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This is my working code:

from scrapy.item import Item, Field

class Test2Item(Item):
    title = Field()

from scrapy.http import Request
from scrapy.conf import settings
from scrapy.selector import HtmlXPathSelector
from scrapy.contrib.linkextractors.sgml import SgmlLinkExtractor
from scrapy.contrib.spiders import CrawlSpider, Rule

class Khmer24Spider(CrawlSpider):
    name = 'khmer24'
    allowed_domains = ['www.khmer24.com']
    start_urls = ['http://www.khmer24.com/']
    USER_AGENT = "Mozilla/5.0 (Windows NT 6.1; WOW64) AppleWebKit/537.22 (KHTML, like Gecko) Chrome/25.0.1364.97 Safari/537.22 AlexaToolbar/alxg-3.1"
    DOWNLOAD_DELAY = 2

    rules = (
        Rule(SgmlLinkExtractor(allow=r'ad/.+/67-\d+\.html'), callback='parse_item', follow=True),
    )

    def parse_item(self, response):
        hxs = HtmlXPathSelector(response)
        i = Test2Item()
        i['title'] = (hxs.select(('//div[@class="innerbox"]/h1/text()')).extract()[0]).strip(' \t\n\r')
        return i

It can scrap only 10 or 15 records. Always random numbers! I can't manage to get all pages that has the pattern like http://www.khmer24.com/ad/any-words/67-anynumber.html

I really suspect that Scrapy finished crawling because of duplicate the request. They have suggested to use dont_filter = True however, I have no idea of where to put it in my code.

I'm a newbie to Scrapy and really need help.

share|improve this question
    
idk if this is related but there are many affilliate links out there that do javascript redirects –  dm03514 Mar 4 '13 at 17:20
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1 Answer

up vote 3 down vote accepted
+100

1."They have suggested to use dont_filter = True however, I have no idea of where to put it in my code."

This argument is in BaseSpider, which CrawlSpider inherits from. (scrapy/spider.py) And it's set as True by default.

2."It can scrap only 10 or 15 records."

Reason: This is because the start_urls is not that good. In this problem, the spider starts crawling in http://www.khmer24.com/, and let's assume that it gets 10 urls to follow(which are satisfied the pattern). And then, the spider goes on crawling these 10 urls. But as these pages contain so little satisfied pattern, the spider gets a few urls to follow(even no urls), which results in stopping crawling.

Possible solution: The reason what I said above just restates icecrime's opinion. And so does the solution.

  • Suggest to use the 'All ads' page as start_urls. (You could also use the home page as start_urls and use the new rules.)

  • New rules:

    rules = (
        # Extract all links and follow links from them 
        # (since no callback means follow=True by default)
        # (If "allow" is not given, it will match all links.)
        Rule(SgmlLinkExtractor()), 
    
        # Extract links matching the "ad/any-words/67-anynumber.html" pattern
        # and parse them with the spider's method parse_item (NOT FOLLOW THEM)
        Rule(SgmlLinkExtractor(allow=r'ad/.+/67-\d+\.html'), callback='parse_item'),
    )
    

Refer: SgmlLinkExtractor, CrawlSpider example

share|improve this answer
    
Hey there, when I run this code, it crawls every single pages in the site. However, I want it to crawl base on the rule that I have set only. –  Vicheanak Mar 7 '13 at 3:44
    
Do you want to crawl the whole site and get all urls that match the pattern? –  XuJiawan Mar 7 '13 at 5:35
    
the url that matches with the pattern khmer24.com/ad/any-words/67-anynumber-or-words.html –  Vicheanak Mar 7 '13 at 6:43
    
You just want to crawl all the urls which match the pattern, right?! But there is a problem, as I said above, if you didn't add another rule, you would only get a few urls.(Because urls you get in the first time contain little urls match the pattern, and the spider will stop as it hasn't urls to follow.) –  XuJiawan Mar 8 '13 at 5:36
    
I think what you want is to parse the page whose url matches the pattern, do you? In my solution, the spider will crawl the whole website in order to get every urls which matches, but not parses every url it gets. It just parses the urls which match the pattern. If you're still confused about this problem, email me. –  XuJiawan Mar 8 '13 at 5:45
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