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I have a page based on a model object, and I want to have links to the previous and next pages. I don't like my current solution because it requires evaluating the entire queryset (to get the ids list), and then two more get queries. Surely there is some way this can be done in one pass?

def get_prev_and_next_page(current_page):
    ids = list(Page.objects.values_list("id", flat=True))
    current_idx = ids.index(current_page.id)
    prev_page = Page.objects.get(id=ids[current_idx-1])
    try:
        next_page = Page.objects.get(id=ids[current_idx+1])
    except IndexError:
        next_page = Page.objects.get(id=ids[0])
    return (prev_page, next_page)

Sort order is defined in the model, so doesn't have to be handled here, but note that you can't assume that ids are sequential.

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2 Answers 2

up vote 6 down vote accepted

Sounds like something the Paginator set to a threshold of 1 would do well at.

# Full query set...
pages = Page.objects.filter(column=somevalue)
p = Paginator(pages, 1)

# Where next page would be something like...
if p.has_next():
     p.page(p.number+1)

Documentation here and here.

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Thanks, I was vaguely aware of the Paginator, but hadn't realized that I could use it like that (i.e. with a threshold of 1, in effect just wrapping the queryset in a Paginator object with the has_next(), has_previous() methods). The only thing missing is that I don't start at the beginning of the paginator range, but it looks like I can get this with p.object_list.index(start_page). –  Michael Dunn Nov 7 '09 at 13:32

I'm new to Python and Django, so maybe my code is not optimal, but check this out:

def get_prev_and_next_items(target, items):
    ''' To get previous and next objects from QuerySet '''
    found = False
    prev = None
    next = None
    for item in items:
        if found:
            next = item
            break
        if item.id == target.id:
            found = True
            continue
        prev = item
    return (prev, next)

And in view something like that:

def organisation(request, organisation_id):
    organisation = Organisation.objects.get(id=organisation_id)
    ...
    prev, next = get_prev_and_next_items(organisation, Organisation.objects.all().order_by('type'))
    ...
    return render_to_response('reference/organisation/organisation.html', {
        'organisation': organisation,
        'prev': prev,
        'next': next,
    })

Definitely not optimal for «heavy» querysets, but in most cases works like a charm. :)

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