Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I have a DataGridView in my .NET 4.5 WinForms app with two columns. One column is a regular textbox column and the other column is a DataGridViewComboBoxColumn that is a dropdown. I am trying to bind the columns to a BindingList of my Filter object and I would like everything inside of the enum FilterType to show up in the dropdown. Here's the code for my object and enum:

public class Filter
{
  public string keyword { get; set; }
  public FilterType type { get; set; }
}

public enum FilterType : int   //the strings should appear in the dropdown
{
  SESSION = 1,
  ORDER = 2,
  SHIPMENT = 3
}

I have manually created the columns in the VS 2012 designer where I changed the ColumnType, HeaderText, and DataPropertyName to keyword and type.
Using an answer I found here I have added these two lines of code to my form loading event:

colFilterType.DataSource = Enum.GetValues(typeof(FilterType));
colFilterType.ValueType = typeof(FilterType);

When I run the code I initially see a blank row. Whenever I click on the row, irregardless of which column is clicked, I get a pop-up error.

System.ArgumentException: DataGridViewComboBoxCell value is not valid. ... please handle the DataError event.

I can ignore it and type whatever text I want into the Keyword column, and the dropdown is magically filled in with the first value of the enum. However, if I even mouse-over the dropdown the error pops up again (please see the screenshot). I am not sure what causes the error and don't know where to set a breakpoint. I also do not know if I'm creating the problem by making parts of the DataGridView in the designer and modifying those in code. The designer does not let me set the DataSource the way I did in the code. It also contains a field ValueMember that I haven't seen used in code.

enter image description here

Although not ideal, I wouldn't mind catching the error and doing nothing with it since the dropdown seems to populate itself (and assuming all the data stays intact).

share|improve this question

1 Answer 1

up vote 1 down vote accepted

Your code works fine when adding the column at runtime. Sample code:

 DataGridViewComboBoxColumn colFilterType = new DataGridViewComboBoxColumn();
 colFilterType.HeaderText = "Name you want";
 colFilterType.DataSource = Enum.GetValues(typeof(FilterType));
 colFilterType.ValueType = typeof(FilterType);
 dataGridView1.Columns.Add(colFilterType);

Errors like the one you report are usually provoked while changing the type of a cell/column at runtime, because of the big number of events which are triggered every time a DataGridView is affected in any way: some of them expect the old type and find elements with the new one (e.g., expecting an int and finding a string).

share|improve this answer
    
This works, and thanks for the tip! However, whenever a new row is added the new dropdown is blank. I then need to click on the dropdown once to give it focus, another time to populate it, and once more to finally open it. Is this another quirk of the DataGridView or do you know if can I fix this somehow? –  valsidalv Dec 3 '13 at 19:43
    
@valsidalv You are welcome. The new row is blank because it does not select any item by default; just change that by forcing the selected item to be the one you want. –  varocarbas Dec 3 '13 at 19:50
    
I actually discovered an issue. The field colFilterType.DataPropertyName must be set to "type" in order for the changes in the DataGridView to be correctly updated in the bound List of Filters, otherwise they all show up as 0. Adding this binding brings up the error. –  valsidalv Dec 3 '13 at 20:52
    
@valsidalv You should understand that I cannot guess what you have in your code. If you create a new DataGridView, with no columns, and execute the code in my answer it would work fine without doing anything else. Your error (the one you complained about) is provoked by changing the type of the given column (you are setting a different type in Design View). Any other problem you can find would be provoked by your code. If you don't share it I wouldn't be able to help. Although you shouldn't say that it triggers an error otherwise, because it is not true. –  varocarbas Dec 3 '13 at 20:54
    
@valsidalv Also, in the future, if you don't mind, please, try to avoid the mark in/out issue, which I personally don't like too much. The mark tells which answer solves the problem; so wait until your problem is solved or ask as much as required (I understood that your code was working fine already but well...). I invite you to take a look at my profile to understand my opinion regarding this and similar issues. –  varocarbas Dec 3 '13 at 20:59

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.