50

I need to select all rows where User.site_url is not null. It's simple enough to do this in a regular MySQL query but how is this done in CakePHP?

The manual mentions the following:

array ("not" => array (
        "Post.title" => null
    )
)

I have tried the following but it's still returning everything

$this->User->find('all', array('conditions' => array('not' => array('User.site_url'))));
1
  • 'conditions' => ["Post.title IS NULL" ] is the way to go here – Sweet Chilly Philly Jan 24 '19 at 23:05
99

I think this is what you mean:

$this->User->find('all', array( 
    'conditions' => array('not' => array('User.site_url' => null))
));
2
  • I don't believe I missed something like that, thanks to both of the answers! – DanCake Jul 28 '09 at 22:11
  • 2
    Translates to "AND NOT (User.site_url = NULL)". So I prefer @GwynBleidd answer ['User.site_url IS NOT NULL']. – François Breton Sep 18 '17 at 10:38
17

Your just missing the null

$this->User->find('all', array('conditions' => array('not' => array('User.site_url'=>null))));
0
16

In Cake, a WHERE condition is constructed from 'conditions' element by joining keys and values. That means that you can actually skip providing the keys if you like. E.g.:

array('conditions' => array('User.id'=>1))

is completely equivalent to

array('conditions' => array('User.id = 1'))

Essentially, you can solve your problem by just this:

$this->User->find('all', array('conditions' => array('User.site_url IS NOT NULL')));
4

You can also try this,

$this->User->find('all', array('conditions' => array('User.site_url <>' => null));

This works fine for me..

4

For simple query:

$this->User->find('all', array(
     'conditions' => array(
         'User.site_url IS NOT NULL'
));

For cakephp 3.X

 $table = TableRegistry::get('Users');
 $assessmentComments = $table
      ->find()
      ->where(function (QueryExpression $exp, Query $q) {
            return $exp->isNotNull('site_url');
        })
      ->all();
1
  • 1
    IS NOT NULL, and IS NULL is definitely the way to go here. – Sweet Chilly Philly Jan 24 '19 at 23:04
1

This work fine for me:

$this->User->find('all', array('conditions' => array('User.site_url !=' => null));
1

Please try '' rather than null:

$this->User->find('all', array('conditions' => array('User.site_url <>' => ''));
1
  • Can you please describe what you are trying to do, and the exact problem you are facing? from this one liner it looks like it's telling you to use '' instead null that you might be using in your query. – Ravish Sep 19 '15 at 7:51
1

this scope is correct! (ctlockey)

$this->User->find('all', array('conditions' => array('not' => array('User.site_url' =>null))));

However I using with different versions of MySql and MariaDb returned inconstant results. I believe that a little bit of direct sql is not that bad so to ensure the integrity of the return.

Therefore, I did the following:

$Obj->find()->where(['field_a IS NULL', 'field_b IS NOT NULL'])->all();
0

Its working for me

$this->set('inventory_masters',$this->InventoryMaster->find('all',array('order'=>$orderfinal,'conditions' => array('InventoryMaster.id' => $checkboxid,'not' => array('InventoryMaster.error'=>null)))));

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