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Is it possible to parse a django template and only render a specific tag ? This snippet is close to what I'm looking for but it doesn't return the entire template. Basically if I have this template as input

<html>
<title>{% block title%}{% endblock %}</title>
<body>
{% block content %}
{% mycustomtag "args" %}
{% endblock content %}
</body>
</html>

and i want to only render mycustomtag this is the output Im looking for

<html>
<title>{% block title%}{% endblock %}</title>
<body>
{% block content %}
<p>Result from mycustomtag</p>
{% endblock content %}
</body>
</html>

Thanks.

share|improve this question
    
Why not just parse the template all at once? Template parsing is not cheap. –  Chris Pratt Jul 5 '12 at 19:48
    
Im generating a template from this template, and want to keep all tags the same except for "mycustomtag" :) –  Paulo Jul 5 '12 at 20:15
    
Is it feasible to do it manually? I.e., view the HTML of a page, copy the output of mycustomtag and paste it in (a copy of) the Django template? –  Simeon Visser Jul 5 '12 at 21:34
    
Too cumbersome for user. –  Paulo Jul 5 '12 at 23:56

1 Answer 1

up vote 2 down vote accepted

If I properly understand your question, then there is a way to do that, using the {% verbatim %} tag. It will be added in Django 1.5, but for now you can use it as your custom tag - here is the source: https://code.djangoproject.com/ticket/16318

The only drawback here is that you cannot use directly this template, it needs double rendering. If this is what you need - then everything is OK.

To use it, all you need to do is to enclose the other tags with {% verbatim %} :

{% load my_custom_tags %}  <-- this is needed to load the 'verbatim' and 'mycustomtag' tags
{% verbatim %}
<html>
<title>{% block title%}{% endblock %}</title>
<body>
{% block content %}
{% endverbatim %}

{% mycustomtag "args" %}

{% verbatim %}
{% endblock content %}
</body>
</html>
{% endverbatim %}

I've made a simple test with this template:

@register.simple_tag
def mycustomtag(a):
    return "<p>%s</p>" % a

....

from django.template import loader, Context
print loader.get_template("test.html").render(Context({}))

This prints the following:

<html>
<title>{%block title%}{%endblock%}</title>
<body>
{%block content%}

<p>args</p>

{%endblock content%}
</body>
</html>

Hope this could be helpful.

share|improve this answer
    
You sir are awesome, I'll try it out. Thanks –  Paulo Jul 6 '12 at 16:38
    
I have used the code for the tag i found here gist.github.com/1313862 , unfortunately the {% block %} tags are still being rendered. Did this work for you ? If so which Django version ? –  Paulo Jul 6 '12 at 17:32
    
Do you try to render the template as a normal template ? Then the blocks will not be rendered. They will be rendered if processed again. I'm not quite sure what exactly is your goal. There is a way to render the template with and without the verbatim tags, but will require a little hack. Please explain how your code work, so I can help more. –  Tisho Jul 6 '12 at 18:10
    
I was rendering the wrong template :(. It works now, thanks :) –  Paulo Jul 6 '12 at 20:01

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