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I don't think I understand how varargs is handling objects being passed in:

public class NoSense {

public static void someMethod(String a, Object... things) {

    System.err.println("a->" + a);

    System.err.println(things.getClass().getName());

    for (Object object : things) {
        System.err.println("thing->" + object);
    }


}


public static void main(String[] args) {
    String[] x = new String[] { "what", "is", "up?" };
    NoSense.someMethod("1", x);
    NoSense.someMethod("2", x, "extra");
}

}

The results are

a->1
[Ljava.lang.String;
thing->what
thing->is
thing->up?
a->2
[Ljava.lang.Object;
thing->[Ljava.lang.String;@4d20a47e
thing->extra

Why would it treat the first set as a string array and the second as an object array reference?

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3 Answers 3

To maintain backwards compatibility, varargs is the last thing the compiler does to try to resolve a method call. Because the call NoSense.someMethod("1", x); can be resolved as someMethod(String a, Object[] things), it is resolved as such. It can do this because array types are covariant.

The call NoSense.someMethod("2", x, "extra"); however, can not be resolved as someMethod(String a, Object[] things), and therefore uses varargs to create a new Object[]{x, "extra"}, which is then passed as the things parameter.

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Because a String[] reference is implicitly convertible to Object[] via array covariance. The compiler doesn't need to use varargs, so it doesn't.

To force it to use varargs, we can just cast to Object:

    NoSense.someMethod("1", (Object) x);

Now Object isn't implicitly convertible to Object[], so the compiler will wrap it in an array.

From section 15.12.4.2 of the JLS:

If m is being invoked with k != n actual argument expressions, or, if m is being invoked with k == n actual argument expressions and the type of the kth argument expression is not assignment compatible with T[], then the argument list (e1, ... , en-1, en, ...ek) is evaluated as if it were written as (e1, ..., en-1, new T[]{en, ..., ek}).

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Because all parameters after the first are considered the values to be stored in the varargs array. However, Java treats the case where only an array is passed as a special case and simply uses that as the varargs value.

Case 1: Only one value is passed to a varargs of Object[]. This value is String[]. Java treats it as a special case and passes on the array directly.

Case 2: Two values are passed to the varargs of Object[]. The first value is of type String[] and the second is of type String. Since more than one value is being passed this is not a special case. So, the vargargs parameter is an Object[] (just as you defined it) with the first element being the passed string array and the second element being the string.

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