7

Here is my code:

$this->db->select('course_name AS Course Name,course_desc AS Course Description,display_public AS Display Status',FALSE);
$this->db->from('courses');
$this->db->where('tennant_id',$tennant_id);
$this->db->order_by('course_name','ASC');
$query = $this->db->get();

and I got an error:

A Database Error Occurred

Error Number: 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 'Name, course_desc AS Course Description, display_public AS Display Status FROM (' at line 1

and I got an error:

A Database Error Occurred

Error Number: 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 'Name, course_desc AS Course Description, display_public AS Display Status FROM (' at line 1

SELECT course_name AS Course Name, 
       course_desc AS Course Description, 
       display_public AS Display Status 
FROM (`courses`) WHERE `tennant_id` = 'elicuarto@apploma.com' 
ORDER    BY `course_name` ASC

Filename: C:\wamp\www\coursebooking\system\database\DB_driver.php

Line Number: 330

1 Answer 1

18

Try

$this->db->select('course_name AS `Course Name`, course_desc AS `Course Description`, display_public AS `Display Status`', FALSE);

It's the space in your alias that is messing with you.

UPDATE

I'm not sure why you would want to, but I see nothing preventing you from writing

$this->db->select("course_name AS `{$variable}`", FALSE);

(showing just one field for simplicity)

UPDATE 2

Should be standard string conversion so I don't know why it doesn't work for you.. there's always split strings...

$this->db->select('course_name AS `' . $variable . '`', FALSE);
5
  • Another thing also, is it possible to put variable for the alias name instead?
    – Eli
    Jan 24, 2013 at 12:25
  • It isn't working. It will just print the whatever variable name being put in the curly braces. Is there anything lacking?
    – Eli
    Jan 25, 2013 at 0:46
  • Did you use double quotes (") for the string? Using single quotes (') will not allow for variable substitution.
    – danneth
    Jan 25, 2013 at 9:07
  • Yes. I did exactly the same as you but it's the variable name that is being printed.
    – Eli
    Jan 26, 2013 at 2:33
  • Did you try split strings as per update 2? If that does not work either, I really have no clue
    – danneth
    Jan 28, 2013 at 10:11

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