52

I'm struggling to implement something I assumed would be fairly simple in Rx.

I have a list of items, and I want to have each item emitted with a delay.

It seems the Rx delay() operator just shifts the emission of all items by the specified delay, not each individual item.

Here's some testing code. It groups items in a list. Each group should then have a delay applied before being emitted.

Observable.range(1, 5)
    .groupBy(n -> n % 5)
    .flatMap(g -> g.toList())
    .delay(50, TimeUnit.MILLISECONDS)
    .doOnNext(item -> {
        System.out.println(System.currentTimeMillis() - timeNow);
        System.out.println(item);
        System.out.println(" ");
    }).toList().toBlocking().first();

The result is:

154ms
[5]

155ms
[2]

155ms
[1]

155ms
[3]

155ms
[4]

But what I would expect to see is something like this:

174ms
[5]

230ms
[2]

285ms
[1]

345ms
[3]

399ms
[4]

What am I doing wrong?

  • wonder why isn't any of the answers actually answering the question. Why isn't this working, what's wrong with it? – eis Mar 15 '18 at 6:46
  • "I'm struggling to implement something I assumed would be fairly simple in Rx" seems to be the introduction to every Rx question. :) – Steven Jeuris Mar 5 at 14:54

15 Answers 15

57

One way to do it is to use zip to combine your observable with an Interval observable to delay the output.

Observable.zip(Observable.range(1, 5)
        .groupBy(n -> n % 5)
        .flatMap(g -> g.toList()),
    Observable.interval(50, TimeUnit.MILLISECONDS),
    (obs, timer) -> obs)
    .doOnNext(item -> {
      System.out.println(System.currentTimeMillis() - timeNow);
      System.out.println(item);
      System.out.println(" ");
    }).toList().toBlocking().first();
  • 2
    Thanks! I think the delay operator is not intended to be used the way I wanted to. This solution works :) – athor Oct 26 '15 at 19:52
  • 7
    This won't work if you source observable emits items at a rate slower than 50 ms. The Observable.interval() will emit an item every 50 ms. the zip() operator will buffer these if there is no matching items from your grouped list. Then, when a group is emitted, zip will immediately combine that with an item from the interval observable and send it to your doOnNext() without delay. – kjones Oct 26 '15 at 21:21
  • @kjones Agreed -- this will not work for a slow producer, only to delay one where the items are available at the same time. But the original question was - "I have a list of items, and I want to have each item emitted with a delay." Which sounds like from with a delay between each emission. – iagreen Oct 27 '15 at 0:25
  • 1
    @iagreen - You're right. I just assumed the Observable.range(1,5) was a hypothetical source observable. Since pretty much everything I work on can produce items at any random time, I tend to project this requirement onto others as well. – kjones Oct 27 '15 at 15:26
  • <!-- language: java --> Observable<Message> messageObservable = Observable .interval(1, TimeUnit.SECONDS) .map(i -> others.get(i.intValue())) .take(others.size()); Thats its more simple. – tonilopezmr Aug 5 '16 at 18:07
45

The simplest way to do this seems to to just use concatMap and wrap each item in a delayed Obserable.

long startTime = System.currentTimeMillis();
Observable.range(1, 5)
        .concatMap(i-> Observable.just(i).delay(50, TimeUnit.MILLISECONDS))
        .doOnNext(i-> System.out.println(
                "Item: " + i + ", Time: " + (System.currentTimeMillis() - startTime) +"ms"))
        .toCompletable().await();

Prints:

Item: 1, Time: 51ms
Item: 2, Time: 101ms
Item: 3, Time: 151ms
Item: 4, Time: 202ms
Item: 5, Time: 252ms
  • I like this approach much more, because I have no doubt that I should turn-off something. With zip+interval I think I need manually stop Interval emittion. – MercurieVV Mar 27 '17 at 6:23
  • Works like a charm even when the upstream is slow. – Stéphane Appercel Jul 18 '17 at 19:03
  • This seems like it would do fine when we know how many results we want. Is there a way to do this when we don't know how many there are? – Chris Sobolewski May 8 '18 at 23:50
  • The concatMap step should work for any type of observable, bounded unbounded, sized and unsized. The example given is sized simply to match the question and ease of demonstration. – Magnus May 9 '18 at 0:52
  • toCompletable is deprecated. – AndroidDev Jun 11 at 8:48
32

