47

I have a table in my database that I use to manage relationships across my application. it's pretty basic in it's nature - parentType,parentId, childType, childId... all as ints. I've done this setup before, but I did it with a switch/case setup when I had 6 different tables I was trying to link. Now I have 30 tables that I'm trying to do this with and I would like to be able to do this without having to write 30 case entries in my switch command.

Is there a way that I can make reference to a .Net class using a string? I know this isn't valid (because I've tried several variations of this):

Type t = Type.GetType("WebCore.Models.Page");
object page = new t();

I know how to get the Type of an object, but how do I use that on the fly to create a new object?

61

This link should help:
https://docs.microsoft.com/en-us/dotnet/api/system.activator.createinstance

Activator.CreateInstance will create an instance of the specified type.

You could wrap that in a generic method like this:

public T GetInstance<T>(string type)
{
    return (T)Activator.CreateInstance(Type.GetType(type));
}
| improve this answer | |
  • 2
    This will not work if the assembly containing the type is not already loaded into the AppDomain. – Andrew Hare Feb 23 '09 at 17:31
  • 4
    Also in order to call that method then the OP must have access to the type at compile time - the original question asked how to create an instance at execution time from a string. – Andrew Hare Feb 23 '09 at 17:35
  • i am merely basing my answer on the example provided in the question. – Jason Miesionczek Feb 23 '09 at 17:35
  • Ah you are right - OP does appear to have access to the type! My mistake - (-1) removed! – Andrew Hare Feb 23 '09 at 17:37
  • Your example would require knowledge of the type at compile time as well :) – Jason Miesionczek Feb 23 '09 at 17:39
13

If the type is known by the caller, there's a better, faster way than using Activator.CreateInstance: you can instead use a generic constraint on the method that specifies it has a default parameterless constructor.

Doing it this way is type-safe and doesn't require reflection.

T CreateType<T>() where T : new()
{
   return new T();
}
| improve this answer | |
  • 6
    It doesn't require reflection at the source code level - it uses Activator.CreateInstance in the generated IL though. – Jon Skeet Feb 23 '09 at 17:29
  • 1
    reflection is required because the OP specified using a string to identify the Type. – Jason Miesionczek Feb 23 '09 at 17:30
10
public static T GetInstance<T>(params object[] args)
{
     return (T)Activator.CreateInstance(typeof(T), args);
}

I would use Activator.CreateInstance() instead of casting, as the Activator has a constructor for generics.

| improve this answer | |
9

You want to use Activator.CreateInstance.

Here is an example of how it works:

using System;
using System.Runtime.Remoting;

class Program
{
    static void Main()
    {
        ObjectHandle o = Activator.CreateInstance("mscorlib.dll", "System.Int32");

        Int32 i = (Int32)o.Unwrap();
    }
}
| improve this answer | |
1

Assuming you have the following type:

public class Counter<T>
{
  public T Value { get; set; }
}

and have the assembly qualified name of the type, you can construct it in the following manner:

string typeName = typeof(Counter<>).AssemblyQualifiedName;
Type t = Type.GetType(typeName);

Counter<int> counter = 
  (Counter<int>)Activator.CreateInstance(
    t.MakeGenericType(typeof(int)));

counter.Value++;
Console.WriteLine(counter.Value);
| improve this answer | |
1

Here is a function I wrote that clones a record of type T, using reflection. This is a very simple implementation, I did not handle complex types etc.

 public static T Clone<T>(T original)
    {
        T newObject = (T)Activator.CreateInstance(original.GetType());

        foreach (var prop in original.GetType().GetProperties())
        {
            prop.SetValue(newObject, prop.GetValue(original));
        }

        return newObject;
    }

I hope this can help someone.

Assaf

| improve this answer | |

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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