0

Does Flux allow to retry an operation on an occurred exception without taking the pointer to the initial position? I mean from the "problematic" element.

For example:

Flux.fromArray(new Integer[]{1, 2, 3})
        .delayElements(Duration.ofSeconds(1))
        .doOnNext(i -> {
            System.out.println("i: " + i);
            if (i == 2) {
                System.out.println("2 found");
                throw new RuntimeException("2!!!!!!!1");
            }
        })
        .retry(2)
        .subscribe();

will have the following output:

i: 1
i: 2
2 found
i: 1
i: 2
2 found
i: 1
i: 2
2 found

when I would wish to see such an output:

i: 1
i: 2
2 found
i: 2
2 found
i: 2
2 found

P.S. skipUntil is not what I am looking for

2

Not that I know of, but I could be wrong.

However, you could provide that logic yourself for that particular step. For instance, but creating your own Consumer and wrapping the retry logic in it

public class RetryConsumer<T> implements Consumer<T> {

    private int                 retryCount;
    private Consumer<? super T> delegate;

    public RetryConsumer(int retryCount, Consumer<? super T> delegate) {
        this.retryCount = retryCount;
        this.delegate = delegate;
    }

    @Override
    public void accept(T value) {

        int currentAttempts = 0;
        while (currentAttempts < retryCount) {
            try {
                delegate.accept(value);
                break;
            } catch (Throwable e) {
                currentAttempts++;
                if (currentAttempts == retryCount) {
                    throw e;
                }
                //Still have some attempts left
            }
        }

    }
}

You could then reuse this in your Flux steps, i.e.

Flux.fromArray(new Integer[]{1, 2, 3})
    .doOnNext(new RetryConsumer<>(2 , i -> {
        System.out.println("i: " + i);
        if (i == 2) {
            System.out.println("2 found");
            throw new RuntimeException("Error");
        }
     }))
     .subscribe();
  • Interesting, but generally follows the approach of skipUntil, which has issues when I replace the Integers with immutable stateless objects, which I try to process only once and with a retry for a few possible fails. – AppleBuckler Feb 17 at 8:51

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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