Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a table sets in a popup window to show orders placed by a specific userID

<div id="shpcart">
<div id="shpop">
<table>
<thead>
   <tr><th></th><th>Item name</th><th colspan="2">Price</th><th>shipping</th></tr><th>Quantity</th>
</thead>
<tbody id= "cartbody">

</tbody>
</table>
</div>
</div>

Here is the ajax to send the userID to the server

$(function(){            

    $(".prod_buy").click(function(){

    var htmlId = $(this).attr('id');
    var idarray = htmlId.split('-');
    var itemId = idarray[1];
    $.ajax({
 type: "POST",
 url: "tempselector.php",
 data: {'proId': itemId  }
 }).done(function( msg ) {
 jQuery.parseJSON(msg);
 var output = jQuery.parseJSON(msg);
 var htmlstring;
 alert ("im running");
 for(var index=0;index<output.length; index++){
  var itmnam = output[index][1];
  var itmpic = output[index][2];
  var itmpr = output[index][3];
  var itmdisc = output[index][4];
  var itmdesc = output[index][5];
  var itmshp = output[index][6];
  var itmav = output[index][7];

  htmlstring +="<tr><th><img src = '../cartimg/'"+itmpic+"></th><td>"+itmnam+"</td><td>"+itmdisc+"</td><td>"+itmshp+"</td><td>QTY</td></tr>";


  }
  $('#cartbody').html(htmlstring);

  $("#shpcart").fadeIn();
  });


  });

and here is the PHP to fetch the order of the passed user id

   <?php 
   session_start();
   include('includes/config.php');
   $uId = $_SESSION["uId"];
   $prID = mysqli_real_escape_string($link,$_POST["proId"]);
    //$pQty = mysqli_real_escape_string($link,$_POST["prQTY"]);
   $pQty = 2;
   //$prID = 4;
   $sqlget= "SELECT * FROM vasplus_programming_blog_pagination WHERE id='".$prID."'";  // to find the selected item
   $resultget = mysqli_query($link, $sqlget);
   $itemget = mysqli_fetch_array($resultget);

    $itemId = $itemget[0];  // store the selected id in var
    $itemNm = $itemget[1]; 
    $ITimage = $itemget[2];
    $ITprice = $itemget[3]; 
    //$ITdiscount   =$itemget[4];
    $ITdescription  =$itemget[5];
    $ITshipping =$itemget[6];
//  $ITavailable = $itemget[7];
    $ITcontrycod =$itemget[8];
    $itemCol = $itemget[9]; // store the selected color in var
    $itemSiz = $itemget[10]; // store the selected size in var
    $ITqty =  $itemget[11];
// we need to search the temp table to see if the selected item is there 
 $sqlsrch= "SELECT * FROM  XXXXX WHERE product_id ='".$prID."' AND size = '".$itemSiz."' AND color = '".$itemCol."' AND user_id = '".$uId."' ";  // if the item is in the temp table or not
 $resultsrch = mysqli_query($link, $sqlsrch);
 $itemsrch = mysqli_fetch_array($resultsrch);
 echo $itemsrch;
 if (isset($itemsrch)){
    $adqty = $itemsrch[8];
    $adqty ++;
    $sqlupdate=" UPDATE XXXXXX SET qty='".$adqty."' WHERE product_id ='".$prID."' AND size = '".$itemSiz."' AND color = '".$itemCol."' AND user_id = '".$uId."'  "; // update the qty of theexisting items in temp table
    $resultupdate = mysqli_query($link, $sqlupdate);

     }else {
        echo " user id searching ";
 $sqlisUsr= "SELECT * FROM  XXXXXX WHERE user_id = '".$uId."' ";  // check if the user has any item in the temp table
 $resultisUsr = mysqli_query($link, $sqlisUsr);
 $isUsr = mysqli_fetch_array($resultisUsr);
        if (isset($isUsr)){  // if user has items in the cart

