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So my model association is as follows:

Person hasMany Award

Person columns: id, name Award columns: id, person_id, name

So people can have many awards, but I want to retrieve only those specific people that have two different awards at the same time. Is there a way to achieve this with find method?

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2 Answers

$persons = $this->Person->find('all', array(
                           'recursive' => -1,
                           'conditions' => array(
                              'AND' => array('Award.name' => 'Award 1', 'Award.name' => 'Award 3')
                            ),
                           'joins' => array(
                                array(
                                   'table' =>'awards',
                                   'alias' => 'Award',
                                   'type' => 'LEFT',
                                   'conditions' => 'Award.person_id = person.id'
                                 )
                            )
                      )
                 );
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I believe this is what I'm looking for, will test it soon. Thanks –  user1399007 May 16 '12 at 16:34
    
I don't think this is going to work as it will produce an IN (value1, value2) condition. Which can be simplified in an OR, which is not what @user1399007 want. He says he wants user that have both awards. –  Jeremie Parker May 16 '12 at 16:37
    
In this case it's not what I'm looking for :/. I want it to be an AND statement. –  user1399007 May 16 '12 at 16:54
    
@user1399007 get you AND statement in my updated answer and for your information my previous and current code both do the same job –  The System Restart May 16 '12 at 16:56
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Have a look at subqueries at the end of the page. You basically need a subquery because you need to query the Award table twice to match value1 and value2.


Edit : Example code

$conditionsSubQuery['`Award`.`name`'] = 'value2';
$dbo = $this->Person->getDataSource();
$subQuery = $dbo->buildStatement(
    array(
        'fields' => array( '`Person2`.`id`'),
        'table' => $dbo->fullTableName($this->Person),
        'alias' => 'Person2',
        'limit' => null,
        'offset' => null,
        'joins' => array(),
        'conditions' => $conditionsSubQuery,
        'order' => null,
        'group' => null
    ),
    $this->Person
);
$subQuery = ' `Person`.`id` IN (' . $subQuery . ') ';
$subQueryExpression = $dbo->expression($subQuery);
$conditions[] = array('Award.name' => 'value1');
$conditions[] = $subQueryExpression;
$this->Person->find('all', compact('conditions'));

I haven't tested it and it might not work, but you got the idea.


Edit 2: To answer your comment

So basically what you want as an SQL result is

select 
    users.id 
from 
    users 
left join 
    awards 
where 
    awards.name in ('award1', 'award2', 'award3', 'award4') 
group by 
    awards.name 
having 
    count(awards.name) = 4

To achieve that you may do it that way :

$awards = array('award1', 'award2', 'award3', 'award4');

$this->Person->find(
    'all',
    array(
        'joins' => array(
            array(
               'table' =>'awards',
               'alias' => 'Award',
               'type' => 'LEFT',
               'conditions' => 'Award.person_id = person.id'
             )
        ),
        'conditions' => array(
            'Award.name' => $awards,
        ),
        'group' => array('Award.name HAVING '.count($awards))
    )
);
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I forgot to mention that it can't be limited to only two conditions (two awards in this example). Does it mean that in order to find people who have 10 different awards I would have to query Awards 10 times? –  user1399007 May 16 '12 at 16:49
    
I've updated my answer with another way of doing that doesn't suffer the previous problem. It's even faster from SQL point of view I think. –  Jeremie Parker May 16 '12 at 17:30
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