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Is anyone aware of a Django template tag that takes the current path and query string and inserts or replaces a query string value?

e.g. given a request to /some/custom/path?q=how+now+brown+cow&page=3&filter=person

The call {% urlparam 'page' 4 %} would generate /some/custom/path?q=how+now+brown+cow&page=4&filter=person.

This wouldn't be too difficult to write from scratch, but as this seems like a very common task, I would expect a tag like this to be built-in. However, after reading through the docs and googling, I can't seem to find anyone's who's publicized such a tag.

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  • This not a common case, its a sign of some other logic/structure issues. What's the use case for this? I mean, why are you changing the URL in the template and not fixing it the view that's rendering the template? – Burhan Khalid May 9 '13 at 19:17
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    @BurhanKhalid, I strongly disagree. Consider the following case. I want to render a series of pagination links on a search page. The URL contains several query parameters (like in my example). The pagination code that renders the pagination links shouldn't have to be explicitly given all these parameters. Django's admin seems to have this behavior everywhere. Clinking one link to refine the results shouldn't lose all existing parameters. – Cerin May 9 '13 at 19:46
  • Good use case, see my answer. I asked because sometimes a question like that is really asking for help with a solution rather than a problem. – Burhan Khalid May 9 '13 at 20:47
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Since I haven't used these tools by my own, I'll just refer you:

FYI, I've personally used jsurl library for this kind of url manipulations in javascript.

Hope that helps.

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Here's how I did it on a Django 1.3 project. Like you I expected to find this built in, but ended up coding it in the view:

def remove_url_param(url, params):
    if not isinstance(params, list):
        params = [params,]
    if isinstance(url, unicode):
        # urlencode doesn't like unicode
        url = url.encode('utf8')

    (scheme, netloc, path, query, fragment) = urlparse.urlsplit(url)
    param_dict = parse_qs(query)
    for p in params:
        try:
            del(param_dict[p])
        except KeyError:
            pass
    query = urllib.urlencode(param_dict, True)
    return urlparse.urlunsplit((scheme, netloc, path, query, fragment))

Then I used this to create base URLs:

page_url_unordered = putils.remove_url_param( request.get_full_path(), ['order', 'ajax'] )

Then in the template:

<a href="{{ page_url_unordered }}&amp;order=price">Price</a>
<a href="{{ page_url_unordered }}&amp;order=size">Size</a>
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I want to render a series of pagination links on a search page. The URL contains several query parameters (like in my example). The pagination code that renders the pagination links shouldn't have to be explicitly given all these parameters. Django's admin seems to have this behavior everywhere.

This is enabled by adding django.core.context_processors.request to TEMPLATE_CONTEXT_PROCESSORS (its not enabled by default). This will add a request variable to your templates, which is the HttpRequest object.

From there, you can use {{ request.get_full_path }} to get the current URL with the complete query string, and then append your custom query to it.

If your page is /search?q=foo+bar, and you want a new link to be /search?q=foo+bar&page=4, <a href="{{ request.get_full_path }}&page=4">page 4</a>.

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  • 2
    And what if your page is /search?q=foo+bar&page=1, and you want a new link to be /search?q=foo+bar&page=2 ? – Qlimax Jan 14 '15 at 21:33
  • Then you ask a new question :) – Burhan Khalid Jan 15 '15 at 3:15
  • Yes, I know... but maybe you were aware of a simple solution. I ended up making a template tag like this one stackoverflow.com/a/12423248/246435 – Qlimax Jan 15 '15 at 8:53

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