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I am trying to generate a controller with all the RESTful actions stubbed. I had read at link text that all I needed to do was to use call the generator with just a controller name I would get just that. So, I ran "script/generate rspec_controller Properties" and I got an empty controller.

Any other suggestions would be greatly appreciated.

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1  
thenduks, If I was as experienced as you that would be true, but I don't even know the 7 restful actions off the top of my head so I would have to google the item and then switch back and forth between the page and my app to enter each one. Once I know them, I agree that your solution is easier – Barb Mar 23 '10 at 22:53
up vote 68 down vote accepted

I don't know about an automated way of doing it, but if you do:

script/generate controller mycontroller new create update edit destroy index show

All of them will be created for you

Update for Rails 4

rails g scaffold_controller Property
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4  
Great Answer. Experts can ignore the rest. Note to noobs - if you name your controller PropertyController as I misunderstood :) you will get PropertyController Controller :) – Barb Mar 23 '10 at 23:07
2  
My answer does exactly the same thing - except you don't need to specify all of the default 7 actions. – konung Mar 24 '10 at 1:14
3  
Just a note... this only generates a controller with methods named for basic CRUD actions. The routes are far from RESTful... e.g. route get "mycontroller/create" (create should be a post) – rthbound Oct 29 '12 at 16:32
    
I would agree that this answer is more suited for generic custom actions, it does not actually respect the RESTful convention which is desired. – prusswan Jul 8 '13 at 10:01
    
This answer is outdated for rails 4. See konung's answer for Rails 4. – toobulkeh Sep 23 '15 at 2:10

In Rails 3 there is also rails generate scaffold_controller .... More info here.

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I prefer this method as it generates RESTful routes. Using rails g controller Foos create would generate a route for get '/create' which is not RESTful at all. – rthbound Oct 29 '12 at 16:28
2  
This answer should be way higher up. – Gabriele Cirulli Aug 26 '13 at 22:21

EDIT(due to some comments) : Original question was in 2010 - hence the answer is NOT for RAILS 4 , but for rails 2!!

try using scaffolding.

script/generate scaffold controller Properties

Section of Official docs on Ruby On Rails

I'm sure you can find more info if you do a google search on rails scaffolding. Hope that helps.

EDIT: For RAILS 4

rails g scaffold_controller Property

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can you script/generate rspec_scaffold controller Properties? – Barb Mar 23 '10 at 22:57
    
yes you could. Here is detailed info/tutorial: blog.davidchelimsky.net/2007/05/14/… – konung Mar 24 '10 at 1:17
4  
Yes that was written in 2010 for version 2.something as is follows from question. Now (Rails 4) it would look like this: rails g scaffold_controller Property ( scaffold_controller would invoke scaffolding and you need provide model name ( singular), but don't have to) – konung Jul 8 '13 at 17:28
2  
I can verify that rails g scaffold_controller Property works in rails 3.2 as well. This will create a PropertiesController with ALL 7 default RESTful actions and their respective views, without a model. – Mike.MKrallaProductions Aug 29 '13 at 13:31
1  
+1 for following up after 3 years – max Nov 10 '13 at 17:40

You're looking for scaffolding.

Try:

script/generate scaffold Property

This will give you a controller, a model, a migration and related tests. You can skip the migration with the option --skip-migration. If you don't want the others, you'll have to delete them yourself. Don't worry about overwriting existing files, that won't happen unless you use --force.

As klew points out in the comments, this also defines the method bodies for you, not just the names. It is very helpful to use as a starting point for your REST controller.

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@Barb, I think Scaffolding would be better for you since it not only declares all functions but it also defines them. It is good to create them at least once and have them as an example. – klew Mar 24 '10 at 9:33

script/generate rspec_scaffold Property

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and yes, I realise that you have already accepted an answer on this one, but I feel this solution might help some people who read this post out too.... the solution above will create a model etc, which you can just delete if you don't need – stephenmurdoch Mar 24 '10 at 10:31

In Rails 4 it's rails g controller apps new create update edit destroy show index

Or rails generate controller apps new create update edit destroy show index if you want to write out the full term :).

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And for controllers with a longer name (like line_items), rails g controller LineItems – Tommyixi Mar 20 '15 at 20:58
1  
You can just use rails g scaffold_controller apps in Rails 4 – wrdevos Sep 14 '15 at 22:43

There's no way (that I know of? that is documented?) to stub out a controller except through scaffolding. But you could do:

script/generate controller WhateverController new create edit update destroy show
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Great answer, I think you are missing an action are there not 7 actions? – Barb Mar 23 '10 at 23:01
    
Yea sorry I forgot index – rfunduk Mar 24 '10 at 2:10

One solution is to create a script that accepts one parameter, the controller name, and let the script type the whole command for you.


  1. Create a new file, say, railsgcontroller
  2. Make it executable and save it on path
  3. Run it like: $ railsgcontroller Articles

die () {
    echo "Please supply new rails controller name to generate."
    echo >&2 "$@"
    exit 1
}

[ "$#" -eq 1 ] || die "1 argument required, $# provided"

rails g controller "$1" new create update edit destroy show index
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