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Anyone knows a good way to make UNION query in CakePHP? I would like to avoid using $this->query();.

With two tables t1, t2:

SELECT * FROM t1
LEFT JOIN t2 ON t1.id = t2.id
UNION
SELECT * FROM t1
RIGHT JOIN t2 ON t1.id = t2.id

With three tables t1, t2, t3:

SELECT * FROM t1
LEFT JOIN t2 ON t1.id = t2.id
LEFT JOIN t3 ON t2.id = t3.id
UNION
SELECT * FROM t1
RIGHT JOIN t2 ON t1.id = t2.id
LEFT JOIN t3 ON t2.id = t3.id
UNION
SELECT * FROM t1
RIGHT JOIN t2 ON t1.id = t2.id
RIGHT JOIN t3 ON t2.id = t3.id
share|improve this question
    
Is there any reason why you wish to avoid $this->query? –  Stoosh Aug 21 '10 at 5:50
3  
Well, for one, it defeats the purpose of using a framework if you're not going to try to write an application in the framework's native style. And most SELECT queries can in fact be carried out using find() in 1.3. Also, find() benefits from the data source drivers' built-in protection against SQL injections, whereas query() is a direct query that you'd have to escape yourself. That said, UNION is probably one of the few classes of queries you can't execute using find(). –  Lèse majesté Aug 21 '10 at 7:46
    
Do you have a valid MySQL union example you are running? The one listed does not work. –  Chuck Burgess Aug 21 '10 at 17:54
    
I think there is some confusion as to the purpose of a framework. A framework is not necessarily design to make your code cross-database compatible. Furthermore, you should not limit the functionality of your site do to limitations within the framework. A framework is designed to separate the UI from domain logic. It also enhances development by bringing structure and organization and provides reusable code. You will limit what your capabilities are if you only did those things a framework allows. –  Chuck Burgess Aug 21 '10 at 18:08
    
@cdburges: I do not have the working example yet. In fact I need to do FULL JOIN but MySQL does not support that. So, I thought that I am not the first with this problem and the solution may be found already therefore I posted the question. –  bancer Aug 21 '10 at 22:52

3 Answers 3

up vote 9 down vote accepted

Too many coders try to limit themselves to the functionality of a framework. DON'T. Use what the framework provides. If it does not have the functionality you seek, then either:

  • Code the functionality you need into a class extension

or

  • Custom spin the code within the framework to suit your needs.

Often, developers try to hammer a square peg into a round hole and wind up doing way too much extra work that really only makes the code complicated. Take a step back and ask why you are using the framework to begin with. It brings structure to an unstructured language. It provides solid reusable foundation to build your application on. It is not intended to be a box to put yourself in and be limited.

UPDATE: I took a minute to read Complex Find Conditions and found your answer:

$joins = array(
    array(
        'table' => 'test_twos',
        'alias' => 'TestTwo',
        'type' => 'LEFT',
        'conditions' => array(
            'TestTwo.id = TestOne.id',
        )
    ),
    array(
        'table' => 'test_threes',
        'alias' => 'TestThree',
        'type' => 'LEFT',
        'conditions' => array(
        'TestThree.id = TestOne.id',
    )
    )
);

$dbo = $this->getDataSource();
$subQuery = $dbo->buildStatement(
    array(
        'fields' => array('*'),
        'table' => $dbo->fullTableName($this),
        'alias' => 'TestOne',
        'limit' => null,
        'offset' => null,
        'joins' => $joins,
        'conditions' => null,
        'order' => null,
        'group' => null
    ),
    $this->TestOne
);
$query = $subQuery;

$query .= ' UNION ';
$joins = array(
    array(
        'table' => 'test_twos',
        'alias' => 'TestTwo',
        'type' => 'LEFT',
        'conditions' => array(
            'TestTwo.id = TestOne.id',
        )
    ),
    array(
        'table' => 'test_threes',
        'alias' => 'TestThree',
        'type' => 'RIGHT',
        'conditions' => array(
        'TestThree.id = TestOne.id',
        )
    )
);

$dbo = $this->getDataSource();
$subQuery = $dbo->buildStatement(
    array(
    'fields' => array('*'),
    'table' => $dbo->fullTableName($this),
    'alias' => 'TestOne',
    'limit' => null,
    'offset' => null,
    'joins' => $joins,
    'conditions' => null,
    'order' => null,
    'group' => null
    ),
    $this->TestOne
);

$query .= $subQuery;

pr($query);
share|improve this answer
1  
The first thing to do is to check if it is possible to resolve a problem with the framework's functionality. Of course, the framework must not limit a programmer. –  bancer Aug 21 '10 at 23:24
    
+1 for the update. That is the right direction. I will take a closer look at the code later. –  bancer Aug 22 '10 at 0:11

Use a view, then select from that:

create view my_union as
SELECT * FROM t1
LEFT JOIN t2 ON t1.id = t2.id
LEFT JOIN t3 ON t2.id = t3.id
UNION
SELECT * FROM t1
RIGHT JOIN t2 ON t1.id = t2.id
LEFT JOIN t3 ON t2.id = t3.id
UNION
SELECT * FROM t1
RIGHT JOIN t2 ON t1.id = t2.id
RIGHT JOIN t3 ON t2.id = t3.id

In your code:

select * from my_union
share|improve this answer
1  
This is a good possible solution, but see this disclaimer on using views in Cake: mail-archive.com/cake-php@googlegroups.com/msg43116.html –  Lèse majesté Aug 21 '10 at 7:57
    
I am afraid that would not work in other databases like SQLlite. –  bancer Aug 21 '10 at 23:27
    
@bancer: are you sure about that? SQLite's documentation indicates that it supports views and uses the same create view syntax. –  Lèse majesté Aug 21 '10 at 23:43
    
I meant RIGHT JOIN. Maybe my queries are bad at all to be database independent? –  bancer Aug 22 '10 at 0:03

A simple way to do this, which we currently use, is to create a view in MySQL or whatever database you use. Then, instead of using a table in you're model, you use you're view. You can read about view creation sintax here : http://dev.mysql.com/doc/refman/5.6/en/create-view.html. You could also use software like HeidiSQL to help you with view creation.

You would then have something like this in you're model :

class Contenu extends AppModel {
    public $useTable = 'v_contenu';

This allows you to still use the "find()" method in cake which is realy nice to have.

To get best performances with views you shoul update Mysql to 5.6.

share|improve this answer
    
This is a really nice solution –  Will Apr 28 '14 at 16:06

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