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Update: Apparently I can't answer my own question within 8 hours, but I got it to work. Thanks guys!

I am having trouble getting scrapy to crawl the links on the start_url.

The following is my code below:

from scrapy.selector import HtmlXPathSelector
from scrapy.contrib.spiders import CrawlSpider, Rule
from scrapy.contrib.linkextractors.sgml import SgmlLinkExtractor

from dirbot.items import Website


class mydomainSpider(CrawlSpider):
    name = "mydomain"
    allowed_domains = ["mydomain.com"]
    start_urls = ["http://www.mydomain.com/cp/133162",]

    """133162 category to crawl"""

    rules = (
        Rule(SgmlLinkExtractor(allow=('133162', ), deny=('/ip/', ))),
    )

    def parse(self, response):
        hxs = HtmlXPathSelector(response)
        sites = hxs.select('//html')
        items = []

        for site in sites:
            item = Website()
            item['description'] = site.select('//meta[@name="Description"]/@content').extract()
            item['url'] = response.url
            item['title'] = site.xpath('/html/head/title/text()').extract()
            items.append(item)

        return items

I am new to python and am open to any advice. Thank you for your time!

share|improve this question
1  
What exactly is your trouble? What output are you getting? An error, incorrect output? – Pawel Miech Dec 6 '13 at 22:32
    
Thanks for your reply. I got it to work – Jason Youk Dec 7 '13 at 1:08
    
@JasonYouk please post your answer and mark it as the correct one, this is the proper way on stackoverflow – symbiotech Dec 7 '13 at 21:12
    
@symbiotech, i wasn't able to to at the time. It is now posted. – Jason Youk Dec 10 '13 at 0:08
up vote 2 down vote accepted

I got it to work, thanks guys!

from scrapy.selector import HtmlXPathSelector
from scrapy.contrib.spiders import CrawlSpider, Rule
from scrapy.contrib.linkextractors.sgml import SgmlLinkExtractor

from wallspider.items import Website


class mydomainSpider(CrawlSpider):
    name = "mydomain"
    allowed_domains = ["www.mydomain"]
    start_urls = ["http://www.mydomain/cp/133162",]

    rules = (Rule (SgmlLinkExtractor(allow=('133162', ),deny=('/ip/', 'search_sort=', 'ic=60_0', 'customer_rating', 'special_offers', ),)
    , callback="parse_items", follow= True),
    )

    def parse_items(self, response):
        hxs = HtmlXPathSelector(response)
        sites = hxs.select('//*')
        items = []

        for site in sites:
            item = Website()
            item['referer'] = response.request.headers.get('Referer')
            item['url'] = response.url
            item['title'] = site.xpath('/html/head/title/text()').extract()
            item['description'] = site.select('//meta[@name="Description"]/@content').extract()
            items.append(item)

        return items
share|improve this answer

a few observations:

  1. scrapy shell can be very useful for adjusting the right rule, to run see How can i use scrapy shell to with parameters on url
  2. items are sent to pipelines that should be configured in scrapy settings.py file
  3. consider using yield instead of accumulating the items in an array
share|improve this answer

It seems that the spider could crawl the url as you desire and the problem is how you parse the page.

What the extract() returns is a list, so if the type of item['description'] and item['title'] is not list, I think it will have some problems when storing those items.

The statement sites = sel.select('//html') seems not necessary and it may result in duplicate data.

share|improve this answer
    
sites = sel.select('//html') results in duplicates? what would be a better selector? – Jason Youk Dec 12 '13 at 0:31
    
@JasonYouk, I tested sel.select("//html") using scrapy shell and I observed that it returned two nodes. I think this statement is not important and could be omitted. Just use sel.select(XPATH_TO_DATA_YOU_WANT) – flyer Dec 12 '13 at 2:26

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