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The following Scrapy CrawlSpider class code is for scraping links via following pagination from the data.ok.gov page.

class OklahomaFinanceSpider(CrawlSpider):
    name = "OklahomaFinanceSpider"
    allowed_domains = ["data.ok.gov"]
    start_urls = [
        "http://data.ok.gov/browse?f[0]=bundle_name%3ADataset&f[1]=im_field_categories%3A4191"
        ] 

    rules = (
    Rule(SgmlLinkExtractor(allow=(), restrict_xpaths=('//li[@class="pager-next"]',)), callback="parse_page", follow= True),
) 
def parse_page(self, response): 

        for href in response.xpath('//*[contains(concat(" ", normalize-space(@class), " "),"search-results apachesolr_search-results")]/h3/a/@href'):
        url = response.urljoin(href.extract())
        yield scrapy.Request(url, callback=self.parse_dir_contents)

However, the first page is not being scraped. What mistake am I making with the Rules?

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  • 1
    If you're talking about parsing the pages fetched from the start_urls, check parse_start_url. You can set parse_start_url = parse_page and you should be good
    – paul trmbrth
    Nov 20, 2015 at 19:25
  • I did add parse_start_url = parse_page after defining the rules, but in terminal, the error was "NameError: name 'parse_page' is not defined" . Any idea why I am getting it?
    – Usman Khaliq
    Nov 20, 2015 at 19:34
  • 1
    you can set parse_start_url = parse_page after the def parse_page(self, response): block
    – paul trmbrth
    Nov 20, 2015 at 19:36

1 Answer 1

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Posting @paul trmbrth comment as an answer here.

For parsing the pages fetched at the start_urls, set parse_start_url = parse_page after after the parse_page(self, response) definition.

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