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I'm pretty new to Python and Scrapy and this site has been an invaluable resource so far for my project, but now I'm stuck on a problem that seems like it'd be pretty simple. I'm probably thinking about it the wrong way. What I want to do is add a column to my output CSV that lists the URL that each row's data was scraped from. In other words, I want the table to look like this:

item1    item2    item_url
a        1        http://url/a
b        2        http://url/a
c        3        http://url/b
d        4        http://url/b    

I'm using psycopg2 to get a bunch of urls stored in database that I then scrape from. The code looks like this:

class MySpider(CrawlSpider):
    name = "spider"

    # querying the database here...

    #getting the urls from the database and assigning them to the rows list
    rows = cur.fetchall()

    allowed_domains = ["www.domain.com"]

    start_urls = []

    for row in rows:

        #adding the urls from rows to start_urls
        start_urls.append(row)

        def parse(self, response):
            hxs = HtmlXPathSelector(response)
            sites = hxs.select("a bunch of xpaths here...")
            items = []
            for site in sites:
                item = SettingsItem()
                # a bunch of items and their xpaths...
                # here is my non-working code
                item['url_item'] = row
                items.append(item)
            return items

As you can see, I wanted to make an item that just takes the url that the parse function is currently on. But when I run the spider, it gives me "exceptions.NameError: global name 'row' is not defined." I think that this is because Python doesn't recognize row as a variable within the XPathSelector function, or something like that? (Like I said, I'm new.) Anyway, I'm stuck, and any help would be much appreciated.

share|improve this question
    
Not sure in which line you are getting the exception. Ideally, you should defined the parse function outside the loop and provide row as the third parameter to the parse function. Can you also provide output for: print type(rows) –  GodMan Aug 20 '12 at 5:40
    
Hi, thanks for the reply. The exception is happening on this line: item['url_item'] = row - it says: exceptions.NameError: global name 'row' is not defined. Also, print type(rows) shows it as a list. Thanks for the advice, I'll try that. –  ckz Aug 20 '12 at 7:41
    
Hmm, given the structure of the typical Scrapy parse function, I'm not sure how to re-write it so that it accepts 3 arguments. –  ckz Aug 20 '12 at 8:04

1 Answer 1

up vote 2 down vote accepted

Put the start requests generation not in class body but in start_requests():

class MySpider(CrawlSpider):

    name = "spider"
    allowed_domains = ["www.domain.com"]

    def start_requests(self):
        # querying the database here...

        #getting the urls from the database and assigning them to the rows list
        rows = cur.fetchall()

        for url, ... in rows:
            yield self.make_requests_from_url(url)


    def parse(self, response):
        hxs = HtmlXPathSelector(response)
        sites = hxs.select("a bunch of xpaths here...")

        for site in sites:
            item = SettingsItem()
            # a bunch of items and their xpaths...
            # here is my non-working code
            item['url_item'] = response.url

            yield item
share|improve this answer
    
That worked beautifully, thanks so much! –  ckz Aug 20 '12 at 10:37

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