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I have two tables:

biometrics - records in and out of employees
emp - employee records

In my biometrics table, there is a status.

0 - if the employee went out
1 - if the employee went in

The employee can have multiple 0 and 1 status in a day because you timed in and timed out also when having a break. so the status can be like this:

time_created status
9:00          1       ---  time in
12:00         0       ---  time out for break
13:00         1       ---  time in again after break
18:00         0       ---  time out

so the employee can have multiple breaks.

I already have the correct query for this but here is the problem. I'm making a program that records all breaks. The problem when I extract it to Excel, the "timeout" column and "timediff" (column that shows total number of hours and minutes the employee spent on his/her break) column is not showing. This two columns are products of sub-queries.

Here is my code:

        if(isset($_POST['timediff'])){
        header("Content-type: text/csv; charset=UTF-8");
        header('Content-Disposition: attachment; filename=Export_Date.csv');

            $con = mysql_connect("localhost", "root");
            if(!$con){
                echo "Error connection";
                    }

            $select_db = mysql_select_db('sample', $con);
            if(!$select_db){
                echo "Error to select database";
                    }
            mysql_set_charset("utf8", $con);

    $myquery2 = mysql_query("select g.empno, emp.emp_fname, emp.emp_fname,    emp.position, emp.office , g.date_created, min(g.time_created), g.timeout, timediff(g.timeout, min(g.time_created))
FROM
(
select id_biometrics, empno,date_created, time_created, (
 SELECT min(s.time_created) FROM biometrics s

   WHERE s.status like '0' AND s.time_created > base.time_created
 AND s.empno= base.empno AND s.date_created = base.date_created 

   ORDER BY s.time_created ASC) as timeout 
from biometrics base
where base.status like '1'

) g, emp
WHERE emp.empno = g.empno AND NOT (g.timeout = (SELECT min(time_created) FROM biometrics    where status like '1'))

GROUP BY g.empno, g.timeout

ORDER BY g.date_created;");

        //While loop to fetch the records
        $contents =     "empno,emp_fname,emp_lname,position,office,date_created,timeout,timein,timediff\n";
        while($row = mysql_fetch_array($myquery2))
        {
            $contents.=$row['empno'].",";
            $contents.=$row['emp_fname'].",";
            $contents.=$row['emp_lname'].",";
            $contents.=$row['position'].",";
            $contents.=$row['office'].",";
            $contents.=$row['date_created'].",";
            $contents.=$row['min(g.time_created)'].",";
            $contents.=$row['g.timeout'].",";
            $contents.=$row['timediff(g.timeout, min(g.time_created)']."\n";

        }

        $contents_final = chr(255).chr(254).mb_convert_encoding($contents, "UTF-16LE","UTF-8");
        print $contents_final;
        }
        ?>

The "timein" is showing. only the last two columns: "timeout" (g.timeout) and "timediff" is not showing. I don't know what is wrong because in MySQL Workbench, this query is working perfectly.

share|improve this question

You need to alias your columns in your SELECT statement:

SELECT ... timediff(g.timeout, min(g.time_created)) AS mytimediff
FROM ...

The column can then be accessed as mytimediff.

There may be another way to read this without the alias: temporarily, try adding print_r($row) inside your loop, to see how this column is referenced without an explicit SQL alias. That said, I think these are better with a proper alias.

Lastly, you may be aware that the mysql library is deprecated. If possible, convert your application to use PDO/MySQL or MySQLi.

share|improve this answer
    
Ok I will use it. haha. about the mysql, right, they said that it's deprecated but I'm still learning from basics so I must learn this first before turning to PDO and MYSQLI. thanks a lot. I'll try it. :) – nicole101 Dec 20 '13 at 9:50
    
Heh, I just spotted that it's been mentioned on your previous questions. Alright, I'll stop mentioning it ;-). – halfer Dec 20 '13 at 9:59
    
I tried removing $contents.=$row['office'].","; and replaced it with print_r($row) and it printed with exact results but not in a table way. It printed as Array => etc etc. – nicole101 Dec 20 '13 at 10:03
    
Indeed it will. This was intended just as a temporary debugging approach, to see what column name has been used by MySQL if you don't add an explicit alias. I've tweaked my answer to make that clear. – halfer Dec 20 '13 at 10:05
1  
ahh. hahaha. I thought that will print every row. haha. ok, I'll try aliasing. then if no luck, I will use phpmyadmin routines. I like to try it the hard way first before doing the easy way. ;-) – nicole101 Dec 20 '13 at 10:11
up vote 0 down vote accepted

Done! haha. I use this method to print it,

        while($row = mysql_fetch_array($myquery2))
        {
            $contents.=$row[0].",";
            $contents.=$row[1].",";
            $contents.=$row[2].",";
            $contents.=$row[3].",";
            $contents.=$row[4].",";
            $contents.=$row[5].",";
            $contents.=$row[6].",";
            $contents.=$row[7].",";
            $contents.=$row[8]."\n";

        }

Thanks halfer for the print_r($row).. It showed me that every column is inside an array thus I printed it by providing indexes. :D :D

share|improve this answer
    
Righto. I think if you pass PDO::FETCH_ASSOC to the fetch method (see the docs to double-check the name) you can access the columns by name rather than by numeric index. Still at least is is now working! Don't forget to self-accept your own answer. – halfer Dec 22 '13 at 16:48
    
ok, I will start on studying PDO and mysqli now. hahahaha. thanks again. :D – nicole101 Dec 23 '13 at 2:13

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