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Tables

restaurants
cuisines
cuisines_restaurants

Both restaurant and cuisine model are set up to HABTM each other.

I'm trying to get a paginated list of restaurants where Cuisine.name = 'italian' (example), but keep getting this error:

1054: Unknown column 'Cuisine.name' in 'where clause'

Actual query it's building:

SELECT `Restaurant`.`id`, `Restaurant`.`type` ..... 
`Restaurant`.`modified`, `Restaurant`.`user_id`, `User`.`display_name`,
`User`.`username`, `User`.`id`, `City`.`id`,`City`.`lat`  ..... 
FROM `restaurants` AS `Restaurant` LEFT JOIN `users` AS `User` ON 
(`Restaurant`.`user_id` = `User`.`id`) LEFT JOIN `cities` AS `City` ON 
(`Restaurant`.`city_id` = `City`.`id`) WHERE `Cuisine`.`name` = 'italian' 
LIMIT 10

The "....." parts are just additional fields I removed to shorten the query to show you.

I'm no CakePHP pro, so hopefully there's some glaring error. I'm calling the paginate like this:

$this->paginate = array(
    'conditions' => $opts,
    'limit' => 10,
);
$data = $this->paginate('Restaurant');
$this->set('data', $data);

$opts is an array of options, one of which is 'Cuisine.name' => 'italian'

I also tried setting $this->Restaurant->recursive = 2; but that didn't seem to do anything (and I assume I shouldn't have to do that?)

Any help or direction is greatly appreciated.


EDIT

models/cuisine.php
    var $hasAndBelongsToMany = array('Restaurant');

models/restaurant.php
    var $hasAndBelongsToMany = array(
    'Cuisine' => array(
        'order' => 'Cuisine.name ASC'
    ),
    'Feature' => array(
        'order' => 'Feature.name ASC'
    ),
    'Event' => array(
        'order' => 'Event.start_date ASC'
    )
);
share|improve this question

5 Answers 5

up vote 5 down vote accepted
+50

This fails because Cake is actually using 2 different queries to generate your result set. As you've noticed, the first query doesn't even contain a reference to Cuisine.

As @vindia explained here, using the Containable behavior will usually fix this problem, but it doesn't work with Paginate.

Basically, you need a way to force Cake to look at Cuisine during the first query. This is not the way the framework usually does things, so it does, unfortunately, require constructing the join manually . paginate takes the same options as Model->find('all'). Here, we need to use the joins option.

var $joins = array(
    array(
        'table' => '(SELECT cuisines.id, cuisines.name, cuisines_restaurants.restaurant_id
                 FROM cuisines_restaurants 
                 JOIN cuisines ON cuisines_restaurants.cuisines_id = cuisines.id)',
        'alias' => 'Cuisine',
        'conditions' => array(
            'Cuisine.restaurant_id = Restaurant.id',
            'Cuisine.name = "italian"'
        )
    )
);

$this->paginate = array(
    'conditions' => $opts,
    'limit' => 10,
    'joins' => $joins
);

This solution is a lot clunkier than the others, but has the advantage of working.

share|improve this answer
    
I can already get the cuisine name to come up in my pagination results without using any hand-written JOINs - the problem is in trying to order by a cuisine field. Does your solution work for this? If so - any chance you could edit your answer / explain how? Thanks ahead of time! –  Dave Apr 25 '11 at 17:10
    
@Dave - In your question it still says that the whole query is failing with error Unknown Column. Is the problem that Cuisine shows up but isn't ordered correctly, or that the whole query breaks when you try to order by Cuisine? –  declan Apr 25 '11 at 18:09
    
CakePHP creates a lot of queries when paginate() is run based on table relationships. One of those queries pulls the necessary cuisine data (so the list of restaurants shows their respective cuisine next to their name). The problem is, I need to retrieve restaurants based on their cuisine - the current query that actually pulls the restaurants that I attempted to do that gives the error because Cuisine is not included in THAT query. The generic Cuisine data IS pulled just fine in another query. I need something like "WHERE Cuisine.name='italian'" Does that clarify, or just confuse more? –  Dave Apr 25 '11 at 18:14
    
Ok, that makes sense. So yes, the solution above will help you out, I think. The joins option will force whatever tables you specify to be joined to the first query that paginate runs - i.e. the one that currently doesn't contain Cuisine. –  declan Apr 25 '11 at 18:28
    
I cannot get your answer to work without SQL errors - one of which is: 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 'cuisines Cuisine Array LEFT JOIN users AS User ON (Restaurant.user_id = ' at line 1 –  Dave Apr 25 '11 at 19:23

As explained in this blogpost by me you have to put the condition of the related model in the contain option of your pagination array.

