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.

How can I get the current URL and save it as a string in python?

I have some code that uses encodedURL = urllib.quote_plus to change the URL in a for loop going through a list. I cannot save encodedURL as a new variable because it's in a for loop and will always return the last item in the list.

My end goal is that I want to get the URL of a hyperlink that the user clicks on, so I can display certain content on that specific URL.

Apologies if I have left out important information. There is too much code and too many modules to post it all here. If you need anything else please let me know.

EDIT: To add more description:

I have a page which has a list of user comments about a website. The website is hyperlinked to that actual website, and there is a "list all comments about this website" link. My goal is that when the user clicks on list all comments about this website, it will open another page showing every comment that is about that website. The problem is I cannot get the website they are referring to when clicking 'all comments about this website'

Don't know if it helps but this is what I am using:

z=[ ] 

for x in S:
    y = list(x) 
    z.append(y) 



for coms in z:
    url = urllib.quote_plus(coms[2])
    coms[2] = "'Commented on:' <a href='%s'> %s</a> (<a href = 'conversation?page=%s'> all </a>) " %  (coms[2],coms[2], url)
    coms[3] += "<br><br>"

deCodedURL = urllib.unquote_plus(url)
text2 = interface.list_comments_page(db, **THIS IS THE PROBLEM**)

   page_comments = {
           'comments_page':'<p>%s</p>' % text2,
           }


if environ['PATH_INFO'] == '/conversation':
    headers = [('content-type' , 'text/html')]
    start_response("200 OK", headers)
    return templating.generate_page(page_comments)
share|improve this question
    
How are they referring to the website in the actual page? Is it something like <a href="all_comments.html">all comments about google.com</a>? –  Burhan Khalid May 5 '13 at 5:20
    
We have a method to call the comments that will display all the comments about a URL <a href = 'conversation?page=%s'> all </a> should have the %s as the URL so then when you call interface.list_comments_page(db, url) would work –  user2288946 May 5 '13 at 5:32
add comment

1 Answer 1

So your problem is you need to parse the URL for the query string, and urllib has some helpers for that:

>>> i
'conversation?page=http://www.google.com/'
>>> urllib.splitvalue(urllib.splitquery(i)[1])
('page', 'http://www.google.com/')
share|improve this answer
    
please check edit with code –  user2288946 May 5 '13 at 5:17
    
link, page_url = urllib.splitvalue(urllib.splitquery(deCodedURL)[1]) File "/System/Library/Frameworks/Python.framework/Versions/2.7/lib/python2.7/urllib.p‌​y", line 1172, in splitvalue TypeError: expected string or buffer –  user2288946 May 5 '13 at 5:47
    
This means your link didn't have a ?page= part. –  Burhan Khalid May 5 '13 at 5:48
    
So how do I resolve it? What is it supposed to be linking to –  user2288946 May 5 '13 at 5:49
    
Just do a simple check: parts = urllib.splitquery(deCodedURL); if parts[1]: # do the rest –  Burhan Khalid May 5 '13 at 5:51
add comment

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.