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I have model with CharField:

absolute_path_to_file = models.CharField(max_length=255)

And I want to display in template size of this file. How to do it? Filter?

{{ object.absolute_path_to_file|<????>size</????> }}
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1  
Why this field is CharField? It should be FileField –  Goin Feb 1 '12 at 11:28

3 Answers 3

up vote 3 down vote accepted

This is a way using the "custom filter" way:

import os
from django import template

register = template.Library()

@register.filter
def filesize(value):
    """Returns the filesize of the filename given in value"""
    return os.path.getsize(value)

That code should be in your django app in the folder "templatetags", for example in a python module named "utils.py". Then, to use the filter in a template this is an example:

{% load utils %}
{{ object.absolute_path_to_file|filesize }}

as well, you can anidate filters like this:

{{ object.absolute_path_to_file|filesize|filesizeformat }}
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In Django 1.6 there is no need for a custom filter. You can use the file.size property on your object like so: object.file.size|filesizeformat –  k0nG Apr 14 at 11:29
    
True, but for any reason, Nips says he has to use the absolute_path_to_file and he cannot change to a FileField –  Jose Luis de la Rosa Apr 19 at 11:34

Use FileField instead, then you can do

{{ object.absolute_path_to_file.size }}
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I can't do this, must use path –  Nips Feb 1 '12 at 11:22
2  
ok, then just do it how the default file storage would do it. e.g. code.djangoproject.com/browser/django/trunk/django/core/files/… - put a get_size method on your model. –  JamesO Feb 1 '12 at 11:35

If you can't use FileField, then you can create a custom filter that takes the argument and tries to get the file size of that using the standard Python os.path module.

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