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Here is my current database setup: https://gist.github.com/8dfad988528fc9fbc394

I want to create a host only if one like it does not already exist (matching on :host and :port), then I want to add the relation for that host into the relations table.

Multiple users can own a single host, or a single host can belong to multiple users. My current database setup works and the relations are created, I'm just not sure how to do this in Rails gracefully. I've tested up to this point by entering values into the database by hand, like so:

@host = Host.find_or_create_by_host(host: params[:host], port: params[:port])
@user = User.find(1)
@user.relation.create(user_id: @user.id, host_id: @host.id)

Is there a better way to do this, if so what would that be.

Solution

@host = Host.where(host: params[:host], port: params[:port]).first_or_create
@host.users << User.find(1)
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find_or_create_by_* dynamic methods are now out of favor. You can use: Host.where(host: params[:host], port: params[:port]).first_or_create (also available first_or_create!, first_or_initialize). You can pass in for this first_or_* a hash to be used on create (if find fails). It's more clear. But you have to have Rails 3.2.0. –  jdoe May 24 '12 at 18:51
    
Added the solution to my original question. –  Ben Phelps May 24 '12 at 19:10
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2 Answers

up vote 1 down vote accepted

Simply use this, the ActiveRecord takes care of the relation:

@host = Host.find_or_create_by_host(host: params[:host], port: params[:port])
@user = User.find(1)
@user.hosts << @host
@user.save
share|improve this answer
    
Are you sure about @user.save? Is it necessary? –  jdoe May 24 '12 at 18:48
    
If he wants to persist the connection, he must save one of the two related object. Otherwise it's not necessary. –  Matzi May 24 '12 at 18:54
    
Both @user and @host are persisted. << just creates (not initializes) a record in their join table. –  jdoe May 24 '12 at 18:56
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You can do

host.users << User.find(1)

and that should be it :-)

share|improve this answer
    
I selected Matzi as the correct answer since it goes into more detail, but this is the method I'll be using. –  Ben Phelps May 24 '12 at 19:10
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