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13  1.1.16  Failed   
14  1.1.17  Failed
15  1.1.18  Failed
16  1.1.19  Passed   
2   1.1.2   Failed   
17  1.1.20  Failed
18  1.1.21  Passed   
19  1.1.22  Passed   

I have 2 queries.

1. I have sorting problem in above jqgrid table. While I sort the 3rd column which is a text, it's not sorting properly. the sort is based on the 2nd field which is also not proper.

2. How to change the color if the value is "Failed".

$("#grid").jqGrid({
    datastr: mydata,
    datatype: 'jsonstring',
    width: 800,
    colNames:['Slno','Item','Result', 'Desc'],
    colModel:[
    {name:'slno', index:'slno', key: true, width:50, sorttype: 'int'},
    {name:'item', index:'item', width:50, sortable: false},
    {name:'result', index:'item', width:30, sorttype: 'text'},
    {name:'desc', index:'desc', width:100}
    ],
    pager: '#pager',
    viewrecords: true,
    sortorder: "asc",
    caption:"jqGrid Example",
    jsonReader: {
        root: "rows",
        repeatitems: false,
        id: "0"
    },
    rowNum: 30
});
share|improve this question
    
You should post the JavaScript code which you use. –  Oleg Mar 21 '13 at 18:52
    
added java script. @Oleg –  rajkumar600003 Mar 21 '13 at 19:30
    
To fix sorting you need either remove index:'item' from the definition of 'result' or change it to index:'result'. I recommend you remove all index properties. To set color of 'Failed' cell you can use cellattr (see the answer) or use rowattr to set color of the whole row (see the answer) –  Oleg Mar 22 '13 at 5:52

2 Answers 2

You have wrong index for result

change

 {name:'result', index:'item', width:30, sorttype: 'text'},

to

 {name:'result', index:'result', width:30, sorttype: 'text'},

Then to change color See this answer

Or you can also use formatter like given below

 {name:'result', index:'result', width:30, sorttype: 'text',formatter:passedOrFailedFormatter},


    function passedOrFailedFormatter(cellvalue, options, rowObject) {

        if (cellvalue=="Passed") {
            return "<font color=#008000> "+ cellvalue +" </font>";
        } else {
            return "<font color=#FF0000> "+ cellvalue +" </font>";
        }

    }
share|improve this answer
    
The idea of the answer is correct. Usage of wrong index is the main problem. On the other side I would don't recommend ever use <font> which is deprecated in HTML 4.01 and is not included in HTML5. Instead of that one can use CSS style color assigned directly to the cell (<td>). style is attribute of cell and can be used with every formatter. So it's better to use rowattr (see here) instead of custom formatter. In the way one could use formatter: "data" for example and do change the color. –  Oleg Mar 24 '13 at 12:20
    
@Oleg thanks for the suggestion on <font> tag and also usage of rowattr –  Kris Mar 25 '13 at 3:41
    
You are welcome! –  Oleg Mar 25 '13 at 7:56

Answer for your second question.(Assuming that you need to change the color of the row)

$("#grid").jqGrid({
    datastr: mydata,
    datatype: 'jsonstring',
    width: 800,
    colNames:['Slno','Item','Result', 'Desc'],
    colModel:[
    {name:'slno', index:'slno', key: true, width:50, sorttype: 'int'},
    {name:'item', index:'item', width:50, sortable: false},
    {name:'result', index:'result', width:30, sorttype: 'text'},
    {name:'desc', index:'desc', width:100}
    ],
    pager: '#pager',
    viewrecords: true,
    sortorder: "asc",
    caption:"jqGrid Example",
    jsonReader: {
        root: "rows",
        repeatitems: false,
        id: "0"
    },

afterInsertRow: function ( rowid, rowdata )
                    {
                        if ( ( rowdata.result) == 'Failed' )
                        {
                            $( this ).jqGrid( 'setRowData', rowid, false, { background: '#EBADAD'} );//
                        },
    rowNum: 30
});

And if you need to change the color only for that particular cell, replace with this:

afterInsertRow: function ( rowid, rowdata )
                        {
                            if ( ( rowdata.result) == 'Failed' )
                            {
                               $(this).jqGrid('setCell', rowid, "result", "", { 'background-color': '#EBADAD'
                            });
                            },
        rowNum: 30
    });
share|improve this answer
    
Thank you. I'll try your solution. –  rajkumar600003 Mar 26 '13 at 14:22

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