8

I'm trying to write a Map builder. One of the constructors will allow the client to specify the type of Map they wish to build

public class MapBuilder<K, V> {

    private Map<K, V> map;

    /**
     * Create a Map builder
     * @param mapType the type of Map to build. This type must support a default constructor
     * @throws Exception
     */
    public MapBuilder(Class<? extends Map<K, V>> mapType) throws Exception {
        map = mapType.newInstance();
    }

    // remaining implementation omitted
}

The intent is that it should be possible to construct instances of the builder with:

MapBuilder<Integer, String> builder = new MapBuilder<Integer, String>(LinkedHashMap.class);

or

MapBuilder<Integer, String> builder = new MapBuilder<Integer, String>(HashMap.class);

It seems that the type signature of the constructor argument doesn't currently support this, because the line above causes a "Cannot resolve constructor" compilation error.

How can I change my constructor so that it accepts classes that implement Map only?

  • 4
    Why not use a Supplier instead? That way, the users can pass LinkedHashMap::new and not be bothered with reflection. – RealSkeptic Feb 18 at 11:04
10

Use a Supplier instead of a Class:

public MapBuilder(Supplier<? extends Map<K, V>> supplier) {
    map = supplier.get();
}

Which then can be called like this:

MapBuilder<Integer, Integer> builder = new MapBuilder<>(LinkedHashMap::new);

This is also safer, because a Class<Map> could have no default constructor, which would throw an error (which is not very responsive code)

  • 1
    You can get rid of the wildcard altogether: public MapBuilder(Supplier<Map<K, V>> supplier) – ernest_k Feb 18 at 11:08
  • 1
    @ernest_k you can't. Without the wildcard it would fail if you provide an instance of for example class Sup implements Supplier<HashMap<Integer, Integer>>. It's a very rare case, but it can happen – Lino Feb 18 at 11:11
  • 1
    Granted. It would still fail even if you use a lambda (Supplier<HashMap<String, Integer>> supp = HashMap::new; MapBuilder<String, Integer> mb = new MapBuilder<String, Integer>(supp); - but this is something I'd personally be happy to have no support for (that's an opinion). This is a good answer, btw. – ernest_k Feb 18 at 11:19
  • 2
    @ernest_k Thank you :), I agree though that in a small project it would not make a difference (using the wildcard or not) but when writing an API which is used across different projects it is the way to go and makes the lifes of people using your API a lot easier – Lino Feb 18 at 11:48
2

The following will work:

public MapBuilder(Class<? extends Map> mapType) throws Exception {
    map = mapType.newInstance();
}
  • 1
    Will produce an unchecked warning though – Lino Feb 18 at 11:07
2

The problem is that LinkedHashMap.class is

Class<LinkedHashMap>

and not something like

Class<LinkedHashMap<Integer, String>>

These are also inconvertible types (so you can't cast it) and there's no way to get an instance of the latter.

What you can do is change the constructor to

public MapBuilder(Class<? extends Map> mapType) throws Exception

Generics are erased at run-time so at run-time all Maps will behave just like Map<Object, Object> anyway. Therefore it doesn't matter that the class you're constructing from is using the raw type.


By the way, Class::newInstance is deprecated. Use

mapType.getConstructor().newInstance()

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