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I'm trying to get a subset of results as a virtualField for use in my view. I may even be way off on how I'm approaching this, but here's what I've done so far:

I started with this question here: CakePHP virtualField find all not null which lead to this little beauty.

Now I have an issue where the find statement passing (Array) into the MySQL.

My code looks like:

class Transaction extends AppModel {
public function __construct($id = false, $table = null, $ds = null) {
    parent::__construct($id, $table, $ds);
    $this->virtualFields['Accounts'] = $this->find("all", array("conditions" => array("account !=" => null)));
}

And I'm seeing:

Error: SQLSTATE[42S22]: Column not found: 1054 Unknown column 'Array' in 'field list'

SQL Query: SELECT `Transaction`.`id`, `Transaction`.`name`, 
`Transaction`.`person_id`, `Transaction`.`account`, (Array) 
AS `Transaction__Accounts` FROM `my_database`.`transactions` 
AS `Transaction` WHERE `Transaction`.`person_id` = (2)

I've also tried $this->Transaction->find and "Transaction.account !=", to no avail. I've found some other issues with the (Array) but none that help my situation. Any pointers in the right direction would be great.

share|improve this question
    
I think I'm just going to grab this in the controller for now... but I'm going to leave the question up as it seems valid. – Randy Hall Dec 8 '13 at 21:59
up vote 2 down vote accepted

Problem: your query results are an array, and you're telling SQL to assign a field name to each query result containing that array - virtual fields are only made to contain single level variables like strings.

Solution: use a join structure onto itself with those conditions which will return a nested result set along with each of your results. Use CakePHP's model relationships to do this:

<?php    
class Transaction extends AppModel {
    var $hasMany = array(
        'Accounts' => array(
            'className' => 'Transaction',
            'foreignKey' => false,
            'conditions' => array('Accounts.account IS NOT NULL')
        )
    );
}    
?>

Example output:

Array(
    'Transaction' => array( // transaction data),
    'Accounts' => array( // associated transaction data with account set to null
)

Now, as you can probably gather from that result, if you return 1000 rows from Transaction, you'll get all results from Accounts nested into each Transaction result. This is far from ideal. From here, you can either make the join conditions more specific to target relevant Accounts records, or this is not the right approach for you.

Other approaches could be:

  • Accounts model, uses Transaction database table, implicit find conditions are that account is null
  • Manual query to retrieve these results in the afterFind() method of your Transaction model, which will retrieve these results once, and you'll then return array_merge($accounts, $transactions)
share|improve this answer
    
I will try these (that last one in particular) and let you know what happens. Great explanation at the very least! – Randy Hall Dec 8 '13 at 22:07
    
@RandyHall if it were me, I'd go the afterFind way – Robbie Averill Dec 8 '13 at 22:09
    
I'm trying it now. Without writing the whole thing out, will $this->find("all", array("conditions" => array("not" => array("account" => null)))); give me ALL records where account != null, or only a subset of the original $results? – Randy Hall Dec 8 '13 at 22:11
    
It's a seperate query, so it won't be affected by your original query conditions. If you have trouble with it, go deeper and just use $this->query("SQL HERE") - but you shouldn't have trouble. – Robbie Averill Dec 8 '13 at 22:15
1  
My guess would be to do a manual query using $this->query('SQL here') - because $this->find() in a find callback is probably triggering another afterFind and creating an endless loop. $this->query() is manual, but might not have the same effect. – Robbie Averill Dec 8 '13 at 22:39

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