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I am just playing with Java8, and I found some strange behavior need explanation for it..

When have small set of data, and when apply parallel sort using streams, I got invalid result... (complete code here https://gist.github.com/MuhammadHewedy/11139654)

List<Employee> list = new ArrayList<>();
list.add(new Employee("Muhammad", "Abdullah"));
list.add(new Employee("Ahmad", "Yaser"));
list.add(new Employee("Ahmad", "Abdullah"));

list.stream().sorted((e1, e2) -> e1.getFirstName().compareTo(e2.getFirstName()))
        .forEach(System.out::println);

System.out.println("--------------");

list.stream().parallel().sorted(Comparator.comparing(e -> e.getFirstName()))
        .forEach(System.out::println);

Results:

Ahmad Yaser
Ahmad Abdullah
Muhammad Abdullah
--------------
Muhammad Abdullah <-- invalid sort
Ahmad Yaser
Ahmad Abdullah

I think parallel streams might not be faster than serial steams, but In all cases it should never return invalid results.

java info:

$java -version
java version "1.8.0"
Java(TM) SE Runtime Environment (build 1.8.0-b132)
Java HotSpot(TM) 64-Bit Server VM (build 25.0-b70, mixed mode)
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To make things less confusing use same code to create comparator, so instead of lambdas maybe use Comparator.comparing(Employee::getFirstName) in both sorted operations. –  Pshemo Apr 21 at 11:23

1 Answer 1

up vote 8 down vote accepted

forEach() doesn't guarantee to process elements in specific order:

The behavior of this operation is explicitly nondeterministic. For parallel stream pipelines, this operation does not guarantee to respect the encounter order of the stream, as doing so would sacrifice the benefit of parallelism. For any given element, the action may be performed at whatever time and in whatever thread the library chooses. If the action accesses shared state, it is responsible for providing the required synchronization.

You should use forEachOrdered() instead:

list.stream().parallel().sorted(Comparator.comparing(e -> e.getFirstName()))
    .forEachOrdered(System.out::println);
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1  
Or, alternately, capture the sorted result to a collection or array, and then operate on it: list.stream().sorted(...).toArray(); –  Brian Goetz Apr 21 at 13:40

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