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In my Rails app I have invoices which in turn can have many projects.

model:

class Invoice < ActiveRecord::Base

  attr_accessible :project_id

end

controller:

class InvoicesController < ApplicationController

  before_filter :authorized_user, :only => [ :show, :edit, :destroy ]
  before_filter :authorized_project, :only => [ :create, :update ]

  def create # safe
    @invoice = @project.invoices.build(params[:invoice])  
    if @invoice.save
      flash[:success] = "Invoice saved."
      redirect_to edit_invoice_path(@invoice)
    else
      render :new
    end
  end

  def update # not safe yet
    if @invoice.update_attributes(params[:invoice])
      flash[:success] = "Invoice updated."
      redirect_to edit_invoice_path(@invoice)
    else
      render :edit
    end
  end

  private

    def authorized_user
      @invoice = Invoice.find(params[:id])
      redirect_to root_path unless current_user?(@invoice.user)
    end

    def authorized_project
      @project = Project.find(params[:invoice][:project_id])
      redirect_to root_path unless current_user?(@project.user)
    end

end

My biggest concern is that a malicious user might, one day, create an invoice that belongs to the project of another user.

Now thanks to the help of some people on this board I managed to come up with a before_filter that makes sure that this won't happen when a project is created.

The problem is I don't understand how to apply this filter to the update action as well.

Since the update action does not make use of Rails' build function, I simply don't know how to get my @project in there.

Can anybody help?

share|improve this question
up vote 1 down vote accepted

In your case I would start from current_user, not @project (provided User has_many :invoices):

current_user.invoices.build(params[:invoice])

Also instead of explicitly check current_user?(@invoice.user) you can do:

def find_invoice
  @invoice = current_user.invoices.find(params[:id])
end

def find_project
  @project = current_user.projects.find(params[:invoice][:project_id])
end

Wrong invoice or project will throw 500 which you may or may not want to handle.

If User has_many :invoices, :through => :projects and Project hence has_many :invoices then:

def find_invoice
  @invoice = @project.invoices.find(params[:id])
end
share|improve this answer
    
Don't forget to rescue from any ActiveRecord::RecordNotFound errors that might occur here. – tadman Sep 27 '13 at 18:02
    
@tadman In a simple case I don't care if malicious user gets 500. But in general rescuing is required (e. g. user can access deleted invoice from a stale index page). – Victor Moroz Sep 27 '13 at 18:37
    
Ah I think I finally got this working. Took me quite a while to get to grips with it though. Thank you very much for your help. – Tintin81 Sep 27 '13 at 18:46

The @project.invoices.build method creates a new Invoice that is automatically associated with that particular @project. You don't have to do any work, and there's no risk of it being linked to the wrong project.

You'll want to be sure that project_id is not an accessible attribute, though.

share|improve this answer
    
I know that. I am not worried about the build method. I am worried about my update action. Right now, it is possible to hack it and replace the project_id with a project_id that belongs to another user. I am using a select box to display a user's project_ids in the form. I cannot remove project_id from accessible because the user can't change it anymore then. – Tintin81 Sep 27 '13 at 16:10
    
You should remove it from the accessible list and assign it in a separate pass that validates the user is allowed to make that assignment. @invoice.project_id = project_id only when you've verified that the project is theirs. – tadman Sep 27 '13 at 18:01
    
What do you mean by separate pass? – Tintin81 Sep 27 '13 at 18:47
    
As in you do your update as: @invoice.attributes = params then @invoice.project_id = project_id when you've verified project_id is okay. Then @invoice.save! Either that or just verify that params[:project_id] is okay. – tadman Sep 27 '13 at 19:26

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