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I have a site developed in cakephp 2.0, I want to make a relation between two tables:

activity_ingredients

1   id  int(10) UNSIGNED    No  None    AUTO_INCREMENT  
2   type_id     tinyint(2)  No  None        
3   activity_id     int(11)     No  None        
4   ingredient_id   int(10)     No  None        
5   created     datetime        

actions

1   id  int(10) UNSIGNED    No  None    AUTO_INCREMENT  
2   type_id     tinyint(2)  No  None        
3   language    char(2)     No  None        
4   text    varchar(100)        No  None        
5   created     datetime    

I want to associate the two tables with the field "type_id". I have done in this mode into my code:

    class Action extends AppModel{
    public $name = 'Action'; //non utilizzata nel sito è il nome del modello alla fine per migliorare la compatibilità

    public $belongsTo = array(
        'ActivityIngredients' => array(
            'className'     => 'ActivityIngredients',
            'conditions'    => '',
            'order'         => '',
            'foreignKey'    => 'type_id'
        )
    );

}

class ActivityIngredients extends AppModel{
        public $name = 'ActivityIngredients'; //non utilizzata nel sito è il nome del modello alla fine per migliorare la compatibilità

        public $belongsTo = array(
            'Activity' => array(
                'className'     => 'Activity',
                'conditions'    => '',
                'order'         => '',
                'foreignKey'    => 'activity_id'
            ),
            'Ingredient' => array(
                'className'     => 'Ingredient',
                'conditions'    => '',
                'order'         => '',
                'foreignKey'    => 'ingredient_id'
            )
        );

        public $hasMany = array(
            'Action' => array(
                'className' => 'Action',
                'conditions' => '',
                'dependent' => true,
                'foreignKey'   => 'type_id',
                'associatedKey'   => 'type_id'
            )
        );
    }

It doesn't retrieve the correct data.. It seems that It takes the id for the foreign key. This is the view:

<?php foreach ($user['Activity'] as $activities) {
var_dump($activities);
?>
    <div class="line-cnt"><div class="line">
    </div>
</div>
<h2>Attività</h2>
<div class="table">
    <div>
        <div>Activity created</div><div><?php echo $activities['created']; ?>
        </div>
    </div>
    <div>
        <div>Actions text</div><div><?php echo $activities['Action']['text']; ?></div>
    </div>
    <div>
        <div>ActivityIngredient ingredient_id</div><div><?php echo $activities['ActivityIngredients']['ingredient_id']; ?></div>
    </div>
</div>
<?php
}
?>

The controller is a simple query with find all and recursive 3 into the User that is collegate with the tables

$this->User->recursive = 3;
        $user = $this->User->read();

        if (empty($username) || $username != $user['User']['username']) {
            $this->redirect(array ('action'=>'view',$id,$user['User']['username']));
        }

        $this->set('user', $user);

Help me please

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closed as too localized by tereško, hakre, Mario, rds, Peter Majeed Jan 21 '13 at 18:40

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

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2 Answers 2

up vote 1 down vote accepted

The first thing if you are using an "id" field in your "activity_ingredients" table, then you should use it as a foreignKey in another table.

A foreign key is a field in a relational table that matches a candidate key of another table.

Even if you are trying to use type_id as foreign key in "actions" table, Then type_id must be unique in your activity_ingredients table, and if it is so then you can define your ActivityIngredient Model as:

class ActivityIngredients extends AppModel{
    public $primaryKey = 'type_id';
    public $name = 'ActivityIngredients'; //non utilizzata nel sito è il nome del modello alla fine per migliorare la compatibilità

    public $belongsTo = array(
        'Activity' => array(
            'className'     => 'Activity',
            'conditions'    => '',
            'order'         => '',
            'foreignKey'    => 'activity_id'
        ),
        'Ingredient' => array(
            'className'     => 'Ingredient',
            'conditions'    => '',
            'order'         => '',
            'foreignKey'    => 'ingredient_id'
        )
    );

    public $hasMany = array(
        'Action' => array(
            'className' => 'Action',
            'conditions' => '',
            'dependent' => true,
            'foreignKey'   => 'type_id',
            'associatedKey'   => 'type_id'
        )
    );
}

And your Action Model will remain the same. And hence you will be able to fetch the desired records.

And even if you are not agree to define "type_id" as foreign key in your table. Then this code will work extremely well with your situation.

class ActivityIngredients extends AppModel{
public $name = 'ActivityIngredients'; //non utilizzata nel sito è il nome del modello alla fine per migliorare la compatibilità

public $belongsTo = array(
    'Activity' => array(
        'className'     => 'Activity',
        'conditions'    => '',
        'order'         => '',
        'foreignKey'    => 'activity_id'
    ),
    'Ingredient' => array(
        'className'     => 'Ingredient',
        'conditions'    => '',
        'order'         => '',
        'foreignKey'    => 'ingredient_id'
    )
);

public $hasMany = array(
    'Action' => array(
        'className' => 'Action',
        'conditions' => '',
        'dependent' => true,
        'foreignKey'   => false,
        'finderQuery'   => 'select * from actions as `Action` where
                            `Action`.`type_id` = {$__cakeID__$} '
    )
);

}

I am sure this will give you the desired result. Kindly ask if it not worked for you.

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In cakephp you can assign the primary key of a model. I believe that you can also put the classname in the foreign key association. For example

'foreignKey'   => 'Classname.type_id'
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