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I'm looking to set a default behavior in a template to be included.

I have a problem with Django template system not allowing to set variables in template (I've read about the Django Philosophy, and I understand it).

Here is my example problem:

  1. I want to include a template to render a newsfeed:

    template.html:
    ...
    {% include "_newsfeed.html" with slicing=":20" %}
    ...
    

    I would like to not be forced to enter the slicing argument, and set a default behavior, let's say ":20"

  2. In my _newsfeed.html , I would like to do (pseudo-code, it doesn't work):

    _newsfeed.html:
    ...
    {% if not slicing %}{% with slicing=":20" %}{% endif %}
    
    {% for content in newsfeed_content|slice:slicing %} 
        {# Display content #}
    {% endfor %}
    
    {% if not slicing %}{% endwith %}{% endif %}
    

Instead, I end up doing this below, that doesn't follow the DRY rule (and doesn't satisfy me!):

_newsfeed.html:
...
{% if not slicing %}{% with slicing=":20" %}

    {% for content in newsfeed_content|slice:slicing %} 
        {# Display content #}
    {% endfor %}

{% endwith %}{% else %}

    {% for content in newsfeed_content|slice:slicing %} 
        {# Display content #}
    {% endfor %}

{% endif %}

How should I do ?

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Cant you set the default in code before you pass to the template? –  trideceth12 Sep 5 '12 at 9:40
    
The _newsfeed.html in included in many parts of the webapp, and had the default behavior previously (i.e. all current include tags are {% include "_newsfeed.html" %}). I would like to add the possibility to customize the slicing without having to modify all other parts of the webapp. –  sebastien.worms Sep 5 '12 at 9:54
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1 Answer

up vote 1 down vote accepted

If you want to do this via your template not your views file, you could create your own filter based on slice e.g.

from django.template.defaultfilters import slice_filter

@register.filter("slice_default", is_safe=True)
def slice_filter_20(value, arg=":20"):
    return slice_filter(value, arg)
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