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We have XML code stored in a single relational database field to get around the Entity / Attribute / Value database issues, however I don't want this to ruin my Domain Modeling, DTO, and Repository sunshine. I cannot get around the EAV/CR content, but I can choose how to store it. Question is how would I use it?

How could I turn the XML metadata in to a class / object at run time in C#?

For example:

XML would describe that we have a food recipe which has various attributes, but usually similar, and one or more attributes about making the food. The food itself can literally be anything and have any type of crazy preparation. All attributes are searched and may link to existing nutritional information.

// <-- [Model validation annotation goes here for MVC2]
public class Pizza {
     public string kind  {get; set;}
     public string shape {get; set;}
     public string city  {get; set;}
     ...
}

and in the ActionMethod:

makePizzaActionMethod (Pizza myPizza) {
    if (myPizza.isValid() ) {  // this is probably ModelState.isValid()...
        myRecipeRepository.Save( myPizza);
        return View("Saved");
    }
    else
        return View();
}
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Assuming that the Repository wouldn't be Pizza specific. –  Dr. Zim Feb 9 '10 at 3:22
    
Does the XML have a schema? Then you can use the schema to generate code. If not, then you need a dynamic language, not C#. –  John Saunders Feb 9 '10 at 3:23
    
We can have a schema for the XML. The class of recipe actually doesn't change once it exists, but new recipe classes can be created on the fly. I would say about 15-20 recipe classes per customer type, and we have many different kinds of customers, all of whom enjoy eating. –  Dr. Zim Feb 9 '10 at 3:26
1  
I don't understand the problem. What sort of object do you want to have at the end? Can't you just load all the XML into a map/tree structure? Or do you want it to be typed classes? If it needs to be typed classes, obviously you'll just need to load that XML into a type-structure that you've already defined. This seems incredibly trivial. Can you clarify a bit? –  Noon Silk Feb 9 '10 at 3:27
    
I agree with Silky, either use a generic list/map or if (as you say) the class of recipe wont change, generate the classes and deserialize. Sounds like you might be over-engineeering. –  Russell Feb 9 '10 at 3:29

3 Answers 3

up vote 8 down vote accepted

Is ExpandoObject what you're looking for?

Represents an object whose members can be dynamically added and removed at run time.

share|improve this answer
    
Wow. Now that is a good application of knowledge to a particular problem. I am going to let the question ride for a bit, but this answer is very nice. –  Dr. Zim Feb 9 '10 at 3:35
    
I find this very disturbing, personally. But I suppose this isn't the place to debate the merits of this "thing". –  Noon Silk Feb 9 '10 at 3:37
    
Welcome to the brave new world of dynamic c#. –  user24359 Feb 9 '10 at 5:18

Check out the System.Reflection.Emit namespace.

You Start with an AssemblyBuilder class from AppDomain.CurrentDomain

AssemblyBuilder dynAssembly = AppDomain.CurrentDomain.DefineDynamicAssembly("dynamic.dll",
                                                                            AssemblyBuilderAccess.RunAndSave);

From there you have to build a ModuleBuilder, from which you can build a TypeBuilder.

Check out the AssmblyBuilder reference for an example.

You can save the generated assembly, or you can just use it in memory. Be warned though, that you will get heavy into reflection to use these dynamic types.

EDIT:

Below is an example of how to iterate through the properties:

AssemblyName aName = new AssemblyName("dynamic");
AssemblyBuilder ab = AppDomain.CurrentDomain.DefineDynamicAssembly(aName, AssemblyBuilderAccess.RunAndSave);
ModuleBuilder mb = ab.DefineDynamicModule("dynamic.dll");
TypeBuilder tb = mb.DefineType("Pizza");
//Define your type here based on the info in your xml
Type theType = tb.CreateType();

//instanciate your object
ConstructorInfo ctor = theType.GetConstructor(Type.EmptyTypes);
object inst = ctor.Invoke(new object[]{});

PropertyInfo[] pList = theType.GetProperties(BindingFlags.DeclaredOnly);
//iterate through all the properties of the instance 'inst' of your new Type
foreach(PropertyInfo pi in pList)
    Console.WriteLine(pi.GetValue(inst, null));
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1  
I still don't see how such a class could be used, since code does not know about the additional properties. –  John Saunders Feb 9 '10 at 3:53
    
You can iterate through the Properties of the new type using the associated Type class I will add an example above. –  Grant Back Feb 9 '10 at 4:08

EDIT: This does not address the original poster's question.

I think that this may be possible using XAML. I would generate a XAML file, and then load it dynamically using XamlReader.Load() create an object at run-time with the properties I want.

There is an interesting article to read on the subject of XAML as an object serialization framework here. For more information on XAML namespaces see here.

share|improve this answer
2  
@cdiggins: -1: I can't imagine how XAML will help. I'll remove the downvote if you assist my imagination. –  John Saunders Feb 9 '10 at 3:25
    
Added some clarification. You can create dynamic objects with XamlReader.Load(), isn't this going to work Dr. Zim's case? Or am I missing something? –  cdiggins Feb 9 '10 at 3:46
    
Can you give an example? Because I don't believe you. –  John Saunders Feb 9 '10 at 3:52
    
Button readerLoadButton = (Button)XamlReader.Load(xmlReader); It does create objects from xml, however it may be limited to the Xaml namespace though. –  Dr. Zim Feb 9 '10 at 4:13
2  
There still needs to be a class defined for the XamlReader to materialise -- e.g. a Pizza class. XAML won't create the class for you, but it will create instances of the class from XML once the class exists. And I think Dr Zim's problem is more around the creation of the class than around the reading in from XML. –  itowlson Feb 9 '10 at 4:14

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