Using DISTINCT in a CakePHP find function
https://stackoverflow.com/questions/1718482
-
19-09-2019 - |
italiano
english
français
española
中国
日本の
العربية
Deutsch
한국어
Português
RussianQuestion
I am writing a CakePHP 1.2 app. I have a list of people that I want the user to be able to filter on different fields. For each filterable field, I have a drop down list. Choose the filter combination, click filter, and the page shows only the records that match.
In people_controller, I have this bit of code:
$first_names = $this->Person->find('list', array(
'fields'=>'first_name',
'order'=>'Person.first_name ASC',
'conditions'=> array('Person.status'=>'1')
));
$this->set('first_names', $first_names);
(Status = 1 because I am using a soft delete.)
That creates an ordered list of all first_names. But duplicates are in there.
Digging around in the Cookbook, I found an example using the DISTINCT keyword and modified my code to use it.
$first_names = $this->Person->find('list', array(
'fields'=>'DISTINCT first_name',
'order'=>'Person.first_name ASC',
'conditions'=> array('Person.status'=>'1')
));
This gives me an SQL error like this:
Query: SELECT `Person`.`id`, DISTINCT `Person`.` first_name` FROM `people` AS `Person` WHERE `Person`.`status` = 1 ORDER BY `Person`.`first_name` ASC
The problem is obvious. The framework is adding Person.id to the query. I suspect this comes from using 'list'.
I will use the selected filter to create an SQL statement when the filter button is clicked. I don't need the is field, but can't get rid of it.
Thank you, Frank Luke
Solution
You're right, it seems that you cannot use DISTINCT with list. Since you don't need id but only the names, you can use find all like above and then $first_names = Set::extract($first_names, '/Person/first_name');. That will give you a array with distinct first names.
OTHER TIPS
Try to use 'group by', it works perfectry:
$first_names = $this->Person->find('list', array(
'fields'=>'first_name',
'order'=>'Person.first_name ASC',
'conditions'=> array('Person.status'=>'1'),
'group' => 'first_name'));
You can try this. Here this takes Person id as key, so there is no chance for duplicate entries.
$first_names = $this->Person->find('list', array(
'fields' => array('id','first_name'),
'conditions' => array('Person.status' => '1'),
));
$this->set('first_names', $first_names);
Here's how I did it in CakePHP 3.x:
$query = $this->MyTables->find('all');
$result = $query->distinct()->toArray();
Using SQL grouping will also produce a distinct list. Not sure of the negative consequences if any, but it seems to work fine for me.
$first_names = $this->Person->find('list', array(
'fields' => 'first_name',
'order' => 'first_name',
'group' => 'first_name',
'conditions' => array('Person.status' => '1'),
));
$this->set('first_names', $first_names);
I know it is a question for CakePHP 1.2, but I was searching for that too with CakePHP version 3. And in this version there is a method to form the Query into a distinct one:
$first_names = $this->Persons->find(
'list',
[
'fields'=> ['name']
]
)
->distinct();
;
This will generate a sql query like this:
SELECT DISTINCT Persons.name AS `Persons__name` FROM persons Persons
But the distinct method is a bit mightier than just inserting DISTINCT in the query.
If you want to just distinct the result on one field, so just throwing away a row with a duplicated name, you can also use the distinct method with an array of the fields as parameter:
$first_names = $this->Persons->find(
'list',
[
'fields'=> ['id', 'name'] //it also works if the field isn't in the selection
]
)
->distinct(['name']); //when you use more tables in the query, use: 'Persons.name'
;
This will general a sql query like this (for sure it is a group query):
SELECT DISTINCT
Persons.id AS `Persons__id`, Persons.name AS `Persons__name`
FROM persons Persons
GROUP BY name #respectively Persons.name
Hope I will help some for CakePHP 3. :)
Yes the problem is that you are using a listing which designed for a id / value output. You probably will have to do a find('all') and then build the list yourself.
Yes I also tried to fetch unique results with 'list' but its not working. Then I fixed the problem by using 'all'.
In the example now on the book for version 2 it states the following:
public function some_function() {
// ...
$justusernames = $this->Article->User->find('list', array(
'fields' => array('User.username')
));
$usernameMap = $this->Article->User->find('list', array(
'fields' => array('User.username', 'User.first_name')
));
$usernameGroups = $this->Article->User->find('list', array(
'fields' => array('User.username', 'User.first_name', 'User.group')
));
// ...
}
With the above code example, the resultant vars would look something like this:
$justusernames = Array
(
//[id] => 'username',
[213] => 'AD7six',
[25] => '_psychic_',
[1] => 'PHPNut',
[2] => 'gwoo',
[400] => 'jperras',
)
$usernameMap = Array
(
//[username] => 'firstname',
['AD7six'] => 'Andy',
['_psychic_'] => 'John',
['PHPNut'] => 'Larry',
['gwoo'] => 'Gwoo',
['jperras'] => 'Joël',
)
$usernameGroups = Array
(
['User'] => Array
(
['PHPNut'] => 'Larry',
['gwoo'] => 'Gwoo',
)
['Admin'] => Array
(
['_psychic_'] => 'John',
['AD7six'] => 'Andy',
['jperras'] => 'Joël',
)
)
You have to plan your query in a slightly different way and plan your database to accommodate a list find.
In some cases, you wish to group by using some key, but you want unique element within the results.
For example, you have a calendar application with two types of events. One event on day 1rst and the other one on the 2nd day of month 1. And you want to show or rather count all the events, grouped by day and by type.
If you use only DISTINCT, it is quite difficult. The simplest solution is to group twice:
$this->Events->virtualFields['count'] = 'COUNT(*)';
$acts = $this->Activity->find('all',array(
'group' => array('DAY(Event.start)','EventType.id'),
));
Just group by the fields that you want to get distinct.. or use Set::extract() and then array_unique()
In 2.7-RC version, this is working
$this->Model1->find('list', array(
'fields' => array('Model1.field1', Model1.field1')
));
