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I am relatively new to using Scrapy or python for that matter. I am looking to extract the from a few different links and I am having issues using a HTMLXPathSelector expression (syntax). I have looked at extensive documentation for the proper syntax but have yet to figure out a solution.

Here is an example of a link I am trying to extract the 'img src' from:

Page I am trying to extract the img src url from

from scrapy.spider import BaseSpider
from scrapy.selector import HtmlXPathSelector

class GeekSpider(BaseSpider):
    name = "geekS"
    allowed_domains = ["geek.com"]
    start_urls = ["http://www.geek.com/articles/gadgets/kindle-fire-hd-8-9-on-sale-for-50-off-today-only-20121210/"]

    def parse(self, response):
        hxs = HtmlXPathSelector(response)
        imgurl = hxs.select("//div[@class='article']//a/img/@src").extract()
        return imgurl

I think I have figured out the syntax for the x.select statement but, since I am new to this syntax/method I am not sure.

Here is my items.py file, basically followed the scrapy tutorial for this:

from scrapy.item import Item, Field

class GeekItem(Item):
    imgsrc = Field()

To clarify: What I am looking to do is extract the img src url that is on the page. I dont need to extract all image src's which I have already figured out(much easier).

I am just looking to narrow it down and only extract that particular url of the img src. (I will be using this across multiple pages on this site)

Any help is greatly appreciated!

EDIT - Updated Code I was getting some syntax errors with geek = geek() So I changed it slightly to hopefully be easier to understand and function

share|improve this question
    
So you only want the image that is a clickable link (ie "kindle-fire-hd.jpg")? – Talvalin Dec 15 '12 at 3:01
    
Yes, exactly. I dont even want to return the image itself, just the url for the image so I can store it. – Twhyler Dec 15 '12 at 3:12
    
To avoid confusion, please update the first spider code that was posted and delete the second one. :) – Talvalin Dec 15 '12 at 4:07
    
Thanks for the tip, wasn't sure if it was more confusing to remove the old code or leave it – Twhyler Dec 15 '12 at 4:15
up vote 2 down vote accepted

I believe your xpath expression should be more like this. I tested it on another page (the Amazon shipping center article) and it returned all ten of the clickable images.

geek['imgsrc'] = x.select("//div[@class='article']//a/img/@src").extract()

To fix your other issue, you need to import GeekItem into your GeekSpider code.

from scrapy.spider import BaseSpider
from scrapy.selector import HtmlXPathSelector
from geekspider.items import GeekItem # I'm guessing the name of your project here

class GeekSpider(BaseSpider):
    name = "geekS"
    allowed_domains = ["geek.com"]
    start_urls = ["http://www.geek.com/articles/gadgets/kindle-fire-hd-8-9-on-sale-for-50-off-today-only-20121210/"]

    def parse(self, response):
        item = GeekItem()
        hxs = HtmlXPathSelector(response)
        item['imgsrc'] = hxs.select("//div[@class='article']//a/img/@src").extract()
        return item
share|improve this answer
    
Thanks! Since asking the question I have changed the spider up slightly due to some syntax errors. I attached the updated code above. I am no longer receiving the errors but when checking scraped_data.json all that is returned is a [ symbol. Any ideas? – Twhyler Dec 15 '12 at 3:55
    
I also attached my items.py file, I didn't think anything is wrong with it (as i followed the scrapy tutorial almost exact) but just to save possible time and confusion, I attached it above. I did notice I am receiving an error that says "spider must return Request, BaseItem or None." Thanks for the help! – Twhyler Dec 15 '12 at 4:01
    
Thanks for all your help, cleared up the confusion and the problems I was having. Now I just need to get this to work across multiple urls pulled from my db and pipeline it back into my db. Should be fun. Thanks again! – Twhyler Dec 15 '12 at 4:20

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