4

Requirement:

urls = [url1, url2, url3]

Fire all 3 urls parallely and paint the Dom in the sequnce of the urls list

 ex: Finished order of urls = [url3, url1, url2]
     when url1 finishes Immediately render the DOM, without waiting for url2
     If url2, url3 finishes before url1, then store url2, url3 and paint the DOM after url1 arrives
     Paint the DOM with order [url1, url2, url3]

My Work using promises:

// Fired all 3 urls at the same time
p1 = fetch(url1)
p2 = fetch(url2)
p3 = fetch(url3)

p1.then(updateDom)
  .then(() => p2)
  .then(updateDom)
  .then(() => p3)
  .then(updateDom)

I wanted to do the same thing in Observables.

from(urls)
  .pipe(
      mergeMap(x => fetch(x))
  )

To fire them parallely I used merge map, but how can I order the sequence of the results?

1

3 Answers 3

8

The best way to preserve order with async tasks like this is with concatMap.

The problem is that if we apply this alone, we lose the parallelisation. If we were to do something like this:

from(urls)
  .pipe(
      concatMap(x => fetch(x))
  );

the second request is not fired until the first is complete.

We can get around this by separating out the map into its own operator:

from(urls)
  .pipe(
      map(x => fetch(x)),
      concatMap(x => x)
  );

The requests will all be fired at the same time, but the results will be emitted in request order.

See Adrian's example adapted to use this approach below:

const { from } = rxjs;
const { concatMap, map } = rxjs.operators;

function delayPromise(value, delay) {
  return new Promise(resolve => setTimeout(() => resolve(value), delay));
}

var delay = 3;

from([1, 2, 3]).pipe(
  map(x => delayPromise(x, delay-- * 1000)),
  concatMap(x => x)
).subscribe(result => { console.log(result); });
<script src="https://cdnjs.cloudflare.com/ajax/libs/rxjs/6.4.0/rxjs.umd.min.js"></script>

8
  • Thanks for the solution. But sorry I can only accept only one answer. Commented Dec 13, 2019 at 5:20
  • @pawankumar that's all good, I was just posting it in case other people find this question
    – rh16
    Commented Dec 14, 2019 at 6:06
  • Sorry I didn't mean that, I found your answer much better than the accepted one. Wanted to say that in a funny way. Commented Dec 14, 2019 at 13:12
  • Yes, this should be the accepted answer. Nice work.
    – Alexsoyes
    Commented May 28, 2020 at 14:22
  • 1
    @nilspetersohn Yeah it was frustration with wrangling the forkJoin approach that drove me to create this answer.
    – rh16
    Commented Jun 28, 2021 at 1:43
1

I couldn't find anything that preserves the order so I came up with something a bit convoluted.

const { concat, of, BehaviorSubject, Subject } = rxjs;
const { delay, filter } = rxjs.operators;

const parallelExecute = (...obs$) => {
  const subjects = obs$.map(o$ => {
    const subject$ = new BehaviorSubject();
    const sub = o$.subscribe(o => { subject$.next(o); });
    return { sub: sub, obs$: subject$.pipe(filter(val => val)) };
  });
  const subject$ = new Subject();
  sub(0);
  function sub(index) {
    const current = subjects[index];
    current.obs$.subscribe(c => {
      subject$.next(c);
      current.obs$.complete();
      current.sub.unsubscribe();
      if (index < subjects.length -1) {
        sub(index + 1);
      } else {
        subject$.complete();
      }
    });
  }
  return subject$;
}


parallelExecute(
  of(1).pipe(delay(3000)),
  of(2).pipe(delay(2000)),
  of(3).pipe(delay(1000))
).subscribe(result => { console.log(result); });
<script src="https://cdnjs.cloudflare.com/ajax/libs/rxjs/6.4.0/rxjs.umd.min.js"></script>

0
0

You can form a sequence with fetch and paint then forkJoin/Promise.all them

p1 = fetch(url1)
p2 = fetch(url2)
p3 = fetch(url3)

forkJoin(
from(p1).pipe(tap(_=>paint dom...))
from(p1).pipe(tap(_=>paint dom...))
from(p1).pipe(tap(_=>paint dom...))
).subscribe()

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