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I have this code in recording timein and timeout

if(isset($_POST['submit']))
{
$query=mysql_query("Select * FROM tblattendance where IDNumber='" . $_POST['IDNumber'] . "' ");
list($exists) = mysql_fetch_row($query);

$idnumber=$row['IDNumber'];
$fname=$row['FirstName'];
$mname=$row['MiddleName'];
$lname=$row['LastName'];

if($exists){
$sql="UPDATE $tbl_name SET TimeoutAM=CURTIME() WHERE IDNumber='" . $_POST['IDNumber'] . "' ORDER BY  Date DESC, TimeinAM DESC LIMIT 1"; 
}else{
$sql="INSERT INTO $tbl_name SET Date=CURRENT_DATE(), TimeinAM=CURTIME(), IDNumber='$idnumber', FirstName='$fname', MiddleName='$mname', LastName='$lname' ";       
}
$result=mysql_query($sql);
}

My problem is that if the IDNumber doesn't exist it will add a new record with timein and then update the timeout. But when I tried to add again the same IDNumber it didn't add a new record but instead it's just update the existing record the timeout columns. What shall I do to add a record again?

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It looks like you're using the "mysql" family of functions. Be aware that these functions are being deprecated and will eventually be removed from PHP. Please switch to mysqli or PDO if at all possible. –  Charles Nov 30 '12 at 6:05
    
Your code has SQL injection vulnerabilities. Please consider switching to mysqli or PDO so you can use prepared statements with parameterized queries. –  Charles Nov 30 '12 at 6:07
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1 Answer 1

INSERT ... ON DUPLICATE KEY UPDATE Syntax. This will either insert or update.

Query:

 $idnumber = $_POST['IDNumber'];

INSERT INTO $tbl_name(IDNumber,Date,Timein,FirstName,MiddleName,LastName) 
values( '$idnumber',CURRENT_DATE(), NOW(), '$fname', =$mname', '$lname'
ON DUPLICATE KEY UPDATE Timeout=CURRENT_DATE()

It is must that your first column be IDNumber as it follows the order of column to create filter and update would interpret as follows:

UPDATE $tbl_name SET Timeout=NOW() WHERE IDNumber='" .   $_POST['IDNumber'] . "

code:

<?php
     $sql="INSERT INTO $tbl_name(IDNumber,Date,Timein,FirstName,MiddleName,LastName) 
    values( '$idnumber',CURRENT_DATE(), NOW(), '$fname', =$mname', '$lname'
    ON DUPLICATE KEY UPDATE Timeout=CURRENT_DATE()";

    $result=mysql_query($sql); 
?>
share|improve this answer
    
i'm sorry but where should i put that code? in my php code or in my mysql? i'm using phpmyadmin. sorry i'm really new to this –  rhein Nov 30 '12 at 5:52
    
sorry, i edited my codes above. please take a look at it again. although that code doesn't insert new record again. –  rhein Nov 30 '12 at 5:59
    
you can do your insert and update using the my mentioned query at pne shot –  Angelin Nadar Nov 30 '12 at 6:33
    
what is pne shot? i tried your code it's keep on inserting but not updating –  rhein Nov 30 '12 at 6:55
    
sry it to say one shot. spelling mistake!. Have you mentioned the first column as IDNumber as I have done => INSERT INTO $tbl_name(IDNumber,.... because it will use columns in that order to find does the record alreay exists –  Angelin Nadar Nov 30 '12 at 9:12
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