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I would like to write an extension to Visual Studio, which will enable me to generate a model for specified table.

I have used the following code to add MyCommand item into context menu of table in server explorer:

Commands2 commands = (Commands2)_applicationObject.Commands;
CommandBar menuBarCommandBar = ((CommandBars)_applicationObject.CommandBars)["Object Node"];

Command command = commands.AddNamedCommand2(_addInInstance, "MyCommand", "MyCommand", 
    "Executes the command for MyCommand", true, 59, ref contextGUIDS,
    (int)vsCommandStatus.vsCommandStatusSupported + (int)vsCommandStatus.vsCommandStatusEnabled,
    (int)vsCommandStyle.vsCommandStylePictAndText, vsCommandControlType.vsCommandControlTypeButton);
if ((command != null) && (menuBarCommandBar != null))
{
        command.AddControl(menuBarCommandBar, 1);
}

To get the name of the selected Table item:

string fileName = "Dafault.cs";
var serverExplorer = _applicationObject.ToolWindows.GetToolWindow("Server Explorer") as UIHierarchy;
if (serverExplorer != null)
{
    dynamic item = ((object[])serverExplorer.SelectedItems)[0];
    fileName = string.Format("{0}.cs", item.Name);
}

//...
// Generate model based on table from database 
//...

_applicationObject.ItemOperations.NewFile("General\\Text File", fileName, Constants.vsViewKindCode);

How can I get information about the database connection?

share|improve this question

Brad Larson, why my question was deleted?

Found the solution. Used this

public static IDbConnection GetConnection(DSRefNavigator navigator, out string type)
        {
            type = null;
            try
            {
                if (navigator != null)
                {
                    IVsDataConnectionsService dataConnectionsService =
                        (IVsDataConnectionsService) Package.GetGlobalService(typeof(IVsDataConnectionsService));
                    string itemName = navigator.GetConnectionName();

if (itemName != null) { int iConn; // = dataConnectionsService.GetConnectionIndex(itemName); DataViewHierarchyAccessor dataViewHierarchy = null; for(iConn = 0; iConn < dataConnectionsService.Count; iConn++) { DataViewHierarchyAccessor hierarchyAccessor = new DataViewHierarchyAccessor((IVsUIHierarchy) dataConnectionsService.GetConnectionHierarchy(iConn)); try { if (hierarchyAccessor.Connection.DisplayConnectionString == itemName) { dataViewHierarchy = hierarchyAccessor; break; } } catch { } } if (dataViewHierarchy != null) { DataConnection connection = dataViewHierarchy.Connection; if (connection != null && connection.ConnectionSupport.ProviderObject != null) { type = connection.ConnectionSupport.ProviderObject.GetType().FullName; return (IDbConnection) connection.ConnectionSupport.ProviderObject; } } } } } catch { } return null; }

share|improve this answer
    
why my question was deleted because you posted it as an answer ;-) – kleopatra Nov 11 '12 at 11:23
    
Thanks. It's clear but I've found no way to post comment for question (it only possible for answers). Must be I confused something. – nickolay.laptev Nov 12 '12 at 6:15
1  
the way to go is to ask your own question, possibly with a link to this (showing an effort of search - as you did - is always a good sign) You can both answer and comment your own questions, so might try to attract the former poster with an @username in a comment to your question. Never tried, though. Cheers, and welcome to SO :-) – kleopatra Nov 12 '12 at 10:28
    
Thanks! In both cases users will be attracted - I prefer the simpler way=) – nickolay.laptev Nov 12 '12 at 10:49
    
hmm ... what's the simpler way? As you experienced, "answers" that are questions (or anything else not actually answering) will be deleted rather soon after being posted ;-) – kleopatra Nov 12 '12 at 10:52

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