Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I am using python web.py to design a small web app , here actually i am not using any database for fetching results/records, i will have a list of records(which i will get from some where according to requirement :) )

Below is my code

code.py

import web
from web import form

urls = (
    '/', 'index',
    '/urls', 'urls_result',
)

app =  web.application(urls, globals())
render = web.template.render('templates/')

class index:
    def GET(self):
        return render.home()

    def POST(self):
        result_list = [('Images', 'http://www.google.co.in/imghp?hl=en&tab=wi'), 
                       ('Maps', 'http://maps.google.co.in/maps?hl=en&tab=wl'), 
                       ('Play', 'https://play.google.com/?hl=en&tab=w8'), 
                       ('YouTube', 'http://www.youtube.com/?gl=IN&tab=w1'), 
                       ('News', 'http://news.google.co.in/nwshp?hl=en&tab=wn'),  
                       ('Gmail', 'https://mail.google.com/mail/?tab=wm'), 
                       ('Drive', 'https://drive.google.com/?tab=wo'), 
                       ('More»', 'http://www.google.co.in/intl/en/options/'), 
                       ('Web History', 'http://www.google.co.in/history/optout?hl=en'), 
                       ('Settings', 'http://www.google.co.in/preferences?hl=en'), 
                       ('Sign in', 'https://accounts.google.com/ServiceLogin?hl=en&continue=http://www.google.co.in/'), 
                       ('Advanced search', 'http://www.google.co.in/advanced_search?hl=en-IN&authuser=0'),
                       .............. 
                       ..............
                       .............. so on until 200 records      ]
        return render.recordslist(result_list)

if __name__ == "__main__":
    app.run()

home.html

$def with()
<html>
 <head>
   <title>Home Page</title>
  <body alink="green" link="blue" >
    <div class="main">
      <center>
              <form method="POST" action='urls'>
                  <input class="button" type="submit" name="submit" value="Submit" />
              </form>
      </center>
     </div>
  </body>
</html>

recordslist.html

$def with(result_list)
<html>
 <head>
    <title>List of records</title> 
 </head>
 <body> 
   <table>
     $for link in result_list:
     <tr>
        <td>$link[0]</td>
        <td>$link[1]</td>
     </tr>    
   </table> 
 </body>

So from the above code what i am doing is, when i run the server and hit the browser with ip returned from web.py, it is redirected to home page (with url / and template as home.html) which consists of form with a single button.

Now here i am not using any database to fetch the records, simply i have hardcored records which are in the form of list of tuples as you can see above.

So when the user clicks the submit button i displaying the records in the form of the table by directing to the /url that renders template recordslist.html

now the above process is working fine. But here the list of tuples/records may up to 200 or more, so i want to implement pagination for /url page.

I have googled a lot and all hits are found for retreiving the records from database, but not from the list, i am really confused on how to paginate the results with 10 pages for page.

So can anyone please let me now how to paginate the results/records from list from the above code.

share|improve this question

Get the Page

Firstly, you would have to pull the page out of the request from the user. Assuming that you will use a page querystring parameter, you can use this to determine the page number:

params = web.input()
page = params.page if hasattr(params, 'page') else 1

Use the Page

Once you have a page, all that pagination involves is returning a slice of results. The following function should give you the slices required (assuming that pages are 1-indexed):

def get_slices(page, page_size=10):
    return (page_size * (page - 1), (page_size * page)

This will return the lower and upper bound that you can use to slice your results list. So where you currently return render.recordslist(result_list), you could instead use:

lower, upper = get_slices(page)
return render.recordslist(result_list[lower:upper])
share|improve this answer
    
Thank you very much for reply, actually i am very newbie to web development, i am unable to understand the concept of getting the page of the request and some technical words from above, i request you to please incorporate in my above code with your style, so that i can understand the concept practically by viewing it... – shiva krishna Feb 21 '13 at 13:17
    
Shiva, I've clarified and expanded my instructions. – Daniel Watkins Feb 21 '13 at 13:25
    
k thanks, but how can we mention this in html i mean implementation of the url structure to get query strings in web.py ? , because we should options for like <previous> <next> , can u please instruct me(dont mind:)) in my above template code home.html ? – shiva krishna Feb 21 '13 at 13:34
    
Unfortunately, my web.py knowledge does not extend that far. You'll have to pass the previous and next page numbers in to the template and use that to render your links. – Daniel Watkins Feb 21 '13 at 13:35

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.