Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Let's say I have a Magazine model and Ad model, such that Magazine :has_many => :ads. I have setup my nested resource routing as follows:

resources :magazines do 
  resources :ads, :shallow => true do
    get 'search', :action => :search, :on => :collection
  end
end

My goal here is to be able to access the default CRUD routes created by Rails resources, plus a search route, on both a nested and shallow level. I want the user to be able to restrict his search from within the context of a given Magazine, or search all Ads regardless of parent Magazine, because some Ads won't have parent Magazines. In other words, I want to be able to:

/magazines/1/ads/new
/ads/new

/magazines/1/ads/search
/ads/search

# ... all standard CRUD routes ...

My concern is that the path variables in the views rely on things like new_magazine_ad_path(@magazine). Won't accessing a route like /ads/index (which should contain a link to create a new ad) break on encountering the new_magazine_ad_path(@magazine) helper without any @magazine instance to guide it?


P.S.: Normally, I would try all this out myself to see what worked, but I'm stuck right now with the above setup - I can only reach the edit, delete, show, and update shallow routes:

/ads/:id
/ads/:id/edit
/ads/:id (put)
/ads/:id (delete)

and no new or index routes:

/ads/index
/ads/new

Update

So Shreyas proposed creating two controllers, one to handle the nested Ad, and one to handle the shallow Ad. This makes sense, but it leaves me duplicating all the view code just to change the path helpers from magazine_ad_path(@magazine) to ad_path. Any ideas on a DRY'er approach to handling the view changes? All the other view code is identical.

share|improve this question
add comment

2 Answers

up vote 1 down vote accepted

I want the user to be able to restrict his search from within the context of a given Magazine, or search all Ads regardless of parent Magazine, because some Ads won't have parent Magazines

You have two different concerns here. I would suggest you have two different controllers for the two concerns. One of course which comes under the Magazine context and the other as a stand-alone controller (an AD that does not have a parent magazine).

This way you have two different controllers with clearly separated concerns.

resources :ads do
  get 'search', :action => :search, :on => :collection
end
resources :magazines do 
  resources :ads, :shallow => true do
    get 'search', :action => :search, :on => :collection
  end
end
share|improve this answer
    
Can you think of a way I can avoid duplicating all my view code? The views are identical, except for the route helper variables (working in the context of a Magazine, they need the @magazine to build the route, while outside that context, they don't need that). I tried redirecting all my MagazineAdsController actions to view the standard Ad views, but they all fail because the route helpers don't have a @magazine to build from. Is there a DRY'er way to do this than to simply copy everything and change the route helpers? –  Dave W. Jul 30 '11 at 23:45
    
The easiest way I can think of is, to extract the common parts out into partials. –  Shreyas Aug 2 '11 at 10:58
    
that might work - it won't be very pretty, but at least it will avoid all that code duplication. Thanks! –  Dave W. Aug 2 '11 at 19:15
add comment

You can use a single call to url_for to generate either route (via polymorphic_url).

url_for [:search, @magazine, :ads]
# when @magazine is present, this is equivalent to search_magazine_ads_url
# when @magazine is nil, it's search_ads_url

url_for [:new, @magazine, :ad] #=> new_magazine_ad_url or new_ad_url
url_for [@magazine, :ads] #=> magazine_ads_url or ads_url

You can even pass the array to link_to in place of a route generated by a named helper.

link_to 'New Ad', [:new, @magazine, :ad]

http://apidock.com/rails/ActionDispatch/Routing/PolymorphicRoutes

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.