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 have a django application, a blog. The entries for the blog can be accessed through a /year/month/day/slug url pattern, it works fine. My problem is, I want to have an archive list accessible to any template on my website. So i thought the best solution would be to create a templatetag that would create and return the info i needed.

I wanted the format of the archive to be as such:

August 2011
July 2011
etc..
2010
2009
2008
etc..

So only show months for the current year.

This is the tag i came up with:

from django.template import Library, Node, TemplateSyntaxError
from core.blog.models import Entry
import datetime, calendar

register = Library()

class ArchiveNode(Node):
    def __init__(self, varname):
        self.varname = varname

    def render(self, context):
        temp = list()

        #Get Info about the first post
        first = Entry.objects.order_by("pub_date")[0]
        first_year = first.pub_date.year
        first_month = first.pub_date.month

        #Loop over years and months since first post was created
        today = datetime.datetime.today()
        this_year = today.year
        this_month = today.month

        for year in range(this_year - first_year):
            if year != this_year:
                temp += (year,'/blog/'+year+'/')
            else:
                for month in range(this_month - first_month):
                    month_name = calendar.month_name[month]
                    temp += (month_name+" "+year,'/blog/'+year+'/'+month+'/')
        context[self.varname] = temp.reverse()
        return ''

@register.tag
def get_archive(parser, token):
    bits = token.contents.split()
    if len(bits) != 3:
        raise TemplateSyntaxError, "get_archive tag takes exactly 1 argument"
    if bits[1] != 'as':
        raise TemplateSyntaxError, "second argument to get_archive tag must be 'as'"
    return ArchiveNode(bits[2])

As you can see im returning a list of tuples, containing a name and a url. Would this be valid in django? or do i need to pack the information in some django container? (It's doen't seem to return anything)

This is the site im working on ctrl-dev.com/blog. The archive will be in the green box on the lower right.

share|improve this question

1 Answer 1

up vote 0 down vote accepted

There is no need to return something special. Django is just Python, so it is your choice what you want to return. In this case I would recommend to return dictionary like this (just inventing) {{'title':'some title if you want','year': 'year if you want', 'url': url}, {...}, ...}. Then in template you just run through like:

{% for entry in returned_dict %}
  <a href="{{ entry.url }}">{{ entry.title }}</a>
{% endfor %}

Also I would recommend to not hardcode the link in to the code. Read https://docs.djangoproject.com/en/dev/topics/http/urls/ about url resolvers, then https://docs.djangoproject.com/en/dev/ref/templates/builtins/?from=olddocs#url about {% url %} template tag. You can name the urls and later you can get the urls to the stuff you want without hardcoding it in the code. This will help in future ;)

Hope that helped.

share|improve this answer
    
thanks for your reply, helped alot :) Links were great reading, makes sense. Ended up doing like you suggested, return a dict with title, year, month. Then retrieve the URL like this {% url EntryByMonth link.year link.month %} –  mXed Aug 11 '11 at 9:31
    
Glad to hear that it helped! –  Ignas Butėnas Aug 11 '11 at 11:42

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.