           $getOrdId = $isUsr[2]; // get the order ID 

           $sqladdN=" INSERT INTO  XXXXXXx (order_id, user_id, photo, express, qty, unit_price, country, color, size,  product_id) VALUES ('$getOrdId', '$uId' , '$ITimage' , '$ITshipping' , '$pQty', '$ITprice' , '$ITcontrycod' , '$itemCol' , '$itemSiz' , '$prID' )  "; // insert the item with the existing order ID
          $resultaddN = mysqli_query($link, $sqladdN);                      }else{  // user has no record in temp order
          echo " else is running " ;
            $ReNth = 0; 
            $oId = 1;
            while ($ReNth != 1){ 
               $sqlNewOiD= "SELECT * FROM  XXXXXX WHERE order_id = '".$oId."'";  // generate a new order ID
               $resultOsrch = mysqli_query($link, $sqlNewOiD);
               $oIdsrch = mysqli_fetch_array($resultOsrch);
               if (isset($oIdsrch)){
                   echo $oId++;

                              echo " order Id generated " .$oId;

               }else{ // insert the new item with the new order id in the temp table
                echo $oId."oId<br />" ;
                echo $uId."uId<br />" ;
                echo $ITimage."<br />" ;
                echo $ITshipping."<br />" ;
                echo $pQty."<br />" ;
                echo $ITprice."<br />" ;
                echo $ITcontrycod."<br />" ;
                echo $itemCol."<br />" ;
                echo $itemSiz."<br />" ;
                echo $prID."<br />" ;

                  $sqladdNOID =  " INSERT INTO  XXXXXx (order_id, user_id, photo, express, qty, unit_price, country, color, size,  product_id) VALUES ('$oId', '$uId' , '$ITimage' , '$ITshipping' , '$pQty', '$ITprice' , '$ITcontrycod' , '$itemCol' , '$itemSiz' , '$prID' ) ";
                 $resultaddNOID = mysqli_query($link, $sqladdNOID);
                 $ReNth = 1; // quit the searching for unique order id loop

                   }//end if
        }//end while


            }// end if 


         }// end if





    // pars json code for the cart

   $sql= "SELECT * FROM XXXXX  WHERE user_id = '".$uId."'" ;
   $result = mysqli_query($link, $sql);

 while($item = mysqli_fetch_array($result)){
    $array[] = $item;
 }

 echo json_encode($array);

?>

The problem is that the ajax is not able to retrieve the parsed array by the PHP. I see that the $uId being passed to the PHP and the PHP code works fine and $array has been fetched, but in return the ajax isn't able to read the $array .

please help me here

share|improve this question
    
I can't help you out with your problem, however I did find your question's title, misleading. Are you having problems with data, or a popup window not working? –  Fred -ii- Jun 15 '13 at 4:12
    
I have modified the title, It should be clear enough now :) –  Rhyme Free Jun 15 '13 at 4:30
    
I'm sure you'll get a better response that way. –  Fred -ii- Jun 15 '13 at 4:31
    
I may not know much about AJAX and JSON, some yes, however I know this much: The $uId, I don't see it anywhere else (just once), how is it being referenced? Also $link, only shows up once. Are they set inside your tempselector.php file? –  Fred -ii- Jun 15 '13 at 4:37
    
yes the are here: session_start(); include('includes/config.php'); $uId = $_SESSION["uId"]; im able to echo json_encode($array); it's been field successfully –  Rhyme Free Jun 15 '13 at 4:43

2 Answers 2

about the ajax method, you can try this code:

$.ajax({
  url:'tempselector.php',
  dataType:"json",
  type:"GET",
  data: {'proId': itemId  },
  error: function(XMLHttpRequest, textStatus, errorThrown) {
        $('body').append(XMLHttpRequest.responseText);
  },
  success:function(output){
        var htmlstring;
        for(var index=0;index<output.length; index++){
            var itmnam = output[index][1];
            var itmpic = output[index][2];
            var itmpr = output[index][3];
            var itmdisc = output[index][4];
            var itmdesc = output[index][5];
            var itmshp = output[index][6];
            var itmav = output[index][7];
            htmlstring +="<tr><th><img src = '../cartimg/'"+itmpic+"></th><td>"+itmnam+"</td><td>"+itmdisc+"</td><td>"+itmshp+"</td><td>QTY</td></tr>";
        }
        $('#cartbody').html(htmlstring);
        $("#shpcart").fadeIn();
  }
});
share|improve this answer
    
your code doesn't pass the proId to the PHP even –  Rhyme Free Jun 15 '13 at 4:27

if unnecesary output is present then json can not be parsed, that's the issue. problem has been solved

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.