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I'm using cakePHP to create a todo-application. CakePHP creates queries for you etc. That's why there must be no typo.

The error:

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

The query:

SQL Query: SELECT `Itemrequirement`.`itemreq_id`, `Projecttask`.`projecttasks_name` 
FROM `gtd`.`itemrequirements` AS `Itemrequirement` 
LEFT JOIN `gtd`.`projecttasks` AS `ProjecttaskParent` ON (`Itemrequirement`.`itemreqs_rel_projectparents` = `ProjecttaskParent`.`projecttasks_id`)    
LEFT JOIN `gtd`.`projecttasks` AS `ProjecttaskChild` ON (`Itemrequirement`.`itemreqs_rel_projectchilds` = `ProjecttaskChild`.`projecttasks_id`) 
WHERE 1 = 1 
ORDER BY `Itemrequirement`.`itemreq_id` asc LIMIT 10000

The database: part of database

I'm growing quite clueless, as I've tried loads of things in phpmyadmin manually..

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Should you not be selected Projecttaskparent.projecttasks_name as that is your given alias in the query? –  Moo-Juice Sep 19 '13 at 10:29

3 Answers 3

up vote 1 down vote accepted

You are using projecttasks twice

LEFT JOIN `gtd`.`projecttasks` AS `ProjecttaskParent` ...
LEFT JOIN `gtd`.`projecttasks` AS `ProjecttaskChild`  ...

but with aliases ProjecttaskParent and ProjecttaskChild, so you must use an alias instead of the table name

`ProjecttaskParent`.`projecttasks_name`

or

`ProjecttaskChild`.`projecttasks_name`

Your query should look as below (with ProjecttaskChild alias fro example)

SELECT `Itemrequirement`.`itemreq_id`, `ProjecttaskChild`.`projecttasks_name` 
FROM `gtd`.`itemrequirements` AS `Itemrequirement` 
LEFT JOIN `gtd`.`projecttasks` AS `ProjecttaskParent` ON (`Itemrequirement`.`itemreqs_rel_projectparents` = `ProjecttaskParent`.`projecttasks_id`)    
LEFT JOIN `gtd`.`projecttasks` AS `ProjecttaskChild` ON (`Itemrequirement`.`itemreqs_rel_projectchilds` = `ProjecttaskChild`.`projecttasks_id`) 
WHERE 1 = 1 
ORDER BY `Itemrequirement`.`itemreq_id` asc LIMIT 10000
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Thanks, I didn't knew you'd also had to use the alias when calling fields! Selecting as answer whenever ready :) –  Janwillem Dooms Sep 19 '13 at 10:31
    
@JanwillemDooms I'm glad I could help you. :) –  Parado Sep 19 '13 at 10:42

You are selecting from database name ProjectTask and you use an alias (ProjectTaskParent and ProjectTaskChild)

Your query should be:

SELECT `Itemrequirement`.`itemreq_id`, `ProjecttaskParent`.`projecttasks_name` FROM `gtd`.`itemrequirements` AS `Itemrequirement` LEFT JOIN `gtd`.`projecttasks` AS `ProjecttaskParent` ON (`Itemrequirement`.`itemreqs_rel_projectparents` = `ProjecttaskParent`.`projecttasks_id`) LEFT JOIN `gtd`.`projecttasks` AS `ProjecttaskChild` ON (`Itemrequirement`.`itemreqs_rel_projectchilds` = `ProjecttaskChild`.`projecttasks_id`) WHERE 1 = 1 ORDER BY `Itemrequirement`.`itemreq_id` asc LIMIT 10000

Change Projecttask.projecttasks_name for ProjecttaskParent.projecttasks_name or ProjecttaskChild.projecttasks_name

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There is no Projecttask

From the error message:

Unknown column 'Projecttask.projecttasks_name' in 'field list'

So there is a table/alias Projecttask and a field projecttasks_name. Except in the query:

FROM `gtd`.`itemrequirements` AS `Itemrequirement` 
LEFT JOIN `gtd`.`projecttasks` AS `ProjecttaskParent` ...   
LEFT JOIN `gtd`.`projecttasks` AS `ProjecttaskChild` ...

The table projecttasks has two different aliases, i.e. the problem is not that the field doesn't exist in the table its that there is no table in the query with that name/alias.

Probably the query you want is:

SELECT 
    `Itemrequirement`.`itemreq_id`, 
    `ProjecttaskParent`.`projecttasks_name` # <- alias updated
FROM 
    `gtd`.`itemrequirements` AS `Itemrequirement` 
LEFT JOIN 
    `gtd`.`projecttasks` AS `ProjecttaskParent` ON (...)    
LEFT JOIN 
    `gtd`.`projecttasks` AS `ProjecttaskChild` ON (...) 
WHERE 
    1 = 1 
ORDER BY 
    `Itemrequirement`.`itemreq_id` asc 
LIMIT 10000

PHP code?

The code for the query isn't shown but therefore you need to change

$Itemrequirement->find('all', array(
    'conditions' => array(
        'Projecttask.projecttask_name' ...

to

$Itemrequirement->find('all', array(
    'conditions' => array(
        'ProjecttaskParent.projecttask_name' ...

Or alternatively use escapeField to ensure the alias is correct

$Itemrequirement->find('all', array(
    'conditions' => array(
        $Itemrequirement->ProjecttaskParent->escapeField('projecttask_name') ...
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I'm not using PHP. It was obviously just a SQL-bug, to show the cakephp code would be unneccesary. –  Janwillem Dooms Sep 19 '13 at 10:43
    
"I'm using cakePHP to create a todo-application. CakePHP creates queries for you" - that's 100% confusing if infact you are not using PHP, plus the question is tagged with cakephp (which is how I found it). If the queries did come from CakePHP, the error is in the php code, and.. how can you show the cakephp code if there isn't any because you're not using PHP? So much confusion in so little words =). –  AD7six Sep 19 '13 at 10:44
    
you're the one confusing cakephp with regular php. –  Janwillem Dooms Sep 19 '13 at 10:55

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