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 am writing a scraper for the following page:

http://www.conrad.at/ce/de/search/?search=dlan&initial=true&categorycode=&s_po=0&s_ps=100&s_of0=&s_oa0=true&s_of1=&s_oa1=true

i want to access the subpages of the list, e.g.:

http://www.conrad.at/ce/de/product/972583/devolo-dLAN-200-AVsmart-Starter-Kit/SHOP_AREA_17132&promotionareaSearchDetail=005

and

http://www.conrad.at/ce/de/product/973562/devolo-dLAN-200-AVmini-Starter-Kit/SHOP_AREA_17132&promotionareaSearchDetail=005

I need only information from the table with the name "Technische Daten" - as you can see in the links of the subpages there is sometimes a second table "Mengenrabatt" on the page

my code for accessing the table:

table = sublinkroot.cssselect("td")

which seems to return the information of the first table of the page...

is there a possibility to acces the information per table header oder the last table of the page (or how to select a specific table of the page)?

Looking forwart to your answers

share|improve this question

1 Answer 1

Instead of doing

table = sublinkroot.cssselect("td")

which will return you a list of TD elements, you could do

tables = sublinkroot.cssselect('table')
my_table = tables[-1]  # Get the last table on the page

or

my_table = sublinkroot.cssselect('table')[-1]

I also noted that the table you want is inside a div with an ID like:

mc_info_973562_technischedaten2

This from http://www.conrad.at/ce/de/product/973562/devolo-dLAN-200-AVmini-Starter-Kit/SHOP_AREA_17132&promotionareaSearchDetail=005 so presumably you should be able to parse the product ID out of the URL and use it to build something like ...

product_id = url.split('/')[6]
div = sublinkroot.cssselect('#mc_info_{pid}_technischedaten2'.format(pid=product_id))
the_table = div.cssselect('table')

Hope this helps.

share|improve this answer

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.