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I wanted to print some success messages from get method back to the index page(home.html) i.e template page with the help of query string. I have redirected to the index page using

    return HttpResponseRedirect("/mysite/q="+successfailure)

Now i wanted to print the string success along with other contents in the index file( or template file / home.html file).

I have searched for the solution and found that " django.core.context_processors.request context " should be added to the settings. But i did not find the place to add it. I am currently using python 2.7 and django 1.4.3.

I also tried to use

    render_to_response("home.html",{'q':successfailure})

however, the result is printed in the current page(addContent.html- which i dont want) but i want to send the url into '/mysite/' and print the result there.

Please suggest the appropriate solution. Thanks in advance.

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2 Answers 2

up vote 3 down vote accepted

these are the default context processors: https://docs.djangoproject.com/en/dev/ref/settings/#template-context-processors

TEMPLATE_CONTEXT_PROCESSORS = (
    "django.contrib.auth.context_processors.auth",
    "django.core.context_processors.debug",
    "django.core.context_processors.i18n",
    "django.core.context_processors.media",
    "django.core.context_processors.static",
    "django.core.context_processors.tz",
    "django.contrib.messages.context_processors.messages",
    #add this
    "django.core.context_processors.request" 
)

if its not in your settings than you haven't overridden it yet. do that now.

then in your template, something like this:

{% if request.GET.q %}<div>{{ request.GET.q }}</div>{% endif %}

also, im noticing in your link url you are not using a querystring operator ? should be:

return HttpResponseRedirect("/mysite/?q="+successfailure)
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Much neater than my solution. +1 from me. –  Aidan Ewen Feb 17 '13 at 20:16
    
Perfect solution. Thanks –  user2081099 Feb 17 '13 at 21:38
    
I'm glad I could help. could you please accept this as the solution? –  Francis Yaconiello Feb 17 '13 at 23:39

I'm not sure I understand the question, but you can access the querystring in your view with request.GET.

So you could adjust the view that renders home.html by adding the successfailure variable into the context. Something like -

def home_view(request):
    #....
    successfailure = request.GET
    return render(request, 'home.html', {'succsessfailure': successfailure.iteritems()})

Then iterate throught the variables in your template

{% for key, value in successfailure %}
    <p>{{ key }} {{ value }}</p>
{% endfor %}

If there's a specific key in the querystring you can get the value with request.GET['your_key'] and drop the call to iteritems() (along with the iteration in the template).

share|improve this answer
    
should have a comma between key and value for key, value –  Francis Yaconiello Feb 17 '13 at 20:10
    
OK, thanks Francis, I've corrected my answer. –  Aidan Ewen Feb 17 '13 at 20:11
    
Thanks this method also worked for me –  user2081099 Feb 17 '13 at 21:28
    
@user2081099 you can mark my answer as the accepted answer by clicking the big grey tick in the top left of my answer (personally I prefer Francis' solution) –  Aidan Ewen Feb 17 '13 at 21:31
    
Top suggestion @AidanEwen, I needed to trigger a bootstrap modal window on form.is_valid() failure and this technique worked a treat.. –  campervancoder May 14 at 9:00

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