Just sharing a simple approach to emit each item in a collection with an interval:

Observable.just(1,2,3,4,5)
    .zipWith(Observable.interval(500, TimeUnit.MILLISECONDS), (item, interval) -> item)
    .subscribe(System.out::println);

Each item will be emitted every 500 milliseconds

  • Should be the accepted answer. – AndroidDev Jun 11 at 10:00
7

For kotlin users, I wrote an extension function for the 'zip with interval' approach

import io.reactivex.Observable
import io.reactivex.functions.BiFunction
import java.util.concurrent.TimeUnit

fun <T> Observable<T>.delayEach(interval: Long, timeUnit: TimeUnit): Observable<T> =
    Observable.zip(
        this, 
        Observable.interval(interval, timeUnit), 
        BiFunction { item, _ -> item }
    )

It works the same way, but this makes it reusable. Example:

Observable.range(1, 5)
    .delayEach(1, TimeUnit.SECONDS)
2

You can implement a custom rx operator such as MinRegularIntervalDelayOperator and then use this with the lift function

Observable.range(1, 5)
    .groupBy(n -> n % 5)
    .flatMap(g -> g.toList())
    .lift(new MinRegularIntervalDelayOperator<Integer>(50L))
    .doOnNext(item -> {
      System.out.println(System.currentTimeMillis() - timeNow);
      System.out.println(item);
      System.out.println(" ");
    }).toList().toBlocking().first();
2

I think it's exactly what you need. Take look:

long startTime = System.currentTimeMillis();
Observable.intervalRange(1, 5, 0, 50, TimeUnit.MILLISECONDS)
                .timestamp(TimeUnit.MILLISECONDS)
                .subscribe(emitTime -> {
                    System.out.println(emitTime.time() - startTime);
                });
1

To introduce delay between each item emitted is useful:

List<String> letters = new ArrayList<>(Arrays.asList("a", "b", "c", "d"));

Observable.fromIterable(letters)
                .concatMap(item -> Observable.interval(1, TimeUnit.SECONDS)
                        .take(1)
                        .map(second -> item))
                .subscribe(System.out::println);

More good options at https://github.com/ReactiveX/RxJava/issues/3505

0

To delay each group you can change your flatMap() to return an Observable that delays emitting the group.

Observable
        .range(1, 5)
        .groupBy(n -> n % 5)
        .flatMap(g ->
                Observable
                        .timer(50, TimeUnit.MILLISECONDS)
                        .flatMap(t -> g.toList())
        )
        .doOnNext(item -> {
            System.out.println(System.currentTimeMillis() - timeNow);
            System.out.println(item);
            System.out.println(" ");
        }).toList().toBlocking().first();
  • Unfortunately this doesn't work. The timestamp printed is the same for all items. – athor Oct 26 '15 at 19:52
  • That's because you source observable range(1, 5) emits all items almost simultaneously. If your source was emitting items at random times you would see each group delay by 50 ms. The answer you have selected as the right answer will not do what you want if say your source emits 1 item, then delays for say 500 ms, then emits 4 more items. In that case the last 4 items will all have pretty much the same timestamp. – kjones Oct 26 '15 at 21:12
  • yeah all executed at same time in doOnNext – Jemshit Iskenderov Aug 20 '16 at 9:51
0

A not so clean way is to make the delay change with the iteration using the .delay(Func1) operator.

