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**error in thee sql query he gives me while run error in query that i delete with id can any one helps the error is Parse error: syntax error, unexpected end of file in C:\xampp\htdocs\serach1.php on line 68 **

        <?php        
          // button click  
if (isset($_POST['submit'])) { 
$id=$_POST['id'];

   $sql=" DELETE FROM `material` WHERE  id=". $id;
        $result=  mysqli_query($connect, $query);
        if( $result){
            echo 'record is deleted';
        }
        else {
           die("Error in query");    
}



        ?>


        <?php

         if (isset($_POST['submit'])) {
        mysqli_free_result($result);
         }
        ?>

    </body>
</html>
<?php
mysqli_close($connect);
?>

marked as duplicate by jeroen, Syscall, Jigar Shah, John Conde mysql Mar 12 '18 at 12:21

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • What error are you getting? – Smit Raval Mar 12 '18 at 9:56
  • 3
    You are missing a closing single quote although you really should be using a prepared statement. – jeroen Mar 12 '18 at 9:57
  • Everytime you gets and sql error, try to print sql query and run in phpmyadmin. You will get an idea why you getting an error. – Nagesh Katke Mar 12 '18 at 10:17
  • i have taken it from my sql but it also give me an error in query] – Ehab Moustafa Mar 12 '18 at 10:19
  • share the printed sql query – user3040610 Mar 12 '18 at 10:24
0

You have a syntax error. Change this line:

$sql=" SELECT * FROM `material` WHERE id like '%".$id."%";

with this:

$sql=" SELECT * FROM `material` WHERE id like '%".$id."%'";
  • and if i want to delete? – Ehab Moustafa Mar 12 '18 at 10:04
  • $sql=" DELETE FROM material WHERE id LIKE '%".$id."%' "; – alvarofvr Mar 12 '18 at 10:09
  • it gives error in query – Ehab Moustafa Mar 12 '18 at 10:14
  • <?php // read if (isset($_POST['submit'])) { $id=$_POST['id']; $sql=" DELETE FROM material WHERE id LIKE '%".$id."%' "; $result= mysqli_query($connect, $sql); if(! $result){ die("Error in query"); } elseif ($result) { echo"record deleted "; } } ?> – Ehab Moustafa Mar 12 '18 at 10:14
  • What error are you getting? – alvarofvr Mar 12 '18 at 10:40
0

These are the correct syntaxes:

$sql="SELECT * FROM `material` WHERE id like '%".$id."%'";

$sql="DELETE FROM `material` WHERE id LIKE '%".$id."%'";

And if you're still getting an error, then check your $connect object. That's where the error most likely is - wrong username, password or database. Make a check first to see if the connection was successful.

<?php
$connect = mysqli_connect("localhost", "username", "password", "database");

if (mysqli_connect_errno()) {
    printf("Failed to connect database: %s\n", mysqli_connect_error());
    exit();
}
  • THE connection is working – Ehab Moustafa Mar 12 '18 at 10:32

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