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I have a select query used with php and inner Join but the browser displays an error :

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 specialization_name FROM user u INNER JOIN spe' at line 1

Can anyone help me ?

This is the query :

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")

   {
      $querySrting="SELECT specialization_name FROM user u     INNER JOIN specialization s     ON u.specialization=s.specialization_id      WHERE u.user_id='$id'";

      $result = mysql_query($queryString)  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, registered_date FROM user $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>
                  </table>
                  <hr />
          ';

 }//close while

?>
<!DOCTYPE html PUBLIC "-//W3C//DTD XHTML 1.0 Strict//EN" "http://www.w3.org/TR/xhtml1/DTD/xhtml1-strict.dtd">
<html xmlns="http://www.w3.org/1999/xhtml">
<head>
<meta name="keywords" content="" />
<meta name="description" content="" />
<meta http-equiv="content-type" content="text/html; charset=utf-8" />
<title>Search_Members</title>
<link href='http://fonts.googleapis.com/css?family=Oswald:400,300' rel='stylesheet' type='text/css' />
<link href='http://fonts.googleapis.com/css?family=Abel|Satisfy' rel='stylesheet' type='text/css' />
<link href="default.css" rel="stylesheet" type="text/css" media="all" />
<!--[if IE 6]>
<link href="default_ie6.css" rel="stylesheet" type="text/css" />
<![endif]-->
</head>
<body>
<?php  require_once('header.php'); ?>
<div id="wrapper">
    <div id="page-wrapper">
        <div id="page">
            <div id="wide-content">


              <table width="94%" height="63">
                <tr>
                  <td width="29%"><form id="form1" method="post" action="member_search.php">

                  Browse Newest Members
                    <input type="submit" name="button" id="button" value="go" />
                    <input type="hidden" name="listbyq" value="newest_members" />
                  </form></td>
                  <td width="28%"><form id="form2" name="form2" method="post" action="member_search.php">
                    Search By specialization<br />
                    <select name="specialization"  class="formField">
                        <option value="0">-- Select Your Specialization --</option>

                          <?php specializationQuery(); ?>
                     </select>


                    <input type="submit" name="button2" id="button2" value="go" />
                    <input type="hidden" name="listbyq" value="by_specialization" />
                  </form></td>
                  <td width="43%"><form id="form3" name="form3" method="post" action="member_search.php">
                    Search By firstname
                    <label>
                    <input type="text" name = "fname" id="fname" />
                    </label>
                    <input type="submit" name="button3" id="button3" value="go" />
                    <input type="hidden" name="listbyq" value="by_firstname" />
                  </form></td>
                </tr>
              </table>
              <br />
              <table width="70%" align="center">
                <tr>
                  <td><?php print "$queryMSG";  ?>
                         <br />
                      <?php print "$outputlist";  ?>
                   </td>
                </tr>
              </table>
share|improve this question
    
you're not showing the execution of the query – Sebas May 11 '13 at 19:21
    
i will display the code see the question – user2372265 May 11 '13 at 19:31
    
you're executing twice the query if $_POST['listbyq']=="by_specialization", is that normal? The second time you concatenate SELECT user_id, first_name, .. etc. with $querySrting, this is incorrect. Please clarify the error – Sebas May 11 '13 at 19:36
    
@sebas where i did twice no second is for the $queryString that already i had use 3 queries on it check the question i have 3 types of search but all are related to the $ queryString that check if the hidden value is posted or not – user2372265 May 11 '13 at 19:42
    
you're executing twice mysql_query, see by yourself, and the second time you concatenate 2 selects together when $_POST['listbyq']=="by_specialization". – Sebas May 11 '13 at 19:44

This is wrong you are not executing query and doing mysql_error. Also you are not using aliases near user_id Change it to this

$querySrting="SELECT s.specialization_name FROM user u     INNER JOIN specialization s     ON u.specialization=s.specialization_id      WHERE u.user_id='$id'";

$result = mysql_query($querySrting)  or die(mysql_error());
share|improve this answer
    
it did not workkk – user2372265 May 11 '13 at 19:28
    
@user2372265 try updated query – chandresh_cool May 11 '13 at 19:30
    
@what you mean updated query ???? – user2372265 May 11 '13 at 19:51

use u alias before user_id

$querySrting="SELECT s.specialization_name FROM user u 
                             INNER JOIN specialization s 
                                         ON u.specialization=s.specialization_id 
                        WHERE u.user_id='$id'";
$result = mysql_query($querySrting)  or die(mysql_error());
share|improve this answer
    
i tried your query but still display the error – user2372265 May 11 '13 at 19:26
    
try once again, I update adding alias before specialization_name – Nikola Mitev May 11 '13 at 19:35
    
the browser display :**Notice: Undefined variable: queryString in C Query was empty** – user2372265 May 11 '13 at 19:38
    
check spelling of your queryString variable in $querySrtrning and in mysql_query($querySrtring), it should be the same. – Nikola Mitev May 11 '13 at 19:40
    
i checked the speling and fix it but it again display the first error 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 – user2372265 May 11 '13 at 19:46

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