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When URL Dispatch is used, we can easily generate a URL to a view because every view has a distinct route_name like:

login.py:
@view_config(route_name='login')

index.pt:
<a href="${request.route_url('login')}">Login</a>

But how to do this in traversal? Since there is no instance of resources 'Login' available, I don't know how to generate URL to view login.

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without knowing anything about your resource tree this is just a guess... request.resource_url(request.context, "login") or request.resource_url(request.root, "login") but it all depends on how your resourcetree is structured for traversal –  Tom Willis Feb 26 '13 at 16:46

2 Answers 2

up vote 7 down vote accepted

In traversal you are required to know the structure of your tree, and you must be able to load context objects on demand. The URLs are generated with respect to a context, using its location-aware properties __name__ and __parent__ to build the URL.

/
|- login
|- users
   |- 1
      |- edit

So let's say we have a User(id=1) context object, and we want to login. If your view is registered via @view_config(context=Root, name='login'), then you can generate the url via request.resource_url(request.root, 'login'). This is us telling Pyramid to generate a URL relative to the root of the tree.

On the other hand, if we are at login and we want to take the user to edit you must load a location-aware User object for that user in order to generate the URL. request.resource_url(user, 'edit') where user is an instance of User(id=1) with valid __name__ and __parent__ attributes.

If you pass in a context without a location-aware __parent__ the URL will be generated as if your user was mounted at / because that's the only sane place for Pyramid to think the object would be in your tree.

The ability to load a location-aware object is why we stress that traversal works best with a persistent tree of objects, not one that is generated on the fly. It's much more convenient to directly load the user and have its __parent__ and __name__ already populated for you if you want to generate URLs for it.

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Thanks for your excellent answer! But what about hybrid application which mixed URL dispatch and Traversal? How do I generate URL for that kind of application? I believe there are multiple Roots for a hybrid application because we can mount a traversal resource tree to several point via URL dispatch. How to get the root object for a selected tree? Or my idea is completely wrong? Thanks! –  Lingfeng Xiong Feb 27 '13 at 2:57
    
There is not good support for generating urls within a hybrid application. The general idea is to use request.resource_path() or pyramid.traversal.resource_path() to generate a relative path and then concatenate that to the result of request.route_url(). Another option is to use request.route_url('foo', traverse=path) where path is a tuple of segments possibly retrieved via pyramid.traversal.resource_path_tuple(). It's not so pretty. :-) –  Michael Merickel Feb 27 '13 at 4:56

resource_url(resource, 'view_name')

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Do you mind telling me what the first parameter is? If it is a instance of a resource, how can I get it? In the above login example, how can I obtain the instance of login in template? Thanks –  Lingfeng Xiong Feb 26 '13 at 15:42
    
It is resource on which you registered your 'login' view. Assuming it is Auth resource under Root with name 'auth'. Than req.resource_url(req.root['auth'],'login') –  bismigalis Feb 26 '13 at 17:23

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