Observable.range(1, 5)
            .delay(n -> n*50)
            .groupBy(n -> n % 5)
            .flatMap(g -> g.toList())
            .doOnNext(item -> {
                System.out.println(System.currentTimeMillis() - timeNow);
                System.out.println(item);
                System.out.println(" ");
            }).toList().toBlocking().first();
0

There is other way to do it using concatMap as concatMap returns observable of source items. so we can add delay on that observable.

here what i have tried.

Observable.range(1, 5)
          .groupBy(n -> n % 5)
          .concatMap(integerIntegerGroupedObservable ->
          integerIntegerGroupedObservable.delay(2000, TimeUnit.MILLISECONDS))
          .doOnNext(item -> {
                    System.out.println(System.currentTimeMillis() - timeNow);
                    System.out.println(item);
                    System.out.println(" ");
                }).toList().toBlocking().first(); 
0

You can use

   Observable.interval(1, TimeUnit.SECONDS)
            .map(new Function<Long, Integer>() {
                @Override
                public Integer apply(Long aLong) throws Exception {
                    return aLong.intValue() + 1;
                }
            })
            .startWith(0)
            .take(listInput.size())
            .subscribe(new Consumer<Integer>() {
                @Override
                public void accept(Integer index) throws Exception {
                    Log.d(TAG, "---index of your list --" + index);
                }
            });

This code above not duplicate value(index). "I'm sure"

-1

I think you want this:

Observable.range(1, 5)
            .delay(50, TimeUnit.MILLISECONDS)
            .groupBy(n -> n % 5)
            .flatMap(g -> g.toList())
            .doOnNext(item -> {
                System.out.println(System.currentTimeMillis() - timeNow);
                System.out.println(item);
                System.out.println(" ");
            }).toList().toBlocking().first();

This way it will delay the numbers going into the group rather than delaying the reduced list by 5 seconds.

  • Unfortunately that still doesn't accomplish what I need. The doOnNext method is still executed at the same time for all items. – athor Oct 23 '15 at 0:05
  • use zip operator! combine your observable with interval observable! – Konstantin Volkov Feb 23 '16 at 19:08
-1

You can add a delay between emitted items by using flatMap, maxConcurrent and delay()

Here is an example - emit 0..4 with delay

@Test
fun testEmitWithDelays() {
    val DELAY = 500L
    val COUNT = 5

    val latch = CountDownLatch(1)
    val startMoment = System.currentTimeMillis()
    var endMoment : Long = 0

    Observable
        .range(0, COUNT)
        .flatMap( { Observable.just(it).delay(DELAY, TimeUnit.MILLISECONDS) }, 1) // maxConcurrent = 1
        .subscribe(
                { println("... value: $it, ${System.currentTimeMillis() - startMoment}") },
                {},
                {
                    endMoment = System.currentTimeMillis()
                    latch.countDown()
                })

    latch.await()

    assertTrue { endMoment - startMoment >= DELAY * COUNT }
}

... value: 0, 540
... value: 1, 1042
... value: 2, 1544
... value: 3, 2045
... value: 4, 2547
  • Isn't flatMap with maxConcurrent = 1 the same as concatMap? They won't interleave anyway.. – LookForAngular Jun 13 '18 at 14:05
  • @LookForAngular Of course, flatMap (..., maxConcurrent=1) behaves like concatMap. – cVoronin Jun 13 '18 at 17:44
-1

you should be able to achieve this by using Timer operator. I tried with delay but couldn't achieve the desired output. Note nested operations done in flatmap operator.

    Observable.range(1,5)
            .flatMap(x -> Observable.timer(50 * x, TimeUnit.MILLISECONDS)
                        .map(y -> x))
            // attach timestamp
            .timestamp()
            .subscribe(timedIntegers ->
                    Log.i(TAG, "Timed String: "
                            + timedIntegers.value()
                            + " "
                            + timedIntegers.time()));
-1
Observable.just("A", "B", "C", "D", "E", "F")
    .flatMap { item -> Thread.sleep(2000)
        Observable.just( item ) }
    .subscribe { println( it ) }

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.