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i have a php code that related to a database after the running of the code everything work as it should but when it comes to getting data back to the ajax the system do not work ... means it must display a message but the system do not show any message

can anyone help me ????

php code

///***************IF ACCEPT FRIEND***************//
if($_POST["request"]=="acceptFriend")
{
   $reqID = preg_replace('#[^0-9]#i', '', $_POST['reqID']);
   $sql = mysql_query("SELECT * FROM friend_requests WHERE id = '$reqID' LIMIT 1")or die(mysql_error());
   $numRow = mysql_num_rows($sql);
   if($numRow<1)
   {
       echo "An error occured";
       exit();
   }
   while($row = mysql_fetch_array($sql))
   {
       $mem1 = $row['mem1'];
       $mem2 = $row['mem2'];


   }


  //query for mem1 mem2 array
   $sql_frnd_mem1_array = mysql_query("SELECT friend_array FROM members WHERE  user_id='$mem1' LIMIT 1")or die(mysql_error());
   $sql_frnd_mem2_array = mysql_query("SELECT friend_array FROM members WHERE  user_id='$mem2' LIMIT 1")or die(mysql_error());
   while($row = mysql_fetch_array($sql_frnd_mem1_array))
   {
       $frnd_array_mem1 = $row['friend_array'];
   }
   while($row = mysql_fetch_array($sql_frnd_mem2_array))
   {
       $frnd_array_mem2 = $row['friend_array'];
   }
   $frnArrayMem1 = explode(",",$frnd_array_mem1);
   $frnArrayMem2 = explode(",", $frnd_array_mem2);

   //*******************PREVENT DUPLICATION IN id**************
   if(in_array($mem2,$frnArrayMem1))
   {
       echo "this member is already your friend!";
       exit();
   }
   if(in_array($mem1,$frnArrayMem2))
   {
       echo "this member is already your friend!";
       exit();
   }

   // puting each other in friend array field
   if($frnd_array_mem1 !="" )
   {
       $frnd_array_mem1 ="$frnd_array_mem1, $mem2";
   }
   else
   {
       $frnd_array_mem1 = "$mem2";
   }
   if($frnd_array_mem2 !="" )
   {
       $frnd_array_mem2 ="$frnd_array_mem2, $mem1";
   }
   else
   {
       $frnd_array_mem2 = "$mem1";
   }
   $UpdateArrayMme1 = mysql_query("UPDATE  members SET friend_array = '$frnd_array_mem1' WHERE user_id = '$mem1'") or die(mysql_error());
    $UpdateArrayMme2 = mysql_query("UPDATE  members SET friend_array = '$frnd_array_mem2' WHERE user_id = '$mem2'") or die(mysql_error());
    $deleteThisPendingRequest =mysql_query("DELETE FROM friend_requests WHERE id = '$reqID' LIMIT 1")or die(mysql_error());  
    echo "you are now friend with this member!";
    exit();
}
if($_POST['request']=="denyFriend")
{
    $reqID = preg_replace('#[^0-9]#i', '', $_POST['reqID']);
    $deletethisPendigRequest = mysql_query("DELETE FROM friend_requests WHERE user_id = '$reqID' LIMIT 1 ")or die(mysql_error());
    echo "Request Denied";
    exit();
}

ajax code

//function for accepting freinds
function acceptFriendRequest(x){    
$.post(url,{request:"acceptFriend",reqID:x,thiswipt:thisRandNum},function(data){
    $("#req"+x).html(data).show();
  });
}

//function to deny friend request
function denyFriendRequest(x){
$.post(url,{request:"denyFriend",reqID:x,thiswipt:thisRandNum},function(data){
    $("#req"+x).html(data).show();
  });
}
share|improve this question
    
In alert(data) what coms result – Deval Shah May 16 '13 at 19:36
    
it display the write data – user2381715 May 16 '13 at 19:40
    
write here your result data – Deval Shah May 16 '13 at 19:42
    
if request accepted : you are now friend with this member! if request denied: Request Denied – user2381715 May 16 '13 at 19:46
    
then what is your output in ajax response.do alert(data) – Deval Shah May 16 '13 at 19:50

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