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I am trying to write something elegant where I am not relying on Request object in my code. All the examples are using: (r'^hello/(?P.*)$', 'foobar.views.hello') but it doesn't seem like you can post to a URL like that very easily with a form. Is there a way to make that URL respond to ..../hello?name=smith

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2 Answers 2

Absolutely. If your url is mapped to a function, in this case foobar.views.hello, then that function might look like this for a GET request:

def hello(request):
    if request.method == "GET":
        name_detail = request.GET.get("name", None)

        if name_detail:
            # got details
        else:
            # error handling if required.

Data in encoded forms, i.e. POST parameters, is available if you HTTP POST from request.POST.

You can also construct these yourself if you want, say, query parameters on a POST request. Just do this:

PARAMS = dict()
raw_qs = request.META.get('QUERY_STRING', '') # this will be the raw query string
if raw_qs:
    for line in raw_qs.split("&"):
        key,arg = line.split("=")
        PARAMS[key] = arg

And likewise for form-encoded parameters in non POST requests, do this:

FORM_PARAMS = QueryDict(request.raw_post_data)

However, if you're trying to use forms with Django, you should definitely look at django.forms. The whole forms library will just generally make your life easier; I've never written a html form by hand using Django because this part of Django takes all the work out of it. As a quick summary, you do this:

forms.py:

class FooForm(forms.Form):
    name = fields.CharField(max_length=200)
    # other properties

or even this:

class FooForm(forms.ModelForm):

    class Meta:
         model = model_name

Then in your request, you can pass a form out to the template:

def pagewithforminit(request):
    myform = FooForm()
    return render_to_response('sometemplate.html', {'nameintemplate': myform}, 
                                    context_instance=RequestContext(request))

And in the view that receives it:

def pagepostingto(request):
    myform = FooForm(request.POST)

    if myform.is_valid(): # check the fields for you:
        # do something with results. if a model form, this:
        myform.save()
        # creates a model for you.

See also model forms. In short, I strongly recommend django.forms.

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You can't catch GET parameters in a URL pattern. As you can see in django.core.handlers.base.BaseHandler.get_response, only the part of the URL that ends up in request.path_info is used to resolve an URL:

callback, callback_args, callback_kwargs = resolver.resolve(
         request.path_info)

request.path_info does not contain the GET parameters. For handling those, see Ninefingers answer.

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