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I'm a little confused after reading the Cookbook and other SO posts here..

I have the following 3 level relationship:

Project (has customer_id) -> Customer (has user_id) -> User 

I want to be able to pass in User conditions into my Projects paginate function. How can I do that? I take that I have to connect between the three models properly which I'm not doing currently...


ProjectsController looks like:

$this->paginate = array(
            'contain' => array('Customer' => array('User')),
            'order' => 'Project.id ASC',
            'conditions' => $condition,
            'limit' => $limit
        );

Project Model has:

public $belongsTo = 'Customer';

Customer Model has:

public $belongsTo = 'User';
public $hasMany = array('Order', 'Project');

User Model has:

public $hasOne = array(        
        'Customer' => array(
            'className' => 'Customer',
            'conditions' => array('User.role' => 'Customer'),
            'dependent' => false
        )
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I want to pull out the User data into the parent "level": - easily doable but: why? –  AD7six Jun 15 at 15:17
    
It would allow me to work with the Paginate function more easily. I'm trying to be able to paginate my Projects view on User data. –  Chronix3 Jun 17 at 4:35
    
So you want to join across 3 tables - Why don't you ask how to do that, instead of something that sounds like a superficial change? –  AD7six Jun 17 at 6:21
    
Yeah you're right, I'm not sure why I framed it like that.. I'll reword it! –  Chronix3 Jun 17 at 7:00

1 Answer 1

Use a join

The only thing required to do be able to filter/sort based on user fields is to achieve sql of the form:

SELECT
    ...
FROM 
    projects
LEFT JOIN
    customers on (projects.customer_id = customers.id) 
LEFT JOIN
    users on (customers.user_id = users.id)

If it's only for the purpose or filtering/sorting - one of the simplest ways to do that is to just inject a join:

$this->paginate = array(
    'contain' => array('Customer'),
    'order' => 'Project.id ASC',
    'conditions' => $condition,
    'limit' => $limit,
    'joins' => array(
        array(
            'table' => 'users',
            'alias' => 'User',
            'type' => 'INNER',
            'conditions' => array(
                'Customer.user_id = User.id',
                // can also define the condition here
                // 'User.is_tall' => true 
            )
        )
    )
);

// only projects where the user is tall
$results = $this->paginate(array('User.is_tall' => true)); 

Use an "exotic" association

Alternatively, bind an association directly from the Project model to the User model:

$this->Project->bindModel(array(
    'belongsTo' => array(
        'User' => array(
            'foreignKey' => false,
            'conditions' => array(
                'Customer.user_id = User.id',
                // can also define the condition here
                // 'User.is_tall' => true 
            )
        )
    )
));

$this->paginate = array(
    'contain' => array('Customer', 'User'), // <- different
    'order' => 'Project.id ASC',
    'conditions' => $condition,
    'limit' => $limit
);

// only projects where the user is tall
$results = $this->paginate(array('User.is_tall' => true)); 

In either case the executed sql will include two joins, one dependent upon the other.

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