Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I currently have a piece of code which will grab a product title, description, and price and for that it works great. However, I also need it to get the image URL which is where my dilemma is. I tried using a xpath inside the loop I have at the bottom and it lists out ALL the images that are equal to 220 on EVERY product which I dont want at all. So basically I get something like this....

product 1 Title here
product 1 Description here
product 1 price here
http://www.test.com/product1.jpg
http://www.test.com/product2.jpg
http://www.test.com/product3.jpg
http://www.test.com/product4.jpg


product 2 Title here
product 2 Description here
product 2 price here
http://www.test.com/product1.jpg
http://www.test.com/product2.jpg
http://www.test.com/product3.jpg
http://www.test.com/product4.jpg

Where as I obviously want product 1 to just have http://www.test.com/product1.jpg and product 2 to have http://www.test.com/product2.jpg etc, etc. The images are just in a div tag with no class or ID hence why I didnt just easily put them into a css selector. Im really new to ruby/nokogiri so any help would be great.

require 'nokogiri'
require 'open-uri'


url = "http://thewebsitehere"

data = Nokogiri::HTML(open(url))

products = data.css('.item')



products.each do |product|
    puts product.at_css('.vproduct_list_title').text.strip
    puts product.at_css('.vproduct_list_descr').text.strip
    puts product.at_css('.price-value').text.strip
    puts product.xpath('//img[@width = 220]/@src').map {|a| a.value }

end
share|improve this question
    
We can't help you much if you don't include the HTML you are trying to parse. –  the Tin Man Feb 27 '13 at 19:38

2 Answers 2

up vote 2 down vote accepted

Try changing:

puts product.xpath('//img[@width = 220]/@src').map {|a| a.value }

to:

puts product.xpath('.//img[@width = 220]/@src').map {|a| a.value }

The point of the '.' there is to say you want all images that are children of the current node (e.g. so you're not peeking at product 2's images).

share|improve this answer
    
Fantastic! That did it, thanks a ton man. –  critic Feb 27 '13 at 19:45

File#basename will return only the filename:

File.basename('http://www.test.com/product4.jpg')
#=> "product4.jpg"

So you probably want something like this:

puts product.xpath('//img[@width = 220]/@src').map {|a| File.basename(a.value) }
share|improve this answer
    
Ah, sorry maybe I didnt explain my situation clearly enough. I actually dont want all the different product images of the entire page on each different product. I want just product 1 to have test.com/product1.jpg and product 2 to have test.com/product2.jpg i dont want product 2 to have test.com/product1.jpg test.com/product2.jpg test.com/product3.jpg test.com/product4.jpg If that makes more sense. I edited my original post to help clarify. Thanks for that tid bit though, good to know. –  critic Feb 27 '13 at 19:35

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.