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I have a jqgrid with generated columns like this (in a ASP.NET MVC 3 project). They use inline editing :

@foreach (var template in Model.TemplateList.Where(m => m.Type == 2))
{
<text>
  { name: 'A'+'@template.ID', index: 'A'+'@template.ID', width: 40, align: 'left',
       editable: true, 
       editoptions: { dataEvents: [{ type: 'keyup', fn: function (e) {
       var $tr = $(e.target).closest("tr.jqgrow"), rowId = $tr.attr("id");
       var nextRow = parseInt(rowId, 10) + 1;
       var total = parseInt(e.target.value, 10);
       if (isNaN(total)) {
           total = 0;
       }
       ChangeValue('A'+'@template.ID', total, $tr);
   }}]}},
 </text>
 }

The columns are generated and work well, until I try to save them. I'm trying to give the value to the controller, but it doesn't seem to work. I already tried to give the same name to all column to get them in an array :

... name: 'templateColumns', index: 'A'+'@template.ID', width: 40, align: 'left', ...

and in the controller :

public ActionResult SaveRow(string[] templateColumns)

but it didn't work (I only got the value of the last column)

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can you tell me how you are saving the row, are you sending some ajax request or using saveRow or EditRow method? –  Piyush Sardana Aug 2 '12 at 14:12
    
from your code its not clear how are you saving the Rows, can you put some more code about how you are saving the rows –  Piyush Sardana Aug 2 '12 at 14:13
    
trirand.com/jqgridwiki/doku.php?id=wiki:colmodel_options read this your name should be unique for all columns. –  Piyush Sardana Aug 2 '12 at 14:19

1 Answer 1

up vote 1 down vote accepted

I think you can not have same names for all the columns, check the link i gave u in comments. Now if you give one column name as ''A'+'@template.ID'' and lets suppose it is getting rendered like A1, A2 then in your controller you should accept something like this only.

public ActionResult SaveRow(string A1, string A2)

Your column name and parameters in controller should be same.

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