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I am trying to find the most efficient way of displaying an image using django's template context loader. I have a static dir within my app which contains the image 'victoryDance.gif' and an empty static root dir at the project level (with assuming the paths within my and files are correct. what is the best view?

from django.shortcuts import HttpResponse
from django.conf import settings
from django.template import RequestContext, Template, Context

def image1(request): #  good because only the required context is rendered
    html = Template('<img src="{{ STATIC_URL }}victoryDance.gif" alt="Hi!" />')
    ctx = { 'STATIC_URL':settings.STATIC_URL}
    return HttpResponse(html.render(Context(ctx)))

def image2(request): # good because you don't have to explicitly define STATIC_URL
    html = Template('<img src="{{ STATIC_URL }}victoryDance.gif" alt="Hi!" />')
    return HttpResponse(html.render(RequestContext(request)))

def image3(request): # This allows you to load STATIC_URL selectively from the template end
    html = Template('{% load static %}<img src="{% static "victoryDance.gif" %}" />')
    return HttpResponse(html.render(Context(request)))

def image4(request): # same pros as image3
    html = Template('{% load static %} <img src="{% get_static_prefix %}victoryDance.gif" %}" />')
    return HttpResponse(html.render(Context(request)))

def image5(request):
    html = Template('{% load static %} {% get_static_prefix as STATIC_PREFIX %} <img  src="{{ STATIC_PREFIX }}victoryDance.gif" alt="Hi!" />')
    return HttpResponse(html.render(Context(request)))

thanks for answers These views all work!

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3 Answers 3

In your last example (image5) you should use {{ STATIC_PREFIX }} instead of {% STATIC_PREFIX %}

STATIC_PREFIX is variable, not a tag

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its always so simple when you see it! thanks! – JoshuaBox Jul 21 '12 at 7:41

If you need to render an image read a bit here and use your version of the following code:

For django version <= 1.5:

from django.http import HttpResponse

def my_image(request):
    image_data = open("/path/to/my/image.png", "rb").read()
    return HttpResponse(image_data, mimetype="image/png")

For django 1.5+ mimetype was replaced by content_type(so happy I'm not working with django anymore):

from django.http import HttpResponse

def my_image(request):
    image_data = open("/path/to/my/image.png", "rb").read()
    return HttpResponse(image_data, content_type="image/png")

Also there's a better way of doing things!

Else, if you need a efficient template engine use Jinja2

Else, if you are using Django's templating system, from my knowledge you don't need to define STATIC_URL as it is served to your templates by the "static" context preprocessor:

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Replace mimetype with content_type from django 1.5 – Chemical Programmer Jun 13 at 2:29

To avoid defining STATIC_URL explicitly, you can use a RequestContext when rendering your template. Just make sure django.core.context_processors.static is in your TEMPLATE_CONTEXT_PROCESSORS setting.

from django.template import RequestContext
return HttpResponse(html.render(RequestContext(request, ctx)))

Alternatively, you could use the static template tag.

html = Template('<img src="{% static "victoryDance.gif" %} alt="Hi!" />')

A third option is the get_static_prefix template tag.

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