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I would like help to try and debug my code which returning an object and not what I expected to see. I am a novice to jquery and javascript and whilst learning, I cannot seem to debug this problem. When I output the output in console, I get object but all the data is there. What is supposed to happen, is that the id is passed to actionrow and this does the ajax call to the db. I would be grateful if someone could check the code and point out my obvious error. The oblect is being output from console.log(datarow); in the code. Many thanks

I am using jqxWidgets for grid and data

// action row.
  $("#actionrowbutton").bind('click', function () {
   var selectedrowindex = $("#jqxgrid").jqxGrid('getselectedrowindex');
    var datarow = $("#jqxgrid").jqxGrid('getrowdata', selectedrowindex);
     var rowscount = $("#jqxgrid").jqxGrid('getdatainformation').rowscount;

    if (selectedrowindex >= 0 && selectedrowindex < rowscount) {
         var rows = $('#jqxgrid').jqxGrid('getrows', selectedrowindex);
         var id = $("#jqxgrid").jqxGrid('getrowid', selectedrowindex);
         //var service = datarow;
           console.log(datarow);

   $("#jqxgrid").jqxGrid('actionrow', id);

    //Open action dialog window
   $( "#actionWindow" ).dialog({
     //title: 'action error',
       resizable: false,
       modal: true,
       position: ['center', 'center'],
          buttons: {
             "Ok": function() {
              $(this).dialog("close");

    $('#jqxgrid').jqxGrid('refreshdata');
    },
              Cancel: function() {
    $( this ).dialog( "close" );

    //$('#jqxgrid').jqxGrid('refreshdata');
    }
    }
 });
    }
});


actionrow: function (actrowid) {
            // synchronize with the server - send action command
            var data = "action=true&id=" + actrowid;
           $.ajax({
        dataType: 'json',
        url: 'data.php',
        data: data,
        success: function (data, status, xhr) {
        // action command is executed.
        }
        });                         
        }
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1 Answer 1

up vote 1 down vote accepted

I'm not familiar with jqxGrid widget but I formatted your code to make it more readable.

   // action row.
      $("#actionrowbutton").bind('click', function () {
          var selectedrowindex = $("#jqxgrid").jqxGrid('getselectedrowindex');
          var datarow          = $("#jqxgrid").jqxGrid('getrowdata', selectedrowindex);
          var rowscount        = $("#jqxgrid").jqxGrid('getdatainformation').rowscount;

          if (selectedrowindex >= 0 && selectedrowindex < rowscount) {
              var rows = $('#jqxgrid').jqxGrid('getrows', selectedrowindex);
              var id   = $("#jqxgrid").jqxGrid('getrowid', selectedrowindex);
              //var service = datarow;
              console.log(datarow);

              $("#jqxgrid").jqxGrid('actionrow', id);

              //Open action dialog window
              $( "#actionWindow" ).dialog({
                  //title: 'action error',
                  resizable: false,
                  modal: true,
                  position: ['center', 'center'],
                  buttons: {
                      "Ok": function() {
                          $(this).dialog("close");
                          $('#jqxgrid').jqxGrid('refreshdata');
                      },
                      Cancel: function() {
                          $( this ).dialog( "close" );
                          //$('#jqxgrid').jqxGrid('refreshdata');
                      }
                  }
             });
        }
    });


    actionrow: function (actrowid) {
        // synchronize with the server - send action command
        var data = "action=true&id=" + actrowid;
        $.ajax({
            dataType: 'json',
            url: 'data.php',
            data: data,
            success: function (data, status, xhr) {
            // action command is executed.
            }
        });                         
    }

After looking it over again, I am left with a question. What is "actionrow", is it a function or a method of jqxgrid object? If it isn't it should be written like so:

function actionrow(actrowid) {
    // synchronize with the server - send action command
    var data = "action=true&id=" + actrowid;
    $.ajax({
        dataType: 'json',
        url: 'data.php',
        data: data,
        success: function (data, status, xhr) {
        // action command is executed.
        }
    });                         
}

And called like so in your if statement.

actionrow(id); //not $("#jqxgrid").jqxGrid('actionrow', id);
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Damian, sorry I have only been doing js for a short while and your answer althought I am sure correct, leaves me out of my depth. How would I adapt your code to mine. Thanks –  user1532468 Aug 2 '12 at 19:50
    
@user1532468 - No I'm sorry I should of read your post more clearly, din't see that you are using a widget so what I put is wrong. Let me take a look again and edit. –  Damian Aug 2 '12 at 20:16
    
Damian. actionrow contains the call too ajax. The line is jqxGrid parameter for taking say in this case, the id to pass to ajax. However, nothing is going through to data.php. Nothing is coming back through firebug nor any nor any echo commands etc. Thanks –  user1532468 Aug 3 '12 at 15:07
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