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Ok I have a generic interface

public IConfigurationValidator<T>
{
 void Validate();
}

a class that implements it:

public class SMTPServerValidator : IConfigurationValidator<string>
    {


        public void Validate(string value)
        {
            if (string.IsNullOrEmpty(value))
            {
                throw new Exception("Value cannot be null or empty");
            }
        }


    }

I now want to use reflection to create an instance of SMTPServerValidator, because I know the AssemblyQualifiedName of the type.

I was thinking to use Activator.CreateInstance and cast that to the interface... like this:

IConfigurationValidator<T> validator = (IConfigurationValidator<T>)Activator.CreateInstance(typeof(SMTPServerValidator));

I dont know what T is....how do I use reflection to create an instance of this class?

There is another class that has that I am dealing with that I left out:

public class ConfigurationSetting<T>
    {

        IConfigurationValidator<T> m_Validator;

        public ConfigurationSetting(IConfigurationValidator<T> validator)
        {
            m_Validator = validator;
        }

        public void Validate(T value)
        {
            m_Validator.Validate(value);
        }
    }

In the end I am trying to create ConfigurationSettings and need to pass in the appropriate validator based on the parameter.

share|improve this question
    
Shouldn't the Validate method impl have no parameters? – Samuel Carrijo Aug 11 '09 at 21:59
    
I have changed a lot of stuff around...I realized I had other problems... – CSharpAtl Aug 12 '09 at 3:31
up vote 0 down vote accepted

Creating the instance of the class is easy - you've done that already with Activator.CreateInstance.

If you don't know what T is, how are you hoping to use this as an implementation of the interface?

I assume that in reality, the interface actually refers to T in the members. If it doesn't - or if you don't need those bits - then make it non-generic, or create a non-generic base interface which the base interface extends.

share|improve this answer
    
I have the name of the concrete type (SMTPServerValidator) and want to create an instance but want to use it through the interface. – CSharpAtl Aug 12 '09 at 2:49
    
It is possible to have a different validator class that implements the interface but with T as an int. I am willing to go a completely different direction if you have ideas.... – CSharpAtl Aug 12 '09 at 3:00
    
How are you going to use the interface if you don't know what T is? What could you validate without knowing the type? – Jon Skeet Aug 12 '09 at 5:17
    
Yeah...I got a little higher in the logic, and what I was trying to do all fell apart.... – CSharpAtl Aug 12 '09 at 13:06

In the example given, T is string. Is this what you mean?

share|improve this answer
    
All I know going in is that I have a type name, and I know it implements the generic interface, so I want to cast it to the interface from Activator.CreateInstance(), but to cast I need to know what T is but I dont know what it is....since this could be some other class and T could be an int....or any other object type – CSharpAtl Aug 12 '09 at 2:52

The class you want to cast to is IConfigurationValidator<string>, as the SMTPServerValidator implements IConfigurationValidator<T>, specifying T as string

share|improve this answer
    
but it could be a different class and T could be an int...but I want to still cast to the interface...so could implement IConfigurationValidator<int> – CSharpAtl Aug 12 '09 at 2:54
    
Why could it be in IConfigurationValidator<int>? SMTPServerValidator, which is what you're creating an instance of, implements IConfigurationValidator<string> – thecoop Aug 12 '09 at 9:40

How about

Type lConfigValidatorType = typeof(IConfigurationValidator<>)
Type lSomeOtherType = typeof(T)
Type lConstructedType = lConfigValidatorType.MakeGenericType(lSomeOtherType);
var lObject = Activator.CreateInstance(lConstructedType)
share|improve this answer
    
You cant create an instance of an Interface. – JCoder23 Jun 18 '13 at 12:03

I realized at a higher layer I do have the type and can create it the way I was initially intending to do.

share|improve this answer

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