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I have a select query with inner join. I try it in phpmyadmin it works fine. But when I try it in the browser it display this error message:

You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near 'SELECT s.specialization_name FROM user u INNER JO' at line 1

member_search.php

/default  message  on top of the result  display
$querySrting="WHERE registered_date!='' ORDER BY registered_date ASC ";
$queryMSG="Showing newest to oldest memebrs by default";
///IF STATMENT TO DISTINGOUICH SEARCHING
if(isset($_POST['listbyq']))
{
  if($_POST['listbyq']=="newest_members")
  {
      $querySrting="WHERE registered_date!='' ORDER BY registered_date DESC " or die(mysql_error());
      $queryMSG="Showing senior to oldest memebrs";
  }
elseif($_POST['listbyq']=="by_specialization")

   {
      $querySrting="SELECT specialization_name FROM members u 
                         INNER JOIN specialization s 
                                     ON u.specialization=s.specialization_id";

    $result = mysql_query($querySrting)  or die(mysql_error());
      $queryMSG="showing members with specs";
   }
elseif($_POST['listbyq']=="by_firstname")
  {
      $fname = $_POST['fname'];
      $fname = stripcslashes($fname);
      $fname = strip_tags($fname);
      $querySrting="WHERE  first_name LIKE '%$fname%'"or die(mysql_error());
      $queryMSG="Showing member with the name you searched for";
  }
}
///******query the member data using the queryString*******//
$sql = mysql_query("SELECT user_id, first_name, last_name, birth_date, specialization, registered_date FROM members $querySrting") or die(mysql_error());
 //**********************outputlist*********************************//
 $outputlist="";
 while($row = mysql_fetch_array($sql))
 {
     $id=$row['user_id'];
     $firstname=$row['first_name'];
     $lastname=$row['last_name'];
     $birthdate=$row['birth_date'];
     $spec = $row['specialization'];
     $registereddate=$row['registered_date']; 
     ////***********for the upload image*************************//
      $check_pic="members/$id/image01.jpg";
   $default_pic="members/0/image01.jpg";
   if(file_exists($check_pic))
   {
       $user_pic="<img src=\"$check_pic\"width=\"120px\"/>";
   }
   else
   {
       $user_pic="<img src=\"$default_pic\"width=\"120px\"/>";
   }

   $outputlist.='
   <table width="100%">
               <tr>
                  <td width="23%" rowspan="3"><div style="height:120px;overflow:hidden;"><a href = "http://localhost/newadamKhoury/profile.php?user_id='.$id.'" target="_blank">'.$user_pic.'</a></div></td>
                  <td width="14%"><div  align="right">Name:</div></td>
                  <td width="63%"><a href = "http://localhost/newadamKhoury/profile.php?user_id='.$id.'" target="_blank">'.$firstname.' '.$lastname.'</a></td>
                  </tr>

                  <tr>
                    <td><div align="right">Birth date:</div></td>
                    <td>'.$birthdate.'</td>
                  </tr>
                  <tr>
                   <td><div align="right">Registered:</div></td>
                   <td>'.$registereddate.'</td>
                  </tr>

                  <tr>
                   <td><div align="right">His Job:</div></td>
                   <td>'.$spec.'</td>
                  </tr>
                  </table>
                  <hr />
          ';

 }//close while
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marked as duplicate by andrewsi, bluefeet, Antony, rekire, Rostyslav Dzinko May 13 '13 at 17:46

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.

    
You have an SQL syntax error. Showing us a wall of PHP code is pointless. show us the actual query that caused the syntax error. –  Marc B May 13 '13 at 17:32
1  
Please, don't use mysql_* functions in new code. They are no longer maintained and are officially deprecated. See the red box? Learn about prepared statements instead, and use PDO or MySQLi - this article will help you decide which. If you choose PDO, here is a good tutorial. –  rekire May 13 '13 at 17:42

2 Answers 2

$querySrting is a variable. You should concatenate those strings:

$sql = mysql_query("SELECT user_id,
                           first_name,
                           last_name,
                           birth_date,
                           specialization,
                           registered_date
                    FROM members $querySrting") // HERE

Should be like this:

$sql = mysql_query("SELECT user_id,
                           first_name,
                           last_name,
                           birth_date,
                           specialization,
                           registered_date
                    FROM members".$querySrting) // HERE
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Your code is outright attrocious and shows major symptoms of cargo-cult programming:

  $querySrting="WHERE  first_name LIKE '%$fname%'"or die(mysql_error());

You're assigning a bit of text to a variable, which cannot possibly fail, yet you try to treat it as a potential SQL error. You're not EXECUTE that small snippet of SQL, so there is absolutely NO way an sql error could be triggered by this line.

Immediately before the previous line, you have

  $fname = $_POST['fname'];
  $fname = stripcslashes($fname);
  $fname = strip_tags($fname);

which leaves you WIDE OPEN for SQL injection attacks. By running $fname through stripcslashes(), you've removed the one MINOR utterly FAINT HOPE of preventing an injection attack, assuming you're on a PHP that has magic_quotes enabled.

On top of this, none of the queries you have in your code are the actual query causing the SQL error you're getting. The error clearly states FROM USER u, which does not appear anywhere in your code.

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