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I have a problem on displaying a component in Designer.

I identified the "bad" code that the designer does not like.

Now, the problem is that I can't "comment" it for design time only using preprocessor directives.

Now, I tried (for VB.NET) the following

#If Not Debug Then
Private Sub myWpfComponent_ItsEvent(sender, args) Handles myWpfComponent.ItsEvent
...
#End If 

this... worked, and now it is displayed without problems in the designer.

The problem now that I am afraid do not be able to debug properly this component.

So, I am searching for a workaround à la

#If Not DESIGN_TIME Then
#End If 

Is there something similar?

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1  
What is the problem code? –  Daniel A. White Jan 27 '11 at 20:51
    
@Daniel A. White: See the link on the "problem" word. Winforms Designer "don't like" handling events on a Wpf hosted Control. –  serhio Jan 27 '11 at 21:10
    
I don't understand why it's necessary to do this with a preprocessor directive. What's wrong with the DesignerProperties.GetIsInDesignMode method? –  Cody Gray Jan 29 '11 at 8:22

4 Answers 4

You cannot achieve this through the preprocessor. This is because you can run a debug executable outside of VS (try it, double click on the EXE generated by VS under debug mode).

Anyway, there is a runtime (not preprocessor based) property that might help:

if (System.ComponentModel.LicenseManager.UsageMode ==
    System.ComponentModel.LicenseUsageMode.Designtime)

These web pages will help and have other methods of checking for design mode at runtime:

http://msdn.microsoft.com/en-us/library/c58hb4bw(vs.71).aspx

http://weblogs.asp.net/fmarguerie/archive/2005/03/23/395658.aspx

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Based on OP's mention of "myWpfComponent_ItsEvent", this looks like a WPF question. The property you mentioned is for WinForms, not WPF. –  Joe White Jan 27 '11 at 21:02
    
The pages referenced have other ways of checking for design more, check the second link –  Gabriel Magana Jan 27 '11 at 21:03
    
I can use "if" only inside a method. Not outside it :) –  serhio Jan 27 '11 at 21:12
    
@serhio: Then you have a fundamental design problem. If you want to truly fix it, then change your design to something the compiler can see (we can't tell you how to do that without seeing all of your code). If you want to put a band aid over it and get it working for the time being, then use the DEBUG preprocessor symbol and then only distribute in release mode, or define your own preprocessor symbols and fix the symptom that way. –  Gabriel Magana Jan 27 '11 at 21:18
    
This property was very useful to me (for another reason) +1 –  IsaacBolinger Apr 28 '11 at 3:52

The IDE doesn't rebuild your code to show the designer. It uses the binary that you've already built. So a preprocessor directive won't help.

Since you mention myWpfComponent_ItsEvent, I assume this is a WPF question. In WPF, you detect design mode by using GetIsInDesignMode.

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yes. But take a look once again on my code. I need to "ignore" a entire method, or Handles in VB, or event attachement in C#. I can't use classic "if" outside a method (to ignore all the method) –  serhio Jan 27 '11 at 21:12
1  
Why do you need to do it outside the method? Just add if (DesignerProperties.IsInDesignMode(this)) return; as the first thing in your method. Voilà: your method no longer does anything in design mode. –  Joe White Jan 28 '11 at 14:27

Your problem is using a WPF control written in VB.NET in the WinForms designer. If the event handler is causing problems, you can use AddHandler instead of WithEvents and Handles to conditionalize your handler code. Once you are using AddHandler you can wrap adding the handler in a If using the methods described in @gmagana's answer.

See this answer for the difference between Handles and AddHandler:

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Say, the WPF control is written in C#, but the host control is in VB :). Anyway, I thought about this solution that seems to be the only to work. thanks. –  serhio Jan 28 '11 at 10:10

Use:

if (!DesignerProperties.GetIsInDesignMode(this))
{
   //Code to not execute in design mode
}

Note that "this" identifier can be any DependencyObject

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