2

I'm looking for a way to allow the constructor of this class take in an array of a generic type.

public class my
{

   public my(T[] arr)  // how resolve this
   {
      ...
   }
}
3

3 Answers 3

6

There are two ways for you to have a type array as a parameter in your constructor. One, you can add the parameter to the class like so...

public class my<T> {

   public my(T[] arr)
   {
        ...
   }

}

Or, your constructor can take in a Type Parameter, like so:

public class my {

   public <T> my(T[] arr)
   {
      ...
   }
}

You can initialize an object of the first class like so:

my<SomeClass> varName = new my<>(arrayOfSomeClass);

And you can initialize an object of the second class like so:

my varName = new <SomeClass>my();

Hope this helps!

1
  • 1
    Note that in the second case, they might as well just do public my(Object[] arr). Also, an explicit type witness is usually not needed when calling a generic method or constructor -- usually it is inferred; only when inference fails would you provide an explicit type witness.
    – newacct
    Apr 17, 2017 at 6:32
2

I can't think of any situation where I would want a generic constructor in a non-generic class. But hey, here you go:

You just add <T> to the constructor declaration:

public <T> my(T[] arr) {

}

Be careful when you call this constructor. Because it is generic, you can't use primitive types like int or char. You need to use their reference type counterparts, Integer and Character.

1

add <T> along with the name of the class my

public class my<T> {
    public my(T[] arr) {
    }
}

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