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I have this routing.yml:

post:
  class:   sfDoctrineRouteCollection
  options: { model: BlogPost }

I need this url: /company/24/mycompany/blog/post/13.

How how I can pass to my route 2 models to generate following route:

//Test route example
post_show:
  url: /company/:id/:title_slug/blog/post/:post_id
  param:   { module: company, action: show }
  class:   sfDoctrineRoute
  options: { model: MyCompany }

How I can describe second model here, to get attributes to the URL? Is it possible?

Many thanks.

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1 Answer 1

I've done it before, with a custom route class, a bit like this:

<?php

class sfDoctrineMultiRoot extends sfRequestRoute {

  public function matchesUrl($url, $context = array()) {

    if (false === $parameters = parent::matchesUrl($url, $context)) {
      return false;
    }
    $company = Doctrine_Core::getTable('Company')
            ->find($parameters['company_id']);

    if (!$company) {
      return false;
    }

    $blog = Doctrine_Core::getTable('Blog')
            ->find($parameters['blog_id']);

    if (!$blog) {
      return false;
    }

    $this->company = $company;
    $this->blog = $blog;

    return $parameters;
  }

  public function getCompany() {
    return $this->company;
  }

  public function getBlog() {
    return $this->blog;
  }


  public function generate($params, $context = array(), $absolute = false)
  {

    foreach ($params as $key=>$param) {
      if (method_exists($param, 'getRawValue')) {
        $params[$key] = $param->getRawValue();
      }
    }

    if (isset($params['company']) && $params['company'] instanceof Company) {
      $params['company_id'] = $params['company']->getId();
    }
    unset($params['company']);

    if (isset($params['blog']) && $params['blog'] instanceof Blog) {
      $params['blog_id'] = $params['blog']->getId();
      unset($params['blog']);
    }
    unset($params['blog']);

    return parent::generate($params, $context, $absolute);
  }

}

You have to use something like this in routing.yml:

test:
  url: /company/:company_id//blog/:blog_id
  class: sfDoctrineMultiRoot
  param:   { module: company, action: show }

You can generate urls via url_for and link_to like this:

url_for('test', array('blog'=>BlogObject, 'company'=>'CompanyObject'));

or

url_for('test', array('blog_id'=>1, 'company_id'=>2));

And to retrieve the objects in your action you can call:

$this->getRoute()->getBlog();

or

$this->getRoute()->getCompany();
share|improve this answer
    
Thanks, but where I need to put this new route class?And how I tell to symfony to use it? Thanks. –  Marat_Galiev Sep 27 '10 at 13:53
    
Doesn't really matter where you put it - symfony's auto loader will find it. I'd recommend making a folder in your project's lib folder called "route" and putting it in there (file called sfDoctrineMultiRoot.class.php ). You may need to clear your cache after adding the file. –  benlumley Sep 27 '10 at 14:17
1  
This is neither generic nor extensible. I support the idea of a multi-object doctrine route, but it should act similarly to sfDoctrineRoute, with the ability to specify models and methods. –  jeremy Sep 27 '10 at 18:59
1  
Whilst I agree with jeremy above - I happened to have the code already, so posted it to be helpful. It could be tidied up to be generic etc, maybe one day I will, but sometimes it just needs to be enough to work. And the day I wrote this was one of these days. Besides, I believe it is better than jeremy's solution, which so far is "start it from scratch". /rant. –  benlumley Sep 28 '10 at 9:35

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