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This is my form

<form method="POST" action="includes/add.php" dir="rtl" enctype="multipart/form-data">
    <br>
           حدد القسم :  <select name="section">
    <?php
        $query = "SELECT * FROM `sections`";
            $result = mysql_query($query);
           while($row=mysql_fetch_array($result, MYSQL_ASSOC)){                                                 
               echo "<option value='".$row['id']."'>".$row['sectionName']."</option>";
           }
   ?>
    </select><br>
     عنوان الموضوع :<input type="text" name="title" class="mem-information"/><br>
    الموضوع : <br /><textarea name="subject" rows="10" cols="50" class="mem-information" style="width: 500px"></textarea><br /><br>
الصورة :<input type="file" name="image"><br>
    <input type="submit" value="إرسال" name="send" class="log" style="color: black">
</form>

and my add.php (add the content of form to database) is

<?php
    session_start();
    include('../../includes/connect.php');

    $sectionID = $POST["section"];

    $title = $_POST['title'];
    $subject = $_POST['subject'];
    $visiable = 1;
    $imageName = mysql_real_escape_string($_FILES["image"]["name"]);
    $imageData = mysql_real_escape_string(file_get_contents($_FILES["image"]["tmp_name"]));
    $imageType = mysql_real_escape_string($_FILES["image"]["type"]);

    $query = "insert into news (title, subject, visiable, image, section_id) values ('$title','$subject', '$visiable', '$imageData', '$sectionID')"; 
    $result = mysql_query($query);
    $id = mysql_insert_id();

    $data = array(
            'id' => $id
            );
    $base = '../../show.php';
    $url = $base. '?' . http_build_query($data);
    header("Location: $url");
    exit();
?>

How can I get the value of selected item ob dropbox(combobox) and add the value to database ?, sorry for my bad english

share|improve this question
    
Are you getting any error? –  Raj ツ Jul 30 '13 at 8:31

2 Answers 2

up vote 2 down vote accepted

Your code has error in getting the dropdown value.

You have code:

$sectionID = $POST["section"];

This should be:

$sectionID = $_POST["section"];

This will give the value of selected item.

share|improve this answer
    
thanx my brother –  Bassam Badr Jul 30 '13 at 8:48
    
@BassamBadr My pleasure... :) –  Code Lღver Jul 30 '13 at 8:48

Hey you have made a misatake in retrieving the drop down list box value. Instead of $POST[...] use $_POST[...]

here is the modified PHP code

PHP CODE:

<?php
session_start();
include('../../includes/connect.php');

$sectionID = $_POST["section"];

$title = $_POST['title'];
$subject = $_POST['subject'];
$visiable = 1;
$imageName = mysql_real_escape_string($_FILES["image"]["name"]);
$imageData = mysql_real_escape_string(file_get_contents($_FILES["image"]["tmp_name"]));
$imageType = mysql_real_escape_string($_FILES["image"]["type"]);

$query = "insert into news (title, subject, visiable, image, section_id) values ('$title','$subject', '$visiable', '$imageData', '$sectionID')"; 
$result = mysql_query($query);
$id = mysql_insert_id();

$data = array(
        'id' => $id
        );
$base = '../../show.php';
$url = $base. '?' . http_build_query($data);
header("Location: $url");
exit();
?>

The Value set to value attribute inside the option tag will be accessable when you call like this $_POST["section"]

Happy Coding :)

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