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My Sql skills are lacking and would really appreciate the help. What is the most efficient way to pull all records where a field is the same?

For example my tables name is 'games' and has an association with the table 'consoles'

How do I pull all record of games with the same (duplicate) 'name', retain associations and be able to access all fields.

Basically modify this to just show duplicates:

$this->set('games', $this->Game->find('all', array('order' => array('Game.name' => 'asc'))));

Is there an easy way to do this using cake or how would I do it through sql using query()?

Much appreciated in advance!

Regards, Ash

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In SQL, you usually join the table against itself: SELECT ID,name from games g1 JOIN games g2 where g1.name = g2.name and g1.ID <> g2.ID - but I don't know cake. –  Konerak Aug 30 '12 at 13:00
    
@Konerak tried testing your query and it is extremely taxative as it is, it works on a small base but my test with 2200 games crashed. –  petervaz Aug 30 '12 at 13:43
    
Can you post the structure you are trying to obtain?? I'm not sure I understand you, but I guess you should try using 'group' option in find(), or maybe 'DISTINCT'. Read about them here –  Choma Aug 30 '12 at 14:04
    
Say I have 2 Games. Zelda: A Link to the Past. Same title. I want to grab those two games with all associations and be able to display them in the same index I had used previously in my view. As one Zelda game may have a manual with it, while another might not. –  Masa Ash Aug 30 '12 at 14:50

2 Answers 2

up vote 0 down vote accepted

Tried to use Konerak query, it worked but only on small tables, on my test base with 2k records it crashed on sql client and gives a memory error on php (I used a non indexed field for testing). If it works for you:

$options = array();
$options['joins'][0]['table'] = 'games';
$options['joins'][0]['alias'] = 'Game2';
$options['joins'][0]['conditions'] = array(1 => 1);
$options['conditions'] = 'Game.name = Game2.name';
$options['conditions']['NOT'] = 'Game.id = Game2.id';
$options['order'] = 'Game.name ASC';

//$this->Game->contain();
$this->set('games', $this->Game->find('all', $options));

/*

This solutions use 2 queries but I managed to test it just fine:

$options = array();
$options['fields'] = 'Game.name';
$options['group'] = 'Game.name HAVING COUNT(*) > 1';

// get all the names > 1
//$this->Game->contain();
$regs = $this->Game->find('all', $options);

// make a nice array with them
$names = array();
foreach ($regs as $reg) {
$names[] = $reg['Game']['name'];
}

// and search for only those games
//$this->Game->contain();
$this->set('games', $this->Game->find('all', array(
                                     'conditions' => array('Game.name' => $names), 
                                     'order' => 'name ASC')));

Let me know if that won't work for you and what problems you are having.

edit. I commented the contain lines. Seems you want all the structure so you wouldn't need them anyway.

edit2. remove possible ambiguity on field names.

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Error: SQLSTATE[42000]: Syntax error or access violation: 1064 You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near 'contain' at line 1 –  Masa Ash Aug 30 '12 at 14:58
    
@MasaAsh If you aren't using containable behavior you should remove those lines: ($this->Game->contain();). I always use it and sometimes forget that it isn't enabled by default. =P –  petervaz Aug 30 '12 at 15:02
    
Haha, Ok, Now I am getting this error. Error: SQLSTATE[23000]: Integrity constraint violation: 1052 Column 'name' in where clause is ambiguous –  Masa Ash Aug 30 '12 at 15:08
    
@MasaAsh Seems you have in your structure more models with the name field and they are clashing. Identify the query getting the error and change 'name' TO 'Game.name'. I updated the awnser to reflect it. –  petervaz Aug 30 '12 at 15:20
    
Wahoo. I can't thank-you enough. The order was giving me the last error. Simply changed it to 'order' => 'Game.name ASC' You are a fantastic human being. Thanks for being a cool internets guru. –  Masa Ash Aug 30 '12 at 15:25

I am not sure if cake has a built in way to represent this but you can do it with this MySQL Method.

$this->set('games', $this->Game->query('SELECT name, COUNT(*) as count FROM games GROUP BY name HAVING count > 1');

You can include any fields you want in the select.


UPDATED

This would be the CakePHP way of doing it and the results are formatted a little better:

$this->set('games', $this->Game->find('all',array('fields'=>array('name','COUNT(*) as count'), 'group'=>'name', 'having'=>'count > 1')));
share|improve this answer
    
This does work to get the duplicates, but the data is not how I want it to be returned. I don't want to have to rewrite my index's. With your suggestion the data is returned as the following array( (int) 0 => array( 'games' => array( 'name' => 'Astrosmash' ), –  Masa Ash Aug 30 '12 at 14:37
    
Updated my answer, but it looks like @petervaz has a better solution. –  Steve Valliere Aug 30 '12 at 15:00
    
Yup, Timed out. Thanks for the help though. Greatly appreciated. –  Masa Ash Aug 30 '12 at 15:08
1  
I dont have enough rep to comment on his answer but you need to add Game.name when you reference the name field because another one of your related tables is using a name field. –  Steve Valliere Aug 30 '12 at 15:13
    
Your awesome. Thanks –  Masa Ash Aug 30 '12 at 15:18

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