146

Question

For testing purposes, I'm creating Observable objects that replace the observable that would be returned by an actual http call with Http.

My observable is created with the following code:

fakeObservable = Observable.create(obs => {
  obs.next([1, 2, 3]);
  obs.complete();
});

The thing is, this observable emits immediatly. Is there a way to add a custom delay to its emission?


Track

I tried this:

fakeObservable = Observable.create(obs => {
  setTimeout(() => {
    obs.next([1, 2, 3]);
    obs.complete();
  }, 100);
});

But it doesn't seem to work.

9

6 Answers 6

204

Using the following imports:

import {Observable} from 'rxjs/Observable';
import 'rxjs/add/observable/of';
import 'rxjs/add/operator/delay';

Try this:

let fakeResponse = [1,2,3];
let delayedObservable = Observable.of(fakeResponse).delay(5000);
delayedObservable.subscribe(data => console.log(data));

UPDATE: RXJS 6

The above solution doesn't really work anymore in newer versions of RXJS (and of angular for example).

So the scenario is that I have an array of items to check with an API with. The API only accepts a single item, and I do not want to kill the API by sending all requests at once. So I need a timed release of items on the Observable stream with a small delay in between.

Use the following imports:

import { from, of } from 'rxjs';
import { delay } from 'rxjs/internal/operators';
import { concatMap } from 'rxjs/internal/operators';

Then use the following code:

const myArray = [1,2,3,4];

from(myArray).pipe(
        concatMap( item => of(item).pipe ( delay( 1000 ) ))
    ).subscribe ( timedItem => {
        console.log(timedItem)
    });

It basically creates a new 'delayed' Observable for every item in your array. There are probably many other ways of doing it, but this worked fine for me, and complies with the 'new' RXJS format.

16
  • 2
    Property 'of' does not exist on type 'typeof Observable'. Do you import your Observable with import {Observable} from 'rxjs/Observable';? Feb 23, 2017 at 16:59
  • 1
    From this page: npmjs.com/package/rxjs. I deduced I had to explicitly import with import 'rxjs/add/observable/of';. Do you happen to do the same thing? It's still odd though, since it won't chain with .delay(...) and it shows an error when I try rxjs/add/observable/delay... Feb 27, 2017 at 9:24
  • 5
    should of(item.pipe ( delay( 1000 ) )) be of(item))).pipe(delay(1000) trying to pipe the array gave me errors Jul 26, 2018 at 19:36
  • 2
    This is what worked for me with rxjs6: from([1, 2, 3, 4, 5, 6, 7]).pipe(concatMap(num => of(num).pipe(delay(1000)))) .subscribe(x => console.log(x));
    – robert
    Sep 20, 2018 at 20:53
  • 1
    @MikeOne 's solution worked for me too. Sad that so much code is necessary for such a simple matter...
    – Codev
    Jun 24, 2019 at 17:40
170

In RxJS 5+ you can do it like this

import { Observable } from "rxjs/Observable";
import { of } from "rxjs/observable/of";
import { delay } from "rxjs/operators";

fakeObservable = of('dummy').pipe(delay(5000));

In RxJS 6+

import { of } from "rxjs";
import { delay } from "rxjs/operators";

fakeObservable = of('dummy').pipe(delay(5000));

If you want to delay each emitted value try

from([1, 2, 3]).pipe(concatMap(item => of(item).pipe(delay(1000))));
5
  • 5
    The cleanest solution in my opinion.
    – Maayao
    Jun 6, 2019 at 14:07
  • 1
    This "solution" only works if you emit one item. The delay operator is not invoked for each element in an observable. That is why the horrid concatMap solution is required. Jan 22, 2020 at 3:55
  • 1
    @RickO'Shea, the question is about one emitted value, so that's why this solution.
    – Adrian Ber
    Jan 22, 2020 at 10:06
  • 1
    So fresh and so clean !
    – Nahn
    Apr 3, 2020 at 16:52
  • 1
    I updated my answer for multiple delays @RickO'Shea
    – Adrian Ber
    May 13, 2020 at 19:15
19

What you want is a timer:

// RxJS v6+
import { timer } from 'rxjs';

//emit [1, 2, 3] after 1 second.
const source = timer(1000).map(([1, 2, 3]);
//output: [1, 2, 3]
const subscribe = source.subscribe(val => console.log(val));
2
  • 6
    Good answer, don't forget to unsubscribe
    – Sami
    Oct 24, 2019 at 6:02
  • 1
    @Sami this specific instance of timer doesn't need to be unsubscribed (it will auto complete after 1 second). This is because timer isn't using the second argument of interval which would need to have extra code to mark it completed some how. Jun 2, 2022 at 18:47
8

It's little late to answer ... but just in case may be someone return to this question looking for an answer

'delay' is property(function) of an Observable

fakeObservable = Observable.create(obs => {
  obs.next([1, 2, 3]);
  obs.complete();
}).delay(3000);

This worked for me ...

2
  • 1
    import 'rxjs/add/operator/delay' gives this error now: Module not found: Error: Can't resolve 'rxjs/add/operator/delay' May 31, 2018 at 11:49
  • 2
    Why would you call you observable fake when it's quite real? :)
    – Mladen
    Aug 26, 2019 at 7:26
0

You can use asyncScheduler, it schedules tasks asynchronously, by putting them on the JavaScript event loop queue. It is best used to delay tasks in time or to schedule tasks repeating in intervals.

Link to the documentation

-2

import * as Rx from 'rxjs/Rx';

We should add the above import to make the blow code to work

Let obs = Rx.Observable
    .interval(1000).take(3);

obs.subscribe(value => console.log('Subscriber: ' + value));
1
  • import * is a bit of an overkill for this simple task Sep 2, 2021 at 15:18

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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