You can obtain a Properties instance of the JVM properties using System.getProperties(); how would you go about using Java 8 code to print all properties to the console?

One solution:

public final class Foo
{
    private static void printProperty(final Object key, final Object value)
    {
        System.out.println(key + ": " + value);
    }

    public static void main(final String... args)
    {
        System.getProperties().forEach(Foo::printProperty);
    }
}

Rundown:

  • Properties extends Hashtable<Object, Object> which itself implements Map<Object, Object>;
  • Map has a .forEach() method whose argument is a BiConsumer;
  • BiConsumer is a functional interface;
  • static method printProperty() of class Foo happens to have the same signature as a BiConsumer<Object, Object>: its "return value" is void, its first argument is Object, its second argument is Object;
  • we can therefore use Foo::printProperty as a method reference.

A shorter version would be:

public final class ShorterFoo
{
    public static void main(final String... args)
    {
        System.getProperties()
            .forEach((key, value) -> System.out.println(key + ": " + value));
    }
}

At runtime, this would not make a difference. Note the type inference in the second example: the compiler can infer that key and value are of type Object. Another way to write this "anonymous lambda" would have been:

(Object key, Object value) -> System.out.println(key + ": " + value)

(not so) Side note: even though it is a little outdated, you really want to watch this video (yes, it's one hour long; yes, it is worth watching it all).


(not so) Side note 2: you may have noticed that Map's .forEach() mentions a default implementation; this means that your custom Map implementations, or other implementations from external libraries, will be able to use .forEach() (for instance, Guava's ImmutableMaps). Many such methods on Java collections exist; do not hesitate to use these "new methods" on "old dogs".

  • What do you mean by "(not so)"? – Kirk Woll Nov 5 '14 at 1:38
  • 1
    @KirkWoll sort of a pun; that is, I deem these side notes as important as the answer itself – fge Nov 5 '14 at 1:40

@fge has missed one very short version that admittedly depends on the toString implementation of Map.Entry.

public class VeryShortFoo {
    public static void main(String... args) {
        System.getProperties().entrySet().forEach(System.out::println);
    }
}
  • Here, the entrySet is streamed and each Map.Entry is printed with a reference to out.println.
  • Map.Entry implementations of toString generally return getKey() + "=" + getValue().

Here's another one I quite like.

public class ElegantFoo {
    public static void main(String... args) {
        System.getProperties().entrySet().stream()
            .map(e -> e.getKey() + ": " + e.getValue())
            .forEach(System.out::println);
    }
}
  • The entrySet is streamed again (this time explicitly with a call to stream).
  • Stream#map performs a 1:1 conversion from elements of one type to elements of another. Here, it turns a Stream<Map.Entry> in to a Stream<String>.
  • The Stream<String> is printed.
  • Nice one... In fact I haven't even tried that. Of note here is that it really "calls" the .forEach() method on a Set. (also, pure English question: wouldn't you write "admittedly" instead of "admittingly"?) – fge Nov 5 '14 at 1:36
  • Might I suggest that you highlight the "rundown" of your code snippets like I did? – fge Nov 5 '14 at 3:47

In Java 8, the Properties class inherits a new method from HashTable called forEach. This new method accepts functions (functional interfaces) to be passed to it as arguments. To be more specific, it accepts the functional interface BiConsumer<T,U>. This functional interface's functional method is accept(T t, U u). In Java 8, all functional interfaces can be written as Lambda expressions. Therefore, here is how we would display all properties in a Property instance:

Properties vmProps = System.getProperties();
vmProps.forEach((t,u) -> System.out.println("Property: " + t + "\nValue: " + u + "\n"));

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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