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I got a problem when inserting a data. when i click the add button this are always comes out "Error Sir" which is this one die ('Error Sir' . mysql_error());

but when i tried to look for my database everything what i inserted was there. Can you please help me to fix my problem?

Thank you so much. This forum is very helpful.

God bless.

error_reporting (E_ALL ^ E_NOTICE); 
$add = $_POST['add']; //Add button
$date = $_POST['date'];
$project = $_POST['project'];
$task = $_POST['task'];
$originated = $_POST['originated'];
$incharge = $_POST['incharge'];
$deadline = $_POST['deadline'];
$status = $_POST['status'];
$comment = $_POST['comment'];
$fin = $_POST['fin'];
//If add button click
if ($add)
    //This is for checkbox group
        foreach($incharge as $val2)
                $tstring = implode(', ' , $incharge);

                //Database Connection
                $con = mysql_connect ("localhost","root","");
                if (!$con)
                    die ('Not connected to DB' . mysql_error());
                //Selecting Database
                mysql_select_db ("profound_master", $con);
                //Adding of data to te Database
                $sql = "INSERT INTO bulletin VALUES ('','$date','$project','$task','$originated','$tstring','$deadline','$status','$comment','$fin')"; 

                if (!mysql_query ($sql, $con));
                    die ('Error Sir' . mysql_error()); //Always stop here

                echo "1 record added";

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i suggest finding out what the actual return value is from the mysql_query call. seems like you are catching a valid transaction in the if... –  Randy Jul 18 '11 at 17:26

4 Answers 4

up vote 0 down vote accepted

As others suggested, try to find out the error you are getting before anything else. Also make sure the data you have in the database is actually the data you are currently inserting. I'm almost sure you have the same data already in the database and you THINK you are inserting new values.

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remove the ";" after the condition of the if

    if (!mysql_query ($sql, $con))
           die ('Error Sir' . mysql_error()); //Always stop here
share|improve this answer
I hate when I put a semi-colon where it shouldn't be, it can lead to errors which are flagged many liens away from the offending line. –  BOMEz Jul 18 '11 at 17:47
Thank you! now it is connected. but i got a follow up problem regarding to the databse. When i click the add button it says "1 record added" 4 times. i think the problem now is my checkbox group. because when i check 3 items to my checkbox group the data stored 3 time with same data. –  Sigmund Grafia Avila Jul 18 '11 at 17:57
makes sense ... you need to check whether the check box is checked or not before inserting –  Agent1891 Jul 18 '11 at 18:00
All i want is to put all what ive selected or check in a one field. just like this. "a, b, c," but always happened are if i check a and c what i insert was duplicated in the database. Thank you so much and Sorry to trouble you sir! –  Sigmund Grafia Avila Jul 18 '11 at 18:17
np man... glad i could help :) –  Agent1891 Jul 18 '11 at 18:20

Try this (use the columns):

INSERT INTO bulletin (`column1`,`column2`,`youGetThePoint...`) VALUES ('',$date,$project)
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i tried this one but still no luck. –  Sigmund Grafia Avila Jul 18 '11 at 17:33

I assume first parameter is your ID

try to insert 0

$sql = "INSERT INTO bulletin VALUES (0,'$date','$project','$task','$originated','$tstring','$deadline','$status','$comment','$fin')";

if not, try adding mysql_errno():

die('Error Sir' . mysql_errno($con) . ': ' . mysql_error($con));

and also try to format your inputs '".$date."','".$project."',....

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