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I've just created a very simple search function in PHP, but am having a few issues. The search function sends a query to the database, and prints results, but it doesn't print the results I want. It's supposed to print those records that are like the user input, but it just prints every record.

My Form is as follows:

<form action="<?php echo $_SERVER['PHP_SELF']; ?>" method="post">
     <input  type="text" name="name"> 
     <input  type="submit" name="submit" value="Search"> 

And the PHP code to make it search is:

     require ('mysqli_connect.php');
     include ('config.php');

    $term = $_POST['term'];
        $q = "SELECT  name, producer, jamtypes, user FROM Jam WHERE name LIKE '%" . $term .  "%'";
        $sql = @mysqli_query ($dbc, $q);

     while ($row = mysqli_fetch_array($sql)){

        echo "<br />";
         echo 'Name: '.$row['name'];
         echo '<br/> Producer: '.$row['producer'];
         echo '<br/> Created By: '.$row['user'];
         echo '<br/> Category: '.$row['jamtypes'];
         echo '<br/>';


Thanks guys

share|improve this question
You're wide open to sql injections –  John Conde Jan 6 '13 at 22:13
echo $q; is it what you expected? there is no "term" in your form, perhaps you wanted "name" –  Dagon Jan 6 '13 at 22:13
John is correct World, you should sanitize your database inputs. Mysqli offers prepared statements which helps this [… –  djthoms Jan 6 '13 at 22:17
Changing $term = $_POST['term']; to $term = $_POST['name']; could help to solve your problem –  agim Jan 6 '13 at 22:17
Cheers for the warning guys. Was planning on testing the security side of things once I'd got it working :) Apoligies for the idiocy of the question, should have worked it out myself really! –  Bic1245 Jan 6 '13 at 22:20

1 Answer 1

up vote 2 down vote accepted

Your form field is name, not term, so your PHP should be

$term = $_POST['name'];

Because $term is blank due to having an incorrect value your query returns all results. (Your query looks like SELECT name, producer, jamtypes, user FROM Jam WHERE name LIKE '%&')

FYI, having error_reporting turned on and reporting notices would have told you this. Always develop with error reporting on and displaying all errors.

share|improve this answer
Thanks! Really simple, stupid error. I did have term in my form previously, but took it out and re-did the php. Should have error checked it, and will do in future. Cheers again. –  Bic1245 Jan 6 '13 at 22:19

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