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How can I get request url in Scrapy parse function? I have a lot of urls in start_urls and some of them redirect my spider to homepage and as result I have empty item. So I need someting like item['start_url'] = request.url to store these urls. I'm use BaseSpider.

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did this method work? –  NKelner Nov 20 '13 at 22:33

2 Answers 2

The 'response' variable that's passed to parse() has the info you want. You shouldn't need to override anything.

eg.

def parse(self, response):
    print "URL: " + response.url
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You need to override BaseSpider's make_requests_from_url(url) function to assign the start_url to the item and then use the Request.meta special keys to pass that item to the parse function

from scrapy.http import Request

    # override method
    def make_requests_from_url(self, url):
        item = MyItem()

        # assign url
        item['start_url'] = url
        request = Request(url, dont_filter=True)

        # set the meta['item'] to use the item in the next call back
        request.meta['item'] = item
        return request


    def parse(self, response):

        # access and do something with the item in parse
        item = response.meta['item']
        item['other_url'] = response.url
        return item

Hope that helps.

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