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I am trying to get the final redirected URL in scrapy. For example, if an anchor tag has a specific format:

<a href="http://www.example.com/index.php" class="FOO_X_Y_Z" />

Then I need to get the URL that URL redirects to (if it does, if its 200 then OK). For example, I get the appropriate anchor tags like this:

def parse (self, response)  
    hxs     = HtmlXPathSelector (response);
    anchors = hxs.select("//a[@class='FOO_X_Y_Z']/@href");

    // Lets assume anchor contains the actual link (http://...)
    for anchor in anchors:
        final_url = get_final_url (anchor);   // << I would need something like this

        // Save final_url

So if I visited http://www.example.com/index.php and that would send me through 10 redirects and finally it would stop at http://www.example.com/final.php - this is what I would need get_final_url() to return.

I thought of hacking my way to a solution but am asking here to see if scrapy has one already provided?

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2 Answers

It's pretty simple:

print response.url #(inside parse() )
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Actually, thats the URL of where the resource I just got is located. I need the final URL of the link in the href attribute. I wasn't clear enough I guess. Thank you anyway. –  vanneto Oct 10 '12 at 8:25
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up vote 0 down vote accepted

Again, assuming anchor contains an actual URL, I went and accomplished it with urllib2:

def parse (self, response)  
    hxs     = HtmlXPathSelector (response);
    anchors = hxs.select("//a[@class='FOO_X_Y_Z']/@href");

    // Lets assume anchor contains the actual link (http://...)
    for anchor in anchors:
        final_url = urllib2.open(anchor, None, 1).geturl()

        // Save final_url

urllib2.open() returns a file-like object with two additional methods, one of them being geturl() which returns the final URL (after all redirects have been followed). Its not part of Scrapy, but it works.

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