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The data is being sent from the front end like this:

var data = {
                'user_id':userid,
                'qid':array[qnum].qid,
                'user_ans':userAnswers[qnum].answer,
                'user_time':userTime,
                'exerciseid':exid,
                'point_scored':points
        };
$.post('<?php echo base_url()?>main/update_user_score',
            { myData : data },
            function(result){} );

And in my "main" controller, I have:

$post_data = $_POST['myData'];

$data = array(
            'user_id' => $post_data[user_id] ,
            'qid' => $post_data[qid],
            'user_ans' => $post_data[user_ans],
            'user_time' => $post_data[user_time],
            'exerciseid' => $post_data[exerciseid],
            'point_scored' => $post_data[point_scored]
        );

$this->load->model('Question_model','questions');
$this->questions->update_user_attempt($data);

In my Question_model / update_user_attempt:

error_log("data in model BEFORE INSERT:" . json_encode($data));
$this->db->insert('user_attempt', $data);
error_log("data in model AFTER INSERT: ");

The problem is, the data reaches (at least seems to me) the model quite fine. Here's the log entry:

[23-Apr-2012 16:04:47] data in model BEFORE INSERT:{"user_id":"5","qid":"3","user_ans":"d","user_time":"3","exerciseid":"cr1","point_scored":"35"}

BUT there is NO "after insert" log entry. The insert itself does not happen, and neither does the log entry after the insert.

I can read from the DB quite fine. So I checked in phpmyadmin the user privileges of the user in "config/database.php", and that user has ALL privileges, including INSERT.

So two questions:

  1. What is the problem? What mistake am I making?
  2. How do I even begin finding out what is going on with the insert statement? (I cannot find anything in the logs.)
  3. I am looking at xampp/apache/logs/error.log and xampp/php/logs/php_error_log. Should I be looking at some other logs?
share|improve this question

Try putting $this->db->_error_message(); after db insert

like this ...

error_log("data in model BEFORE INSERT:" . json_encode($data));
$this->db->insert('user_attempt', $data);
echo $this->db->_error_message();
error_log("data in model AFTER INSERT: ");
share|improve this answer
    
Where does this get echoed out to? Since this is an ajax call, I cannot see the data on screen. Can I send it out to some log file? – Samudra Apr 23 '12 at 21:35
1  
Use firebug, or a similar plugin, to view the response of the ajax call. It'll show you exactly what your script outputs. – Jay Apr 23 '12 at 23:19
    
It was a stupid mistake. Found that it was failing a foreign key error. Had not known how to check the Ajax responses. Now I know. Thank you very much! – Samudra May 10 '12 at 19:11

Aren't you missing this

$post_data['user_id']

Instead you are using without quotes

share|improve this answer
    
did not change anything. :/ – Samudra May 10 '12 at 18:57
    
I had originally put the quotes, and had removed them because I was so frustrated, I would try anything. Later realized that the query was failing a foreign key constraint. Had not known how to check that earlier. Now I know! Sorry for the trouble, and thank you very much! – Samudra May 10 '12 at 19:13

Don't forget to use $this->db->last_query() after your insert statement to see what the insert statement looks like. copy and paste that insert statement into your sql client to see if the query is actually working on its own.

share|improve this answer
    
Prints an empty string. Does that mean the query is not getting formed?? – Samudra May 10 '12 at 18:58
    
Odds are good. Are you loading the db class? – Catfish May 10 '12 at 19:28
  1. First thing I thought was: shouldn't you use json_decode in stead of json_encode?

  2. Did you set error_reporting(E_ALL);?

share|improve this answer
    
After I added error_reporting(E_ALL) to the model, just before the insert, I still dont see any changes / new log entries. I am looking at xampp/apache/logs/error.log and xampp/php/logs/php_error_log . Should I be looking somewhere else? – Samudra Apr 23 '12 at 21:39

Try adding

ini_set("display_errors", "1");

Also before your insert,

var_dump($data); die(); 

to see exactly what you are passing. Then check here to see that you are properly forming the insert statment.

share|improve this answer

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