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The trusty old preprocessor directive in C# appear to work great when I write:

#if DEBUG
...
(Some code)
...
#endif

However, attributes enclosed in the conditional block appear to continue to get processed and I get errors indicating such. For instance, surrounding an [AssemblyVersion(...)] within the conditional block appears to have no affect.

I can go into the details as to why we want to conditionally ignore the [AssemblyVersion(..)], but it's irrelevant. Any ideas?

Thanks! - Sean

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For an example of this behavior, define two AssemblyVersion attributes, and place one inside the conditional "#if DEBUG" block. –  CleverCoder Jun 11 '09 at 14:31
    
It's called a preprocessor directive and in C# it's actually handled by the compiler. –  VVS Jun 11 '09 at 14:33
    
If you have two AssemblyVersion attributes with one inside the "#if DEBUG" block, I hope that the other one sits between "#else" and "#endif"? –  Fredrik Mörk Jun 11 '09 at 14:36
    
It's added dynamically at build time in release configuration by an automated build process. BTW, this is VS 2008. The problem doesn't happen with another project I created from scratch. This is bizarre. –  CleverCoder Jun 11 '09 at 14:54
    
Can you post an example of how the generated output looks like? –  Fredrik Mörk Jun 11 '09 at 18:33

5 Answers 5

This works correctly for me. In my AssemblyInfo.cs file, I have the following:

#if DEBUG
[assembly: AssemblyConfiguration("Debug")]
#else
[assembly: AssemblyConfiguration("Release")]
#endif

Looking at the compiled assembly in Reflector, I see the correct attributes.

You should make sure that your DEBUG symbol is only defined in the project properties and not any where else in your code as an actual #define DEBUG instruction. If you have it defined directly in code it will only be in effect for that file, not the entire project. Defining it in the project properties will cause it be in effect for the entire project.

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This is strange. With a simple console app, it works properly (selecting release mode, it DOES ignore the attribute within the #if DEBUG block!).. Doing more research... The project in question is a class library. Gonna figure this out... –  CleverCoder Jun 11 '09 at 14:53
    
THe project that I pulled the example code from is also a class library so that should have no effect on the behavior. I have seen circumstances where #if DEBUG doesn't work but #if Debug does, mostly due to things being defined incorrectly. Check your project properties and make sure you don't have any #define directives. –  Scott Dorman Jun 11 '09 at 17:26
up vote 1 down vote accepted

I figured it out! There was a key piece of information I neglected to mention: that it was a Workflow project (Guid {14822709-B5A1-4724-98CA-57A101D1B079}). It turns out that there is a bug with the workflow project type, specifically the Workflow.Targets file that is included in the build file.

It appears that the preprocessor acts as though the DEBUG constant is defined. You can repro the issue by creating a workflow project and adding this to the AssemblyInfo file:

#if DEBUG
[assembly: AssemblyFileVersion("1.0.0.0")]
#endif

Then try a release build. I filed this with MS: https://connect.microsoft.com/VisualStudio/feedback/ViewFeedback.aspx?FeedbackID=466440

Best regards! -Sean

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1  
You should have edited the original and added this information. Technically, this is not the correct answer because the question was asked incorrectly :) –  RKitson Nov 12 '09 at 3:46

Are you sure you're not building in release mode?

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It is release mode. In this case, in the release configuration, the block within "#if DEBUG" is still being processed. –  CleverCoder Jun 11 '09 at 14:32

simpler - you can tag your debug function(s) with the metadata tag [Conditional]:

#define DEBUG1

...

public static void PrintText1(string txt)   {
    Console.Write("This is PrintText2\n");
}

[Conditional("DEBUG1")]
public static void PrintText2(string txt)   {
    Console.Write("This is PrintText2\n");
}

[STAThread]
static void Main(string[] args)    {
    PrintText1("This is the unconditional method");
    PrintText2("This function will be called only if 'DEBUG1' is defined");
}

try it!

Also, what I noticed is that #define only exists within the context of the file it is defined, ex calling PrintText2 from another file, where debug is not defined, will not execute. This also works the other way around:

[Conditional("DEBUG1")]
public static void ConditionedPrint(string txt) {
    Console.Write("This is PrintText2\n");
}

public static void UnconditionedPrint(string txt)     {
    ConditionedFunc(txt);
}

UnconditionedFunc will print "This is PrintText2\n" iff (if and only if) #define DEBUG1 was defined in this file, regardless of the other files.

There is also System.Diagnostics.Debug, I'm not sure what it does though.

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That works for things that accept an attribute, but the attribute itself needs to be conditional.. It IS working for a simple project, so it's something project related.. Thanks for the tip! That is a neat new attribute. –  CleverCoder Jun 11 '09 at 15:01
    
oh sorry, I didn't notice you wanted metadata tags also conditioned. What I can tell you is that #define in C# only exists in the context of the same file, so that might be the cause. VS should mark out the lines that are not going to be compiled, so you should notice a visual difference when it's working like you want it to. –  Nefzen Jun 11 '09 at 15:21
    
The Conditional attribute will only work for void functions. –  Scott Dorman Jun 11 '09 at 17:24
    
I suppose that only makes sense –  Nefzen Jun 11 '09 at 17:36

To follow up @yoyoyoyosef comment answer, you need to check the Properties page of your Project.

You will see in the Build menu, under the General heading, make sure the "Define DEBUG constant" checkbox is not checked.

This value changes based upon the "Configuration" choice (dropdown) at the top of the Build menu.

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