So something like this should work

# in your restaurant_controller.php
var $paginate = array(
    'contain' => array(
        'Cuisine' => array(
            'conditions' => array('Cuisine.name' => 'italian')
        )
    ),
    'limit' => 10
);

# then, in your method (ie. index.php)
$this->set('restaurants', $this->paginate('Restaurant'));
share|improve this answer
    
Excellent solution. I updated your post to include the array on your var $paginate. I have confirmed this works with some test code. Very well done! –  Chuck Burgess Apr 19 '11 at 21:26
    
It sounds like this is exactly what I want - I'll try it out today or tomorrow and mark it as the answer when I get it to work - thanks! –  Dave Apr 21 '11 at 14:22
    
It doesn't seem to be working - it's not even adding "italian" anywhere in the queries :( –  Dave Apr 21 '11 at 20:29
    
I'll be away for the weekend, but I can take a look for you on monday. I'll keep you posted. –  vindia Apr 22 '11 at 8:00
    
According to declan (answer below) the contain doesn't work with paginate. I hope he's wrong, but - your blog doesn't mention paginate, and I can't get it to work, so I'm inclined to think he's right - any thoughts? –  Dave Apr 25 '11 at 17:08

a few ideas on the top of my mind:

good luck!

share|improve this answer
    
I assume my HABTM are correct (added them to the original post). As for the rest, I'd rather not have to settle on a work-around - I'd like to get it working correctly the way it's supposed to. –  Dave Apr 13 '11 at 21:59
    
When I do a normal query, without the "Cuisine.name" => "italian", it works fine - my Cuisines show up on the page by referencing $restaurant['Cuisine'] in a foreach($data as $restaurant) loop –  Dave Apr 13 '11 at 22:05
    
try adding more info to the habtm relation: information such as 'joinTable','foreignKey' and 'associationForeignKey' –  pleasedontbelong Apr 13 '11 at 22:06
    
Is there a reason to do that? I was under the impression that was excessive/unnecessary if you name everything correctly. –  Dave Apr 13 '11 at 22:10
    
Tried - same problem. I can SEE the issue in the query - it's not joining on Cuisine at all, so how can it get Cuisine.name? –  Dave Apr 13 '11 at 22:15

Cuisine must be a table (or alias) on the FROM clausule of your SELECT. so the error:
1054: Unknown column 'Cuisine.name' in 'where clause'
Is just because it isn't referenced on the FROM clausule

share|improve this answer
    
Right... I think that's the obvious part - the question is how to add it or get it to work via CakePHP. –  Dave Apr 20 '11 at 18:51
    
I will give you only workarounds and questions: has CakePHP a way to accept a raw sql statment? can you refer a view? why does it generate "left joins" to 'cities' and 'users'? where are them refered? –  Luis Siquot Apr 25 '11 at 20:40
    
Thank you very much for your attempt at helping. This question has now been answered. –  Dave Apr 25 '11 at 21:13

If you remove the Feature and Event part of your HABTM link in the Restaurant model, does it work then? Sounds to me like you've failed to define the right primary and foreing keys for the Cuisine model, as the HABTM model is not even including the Cuisine tabel in the query you posted here.

share|improve this answer
    
I'm 95% sure my relationships are correct - I am getting the Cuisine name in my pagination results just fine - it's being run in a separate query (created by Cake). The problem is, the way Cake is doing it, (running separate queries to get the related info) doesn't allow me to retrieve restaurants by a given cuisine. –  Dave Apr 25 '11 at 17:14

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