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Showing something other than ID in scaffold Cakephp

has been answered in many places here and elsewhere and deals with situation where I want a select list but the text field to show instead of id is not named 'Name'. Apparently, Cake can handle this if you tell it what the field is named instaed of 'Name' by putting the following in its Model:

var $displayField = 'NonNameName';

However, all examples are for one select. But i have three select lists so how do i add them? Of course I can't do the as the following code shows (eg three lines of "var $displayField = "...";" .. it doesn't make sense to have three $displayField ..

<?php
App::uses('AppModel', 'Model');
/**
 * Visit Model
 *
 * @property User $User
 * @property Referrer $Referrer
 * @property Company $Company
 */
class Visit extends AppModel {

    //The Associations below have been created with all possible keys, those that are not needed can be removed

/**
 * belongsTo associations
 *
 * @var array
 */

var $displayField = 'location';
var $displayField = 'referrer';
var $displayField = 'company';


    public $belongsTo = array(
        'User' => array(
            'className' => 'User',
            'foreignKey' => 'user_id',
            'conditions' => '',
            'fields' => '',
            'order' => ''
        ),
        'Referrer' => array(
            'className' => 'Referrer',
            'foreignKey' => 'referrer_id',
            'conditions' => '',
            'fields' => '',
            'order' => ''
        ),
        'Location' => array(
            'className' => 'Location',
            'foreignKey' => 'location_id',
            'conditions' => '',
            'fields' => '',
            'order' => ''
        ),      
        'Company' => array(
            'className' => 'Company',
            'foreignKey' => 'company_id',
            'conditions' => '',
            'fields' => '',
            'order' => ''
        )
    );
}

In my controller I have

$companies= $this->Visit->Company->find('list');
$locations = $this->Visit->Location->find('list', array('conditions' => array('company_id' => $this->Auth->user('company_id'))));
$referrers = $this->Visit->Referrer->find('list', array('conditions' => array('company_id' => $this->Auth->user('company_id'))));   
    $this->set(compact('locations','referrers','companies'));
share|improve this question

1 Answer 1

I think what you mean to do is this:

// controller/action
$locations = $this->Visit->Location->find('list');
$referrers = $this->Visit->Referrer->find('list');
$companies = $this->Visit->Company->find('list');
$this->set(compact('locations', 'referrers', 'companies'));

in your view:

echo $this->Form->input('location_id');
echo $this->Form->input('referrer_id');
echo $this->Form->input('company_id');

That (should) produce three selects - mimicking the display-field behaviour you are after.

To quote cake:

find('list', $params) returns an indexed array, useful for any use where you would want a list such as for populating input select boxes.

http://book.cakephp.org/1.3/view/1022/find-list

share|improve this answer
    
Sorry, I was relying on prev post to convey info. I already did what you suggest Ross. Cake depends on text fields to show instead of id being named 'Name' to automagically show text instead of id. However, I do not want to name them 'Name'. No problem, bc apparently Cake covers this by allowing me to put "var $displayField = 'username';" in model to tell Cake the 'Name' fields are 'Location', 'Referrer' and 'Company'. However, all examples i can find are for only one not three non 'Name' fields. What is syntax and where do i put these? –  genoki Jun 13 '12 at 1:07
1  
Put $displayField=Field` in each model. So your Location model's display field is location - assuming you have a field called location in your table. Or am I misunderstanding you? –  Ross Jun 13 '12 at 12:32
    
Ah, ok! That does it. Thanks! My confusion was around where it went. All discussions of it are focused on the model in which the select is used. But none (at least that I inferred) specifically said to put var $displayField = 'ModelNameName'; into the model it belongs to, not the model you want it to show in. Of course, now it seems perfectly obvious. –  genoki Jun 13 '12 at 21:33

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