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How would one remove duplicates from an unordered Immutable.List()? (without using toJS() or toArray())

e.g.

Immutable.List.of("green", "blue","green","black", "blue")
34

You can convert it to a Set. A Set is a List with unique values.

Immutable.List.of("green", "blue","green","black", "blue").toSet()

If you need it as list again just convert it back then:

Immutable.List.of("green", "blue","green","black", "blue").toSet().toList()

Update:

It exists a shorter possibility to get unique values:

Immutable.List.of("green", "blue","green","black", "blue").distinct
  • thanks! that works great! – ThorbenA Mar 9 '16 at 15:49
  • 6
    Using Immutable 3.7.3 the .distinct solution does not seem to work (it's undefined). .toSet().toList() does the job! – manosim Sep 18 '17 at 9:44
  • 2
    for Immutable 3.8.2 as well - .distinct returns undefined – gl03 Sep 6 '18 at 20:30
  • immutable@4.0.0-rc.12 .distinct returns undefined – bJacoG May 7 at 9:03
  • Is there a way to use Seq.Set to lazily remove duplicates? – CMCDragonkai Aug 23 at 8:22
24

If you have a more complex type you can also use groupBy to provide your own selector to compare on. The following will remove duplicates on the property .name:

var distinctColors = duplicateColors.groupBy(x => x.name).map(x => x.first()).toList();
  • Very useful, thanks! – slezica Mar 23 '17 at 19:01

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