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I have a code which has a form that inputs surface area. db_connect.php connects the database. I am trying to populate a drop down list with a condition that all values that have surface area greater than the value typed into the text field will be displayed in the text field. But when I try to run the code, i'm getting all the values. How can I solve this? Thank you in advance!

<html>
    <head>
        <title>hi</title>
    </head>
        <body>

        <form>
            <p> surface area : <input name = "sa" type = "text"> </p>
        <br>
        </form>


        <select name="areas">
                <?php 
                $sa = $_POST['sa'];
               include "db_connect.php";
               $displayArea = "SELECT area FROM details where area > '".$sa."'" ;
               $sql = mysqli_query($link, $displayArea);
               echo "<option> Select </option>";
               while ($row =  mysqli_fetch_assoc($sql))
               {  
                echo "<option value=\"areas\">" . $row['area'] . "</option>";
               }
               ?>
        </select>
 </body>
 </html>
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  • 1
    You will need to use ajax to populate the select list when the sa input has been filled in.
    – GluePear
    Commented May 19, 2020 at 7:51
  • WARNING: When using mysqli you should be using parameterized queries and bind_param to add any data to your query. DO NOT use string interpolation or concatenation to accomplish this because you have created a severe SQL injection bug. NEVER put $_POST, $_GET or data of any kind directly into a query, it can be very harmful if someone seeks to exploit your mistake.
    – tadman
    Commented May 19, 2020 at 7:55
  • Note: The object-oriented interface to mysqli is significantly less verbose, making code easier to read and audit, and is not easily confused with the obsolete mysql_query interface where missing a single i can cause trouble. Example: $db = new mysqli(…) and $db->prepare("…") The procedural interface is an artifact from the PHP 4 era and should not be used in new code.
    – tadman
    Commented May 19, 2020 at 7:55
  • 1
    This PHP code runs immediately when the HTML is being rendered by the server. $_POST['sa'] does not exist until something posts to this page. As GluePear says, use AJAX to solve this, make a secondary request after rendering the initial page, and each time sa is changed, make a new request.
    – tadman
    Commented May 19, 2020 at 7:56

1 Answer 1

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first you need a submit button into the form.

<input type="submit" value="Submit">

Then if you are using POST you have to specify it as a Form method:

<form method="post">

Then add:

$sa = $_POST['sa'];
echo("[".$sa."]");

to see if "sa" is populated.

If you add a value and click on "Submit" you will see the result.

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