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I have a django template page, and want a link from this page, containing current URL, for example, I am on /article/11 and want link to /article/11/remove I tried the following construction:

<a href="{{ request.path }}remove">Remove article</a>

But I get link to /article/remove instead of /article/11/remove However when I change it to

<a href="{{ request.path }}">

I get link to /article/11

How can I get URL not trimmed?

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Also, can you post the actual output? Just what the <a> tags actually look like when they're rendered would be fine. –  fletom Jul 18 '11 at 19:58

1 Answer 1

up vote 0 down vote accepted

I don't see why it doesn't point you to /article/11remove, which is what it sounds like it should do, but either way, you're missing a slash. Try <a href="{{ request.path }}/remove"> instead.

However, that's really not the right way to do it. You shouldbe using {% url 'name_of_remove_view' %} to get the url, not assuming it's going to be wherever you are plus /remove.

Edit: In that case, your problem is probably that {{ request.path }} is not outputting anything at all. That would explain why just having "remove" would take you to /article/remove, and having "" would take you to where you currently are, due to the way that relative URLs work. You might want to make sure that you have a request object at all in your template environment.

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when I try <a href="{{ request.path }}/remove"> I get link to simply /remove/, but when I try to use {% url 'viewer.views.remove_article' %} I get TemplateError trying to access /article/11. In urls.py I have the following (r'^admin/edit_article/(?P<article_id>\d+)/remove$', 'viewer.views.remove_article'),. Rendered tags look exactly as I wrote: <a href="/remove">Remove article</a> –  pomel Jul 18 '11 at 20:15
    
@user695518 See my updated post above. –  fletom Jul 18 '11 at 20:19
    
Thanks! It was really no request object –  pomel Jul 18 '11 at 20:24

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