text:

bash$ scrapy runspider spider.py > urls.out
bash$ cat urls.out| grep 'example.com' |sort |uniq |grep -v '#' |grep -v 'mailto' > example.urls

This gives me a list of all the unique urls in my site.

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    That's cool. You have got the answer. Now go ahead and accept the answer... and, oh yeah, there might be a "Self Learner" badge waiting for you. :)
    – Nishant
    Commented Mar 6, 2012 at 4:34
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    There's a small bug in this program. The line if not url.startswith('http://'): won't handle https links correctly. Commented Jun 27, 2015 at 17:24
  • @JoshuaSnider I updated it. But this is a short snippet of sample code, so it's not meant to be authoritative for all situations.
    – Adam F
    Commented Jun 27, 2015 at 22:18
15

something cleaner (and maybe more useful) would be using LinkExtractor

from scrapy.linkextractors import LinkExtractor

    def parse(self, response):
        le = LinkExtractor() # empty for getting everything, check different options on documentation
        for link in le.extract_links(response):
            yield Request(link.url, callback=self.parse)
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  • Does this return links inside the website or external also? Commented Sep 6, 2016 at 9:30

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