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I'm currently developing a Django application which will make use of the infamous "pagination" technique. I'm trying to figure out how the django.core.paginator module works.

I have an application with a Question model. I will be listing all of the questions using this paginator. There will be 20 questions per page.

def show_question(question_pk):
    questions = Question.objects.all()
    paginator = Paginator(questions, 20)
    page      = ... # Somehow figure out which page the question is on
    return render_to_response('show_question.html', { 'page' : page })

In the view, where I list the different pages as "... 2, 3, 4, 5, 6, ..." I want to highlight the current page somehow, like many pages do.

There are really two things I want to know:

  1. How do I make Django figure out which page the question is located at?
  2. How would I write my template to properly "highlight" the currently visited page?

EDIT: Sorry, I forgot part of this question. I would also like any page except for the current one to be a link to /questions/{{ that_page.start_index }}. So basically every page link would link to the first question on that page.

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What do you mean you want every page except the current to link to the question on that page? How will the user ever change pages? –  Nick Presta Apr 14 '09 at 14:45
    
I don't want to pass any ?page=4 GET request parameter or anything. I will only use /question/4 for question 4, and then the view will figure out which page that question is on. This is why the page links are really directed to questions. –  Deniz Dogan Apr 14 '09 at 15:16
    
Wouldn't the first question on a page change as more questions are added, or possibly sorted? From a REST/HTTP perspective, this means that the URL does not refer to a real resource. This is why Django uses a GET parameter: to annotate the display characteristics of the resource the URL identifies. –  Jarret Hardie Apr 15 '09 at 1:21
    
While that is true, this particular application will only be used to view predefined questions. The questions will never change. –  Deniz Dogan Apr 15 '09 at 8:42
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3 Answers

up vote 4 down vote accepted

Hmm... I see from your comment that you don't want to do the ol' GET parameter, which is what django.core.paginator was written for using. To do what you want, I can think of no better way than to precompute the page that each question is on. As an example, your view will end up being something like:

ITEMS_PER_PAGE = 20
def show_question(question_pk):
    questions = Question.objects.all()
    for index, question in enumerate(questions):
        question.page = ((index - 1) / ITEMS_PER_PAGE) + 1
    paginator = Paginator(questions, ITEMS_PER_PAGE)
    page = paginator.page(questions.get(pk=question_pk).page)
    return render_to_response('show_question.html', { 'page' : page })

To highlight the current page in the template, you'd do something like

{% for i in page.paginator.page_range %}
    {% ifequal i page.number %}
        <!-- Do something special for this page -->
    {% else %}
        <!-- All the other pages -->
    {% endifequal %}
{% endfor %}

As for the items, you'll have two different object_lists to work with...

page.object_list

will be the objects in the current page and

page.paginator.object_list

will be all objects, regardless of page. Each of those items will have a "page" variable that will tell you which page they're on.

That all said, what you're doing sounds unconventional. You may want to rethink, but either way, good luck.

share|improve this answer
    
Oh boy, oh boy! page.paginator.object_list[i].page sounds like it's probably exactly what I was looking for! I'll check that out immediately. Thanks! –  Deniz Dogan Apr 15 '09 at 8:43
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Django, at least from version 1.2, allows us to complete this task by using pure default pagination template tags.

{% for page in article_list.paginator.page_range %}
  {% if page == article_list.number %}
    {{ page }}
  {% else %}
    <a href="/page{{ page }}">{{ page }}</a>
  {% endif %}
{% endfor %}

Where article_list is instance of

paginator = Paginator(article_list, 20)
    try:
        article_list = paginator.page(int(page))
    except (EmptyPage, InvalidPage):
        article_list = paginator.page(paginator.num_pages)
share|improve this answer
    
+1 wonderful... is it possible to write stackoverflow like pagination(ie: prev 1 ... 7 8 9 10 11 ... 500435 next). i mean the ... –  suhail Jun 20 at 10:13
    
@suhail, yes it is possible to do it, just modify the template using django template syntax. But I would rather recommend you to try django-endless-pagination app. It is simple to set up and has sane defaults for all sorts of pagination styles. –  Ivan Kharlamov Jun 20 at 16:40
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django-pagination should do what you want and comes wrapped in a pretty package you can just plug-in and use. It essentially moves the code from your views to the templates and a middleware.

EDIT: I just saw your edit. You can get the current objects on a page using {% autopaginate object_list %}, which replaces object_list with the current objects for any given page. You can iterate through it and if you want the first, you should be able to treat it like a list and do object_list[0].

If you want to keep this within your views, you could do something like this:

def show_question(question_pk):
    questions = Question.objects.all()
    paginator = Paginator(questions, 20)
    return render_to_response('show_question.html', { 'page' : paginator })

Within your template, you can access the current page you're on by doing:

# Gives you the starting index for that page.
# For example, 5 objects, and you're on the second page. 
# start_index will be 3.
page.start_index

# You can access the current page number with:
# 1-based index
page.number

With that, you should be able to do everything you need. There are a couple good examples here.

share|improve this answer
    
Thanks for your comment. However, to me it seems that django-pagination does nothing more than the built-in pagination stuff, but simply moves the logic from the code into the templates and a middleware. Is it so? –  Deniz Dogan Apr 14 '09 at 14:15
    
Essentially, yes. I updated my answer if you want to keep your pagination login inside your view. –  Nick Presta Apr 14 '09 at 14:44
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