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urls with 2 request params:

/prefix1/1/
/prefix2/2/
/prefix1/1/prefix2/2
/prefix2/2/prefix1/1

url( ur'^prefix1/(?P<p1>\d+)/$', 'app.views.view' ),
url( ur'^prefix2/(?P<p2>\d+)/$', 'app.views.view' ),
url( ur'^prefix1/(?P<p1>\d+)/prefix2/(?P<p2>\d+)/$', 'app.views.view' ),
url( ur'^prefix2/(?P<p2>\d+)/prefix1/(?P<p1>\d+)/$', 'app.views.view' ),

Is possible to do this more 'DRY' (with 3 request params, lines in urls.py = 15) ?

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1  
    
Thx, exactly that i need. –  cetver Sep 24 '11 at 15:12

1 Answer 1

up vote 0 down vote accepted

I hacked together a sample and, if lazerscience's comment doesn't do it for you, here's what I came up with:

url(r'^(?P<param1>foo|bar)(/(?P<param2>\d+))?(/(?P<param3>\d+))?(/(?P<param4>\d+))?/$', 'demo.views.view'),

And my view looked like:

def view(request, *args, **kwargs):
    return render_to_response("index.html",
        { 'dict': [(k, v) for k,v in kwargs.iteritems()] },
        context_instance=RequestContext(request))

It progressively added parameters as you added to the url, left to right, just as you'd expect.

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not exactly that i nee, you forgot about prefix, see stackoverflow.com/questions/5399035/… –  cetver Sep 24 '11 at 15:14
    
No, I didn't. I assumed you knew enough to be able to derive an equivalent prefix from the foo|bar example expression above. –  Elf Sternberg Sep 25 '11 at 23:32

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