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I want the value of a field in a row that the user Clicked. i Write this code but this code Is wrong.

var firstButtonColumnIndex = 0;
    grid = $('#list'), firstButtonColumnIndex, buttonNames = {};

grid.jqGrid({
    url: 'jQGridHandler.ashx',
    datatype: 'local',
    direction: "rtl",
    datatype: 'json',
    height: 250,
    colNames: ['', ''],
    colModel: [
        { name: 'WorkOrderNo', width: 100, sortable: true },
        { name: 'AssetNo', width: 150, sortable: true },
        { name: 'WorkDescription', width: 400, sortable: true },
        { name: 'WorkOrderDate', width: 100, sortable: true },
        { name: 'WorkOrderTime', width: 100, sortable: true },
        { name: 'Remark', width: 260, sortable: true },
        { name: 'del', width: 20, sortable: false, search: false,
            formatter: function () {
                return "<span class='ui-icon ui-icon-trash'></span>"
            }
        },
        { name: 'details', width: 20, sortable: false, search: false,
            formatter: function () {
                return "<span class='ui-icon ui-icon-document'></span>"
            }
        }
    ],
    gridview: true,
    rowNum: 10,
    rowList: [10, 20, 30],
    pager: '#pager',
    //  sortname: 'WorkOrderNo',
    viewrecords: true,
    sortorder: 'asc',
    rownumbers: true,
    beforeSelectRow: function (rowid, e) {
        var iCol = $.jgrid.getCellIndex(e.target);
        if (iCol >= 7) {
            alert("rowid=" + rowid + "\nButton name: " + buttonNames[iCol]);
        }
        // prevent row selection if one click on the button
        return (iCol >= firstButtonColumnIndex) ? false : true;
    }
});

buttonNames[7] = 'Remove';
buttonNames[8] = 'Details';
grid.jqGrid('navGrid', '#pager', { add: false, edit: false, del: false }, {}, {},
    {}, { multipleSearch: true, overlay: false, width: 460 });

but in beforeSelectRow event rowid Always 0. i want return WorkOrderNo row clicked.

plese help me. thanks all

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1 Answer 1

up vote 1 down vote accepted

First of all the code which you posted contains many small errors. So it can't work. If you modify your original code for the posting on the stackoverflow, please be more carefully in the modifications.

For example:

  • colNames contains only two elements, but colModel - 8 elements. So one receive an error about the different length of the arrays and the code don't work more;
  • You define datatype option twice: one with the value 'local' and one more time with the value 'json';
  • You should use comma (',') instead of semicolon (';') as the end of firstButtonColumnIndex = 0 (see the first line). The current code use undefined grid and interpret it as the global variable.

To your main question:

You used "Get Index Row Clicked in jqGrid" as the title of your question, but you wrote in the text of your question that you have rowid always 0 and not rowIndex. To get the rowIndex you can modify the code of beforeSelectRow to the following:

beforeSelectRow: function (rowid, e) {
    var iCol = $.jgrid.getCellIndex(e.target);
    if (iCol >= 7) {
        alert("rowid=" + rowid +
              "\nrowIndex=" + $(e.target).closest("tr.jqgrow")[0].rowIndex +
              "\nButton name: " + buttonNames[iCol]);
    }
    // prevent row selection if one click on the button
    return (iCol >= firstButtonColumnIndex) ? false : true;
}

The information that you have always rowid as 0 follows to assumption that you fill wrong id in the JSON which produce the server code under 'jQGridHandler.ashx'. The id have to have unique values over the page. You can use Developer Tools to examine the id attribute of the rows (the ids of <tr> elements of the grid) or to use Fiddler of Firebug to catch the JSON which will be returned from the server. If you would have problem to localize the error you should append your question with the JSON data.

share|improve this answer
    
Thanks for the help,but in this Jqgrid search isn't work.What I do not know why, plese help me. thanks –  Pouya Feb 13 '12 at 19:35
    
@mohsen: You are welcome! About your existing problem you should specify the problem more exactly. If you use datatype: 'json' then the server is responsible for the filtering (searching) of the data. The server receive the filters parameter (see here for the format). So the server should analyse the filters parameter and implement the searching. –  Oleg Feb 13 '12 at 19:54
    
:Sorry ,Do a search on the server side, or ClientSide???? I got all my Czech and all was right. I do not know how to solve. –  Pouya Feb 13 '12 at 20:05
    
@mohsen: If you use datatype: 'json' the server side is responsible to paging, sorting and filtering. The server construct WHERE part of the SELECT to the database based on the filters parameter. If you do want that client side implement paging and filtering the server should return the whole data independent on the values of rows and page input parameters. You should add loadonce: true to the jqGrid and be careful in defining sorttype column option. If you don't define any sorttype property the grid will interpret the data as "text". –  Oleg Feb 13 '12 at 20:15
    
i Want Implement Search in ClientSide. –  Pouya Feb 13 '12 at 20:21

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