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My PHP Code:

I want that before I send my form it will check if the maakartikel extends in my database. If it already extends it has to give a error with: This maakartikel extends. If it doesn't it have to add it to the database.

 <?php

$con = mysqli_connect("localhost", "csa", "csa", "csa");

// Check connection

if (mysqli_connect_errno())

{
    echo "Failed to connect to MySQL:" . mysqli_connect_error();
}

$sql= "INSERT INTO mart (Maakartikel, Omschrijving)

        VALUES 

        ('$_POST[maakartikel]', '$_POST[omschrijving]') ";

if (!mysqli_query($con, $sql))

{
    die('Error:' . mysqli_errno($con));
}

echo "1 record added";

mysqli_close($con);

?>
share|improve this question
    
you want to check if maakartikel exists in your database, No insertion right ? –  Moeed Farooqui Sep 19 '13 at 9:56
    
I have a form and you have to give a maakartikel. This maakartikel is about 8 numbers. And if this maakartikel already exist it have to give a error. If it don't it will add it in the database. –  PHP NOOB Sep 19 '13 at 10:02
    
This code has a SQL injection vulnerability in it, always escape or parameterise your user input before using it. –  halfer Sep 19 '13 at 10:05
    
Can someone just give me the code how to fix it? I need it quikly. –  PHP NOOB Sep 19 '13 at 10:07

4 Answers 4

up vote 0 down vote accepted

Try this....

 <?php

$con = mysqli_connect("localhost", "csa", "csa", "csa");

// Check connection

if (mysqli_connect_errno()) {
    echo "Failed to connect to MySQL:" . mysqli_connect_error();
}
// first check in databse befor to insert Maakartikel
$check_record = "SELECT * from mart where Maakartikel = '$_POST[maakartikel]'";
$query_execute = mysqli_query($check_record);
$num_rows = mysqli_num_rows($query_execute);
if ($num_rows > 0) {
    echo "Error: This maakartikel extends";
    exit();
} else {

    //if not found in database then insert record.

    $sql = "INSERT INTO mart (Maakartikel, Omschrijving)

                     VALUES

                     ('$_POST[maakartikel]', '$_POST[omschrijving]') ";


    if (!mysqli_query($con, $sql)) {
        die('Error:' . mysqli_errno($con));
    }

    echo "1 record added";

}

mysqli_close($con);

?>
share|improve this answer
    
Thank you Zeeshan. There was only one mistake. $query_execute = mysqli_query($check_record); is wrong. It has to be $query_execute = mysqli_query($con, $check_record); –  PHP NOOB Sep 19 '13 at 10:31
    
yes dear, You are right..... –  Zeeshan Sep 19 '13 at 11:49

try following solution

first write "select" query to check weather record exits or not if record exits then donot insert else insert data in table

for example

$select= mysql_query("select * from table where name='xyz'");
$count = mysql_num_rows($select)
if($count>1)
{
 echo "already exits";
}
else
{
 // insert record 
}

Note : here i have used mysql functions not mysqli set so you can change whatever the functions regarding as dont know much of mysqli

share|improve this answer

Look into NOT EXISTS. You can use this with your insert statement so it doesn't insert a duplicate.

share|improve this answer
   $check = "select maakartikel from your_table_name";
   $res   =  mysqli_query($check);
   if($res->rowCount() > 0){
   $sql= "INSERT INTO mart (Maakartikel, Omschrijving)

            VALUES 

            ('$_POST[maakartikel]', '$_POST[omschrijving]') ";

    if (!mysqli_query($con, $sql))

    {
        die('Error:' . mysqli_errno($con));
    }

    echo "1 record added";
}else {
    echo "record already exist";
}
share|improve this answer

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