Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

Instantiating an unregistered service with known services (injecting them via ctr).

I want to avoid container pollution.

share|improve this question
1  
Hi Paul - a few more details would help clarify what you mean by this. Cheers! – Nicholas Blumhardt Feb 19 '11 at 2:06
up vote 4 down vote accepted

Here is another way to resolve unregistered concrete types from container. Note that all autofac constructor finding and selecting logic, all registration event handlers remain in force.

First, you define this method:

    public static object ResolveUnregistered(this IComponentContext context, Type serviceType, IEnumerable<Parameter> parameters)
    {
        var scope = context.Resolve<ILifetimeScope>();
        using (var innerScope = scope.BeginLifetimeScope(b => b.RegisterType(serviceType)))
        {
            IComponentRegistration reg;
            innerScope.ComponentRegistry.TryGetRegistration(new TypedService(serviceType), out reg);

            return context.ResolveComponent(reg, parameters);
        }
    }

The idea is that you get component registration from derived context and resolve it in the current context. Then you can create some handy overloads:

    public static object ResolveUnregistered(this IComponentContext context, Type serviceType)
    {
        return ResolveUnregistered(context, serviceType, Enumerable.Empty<Parameter>());
    }

    public static object ResolveUnregistered(this IComponentContext context, Type serviceType, params Parameter[] parameters)
    {
        return ResolveUnregistered(context, serviceType, (IEnumerable<Parameter>)parameters);
    }

    public static TService ResolveUnregistered<TService>(this IComponentContext context)
    {
        return (TService)ResolveUnregistered(context, typeof(TService), Enumerable.Empty<Parameter>());
    }

    public static TService ResolveUnregistered<TService>(this IComponentContext context, params Parameter[] parameters)
    {
        return (TService)ResolveUnregistered(context, typeof(TService), (IEnumerable<Parameter>)parameters);
    }
share|improve this answer
    
I wonder what would happen if the serviceType implements IDisposable and the innerScope gets disposed... – Wouter Huysentruit Dec 9 '15 at 13:15
    
@WouterHuysentruit innerScope only disposes service instances resolved in that scope, but in this case service gets resolved from the parent context scope. – Ilya Dec 9 '15 at 16:36
    
However this solution may lead to some leaks if the parent ComponentRegistry would somehow hold reference to the type registration made in the child registry. – Ilya Dec 9 '15 at 16:53

I found a solution that required some custom code. Somethings are specific to my app, but I think you can get the picture.

Resolve(parameter.ParameterType) would be a call to your container.

public object ResolveUnregistered(Type type)
{
    var constructors = type.GetConstructors();
    foreach (var constructor in constructors)
    {
        try
        {
            var parameters = constructor.GetParameters();
            var parameterInstances = new List<object>();
            foreach (var parameter in parameters)
            {
                var service = Resolve(parameter.ParameterType);
                if (service == null) throw new NopException("Unkown dependency");
                parameterInstances.Add(service);
            }
            return Activator.CreateInstance(type, parameterInstances.ToArray());
        }
        catch (NopException)
        {

        }
    }
    throw new NopException("No contructor was found that had all the dependencies satisfied.");
}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.