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As far as I know Java 8 introduces a new method available for Collection types: removeif(). It accepts a predicate which defines the condition on which the elements should be removed. It returns a boolean where a true response means that at least one item has been removed and false otherwise: I have this class:

HotelPriceSummary {
     Hotel hotel;
     float price
}

a List<HotelPriceSummary> allHotels;

and Iterable<Hotel> discardedHotels

I would like to do something like (obviously existsIn is a functions that does not exist, is to express what I would like to do but I didn't find the way)

allHotels.removeIf(h -> h.getHotel().existsIn (discardedHotels))

marked as duplicate by Community Feb 28 '18 at 13:38

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  • 2
    You can produce a HashSet from the discardedHotels Iterable (assuming Hotel overrides equals and hashCode) and use set.contains() – Eran Feb 28 '18 at 8:00
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    Could you get by using a Collection instead of an Iterable? It would make this much simpler. – Dawood ibn Kareem Feb 28 '18 at 8:01
  • 2
    use ArrayList.removeAll(Collection<?> c) – Harshit Feb 28 '18 at 8:01
  • How about discardedHotels.forEach(h -> allHotels.removeIf(hps -> hps.getHotel().equals(h)))? Not very efficient, I know. – shmosel Feb 28 '18 at 8:03
  • @Harshit There's no ArrayList, no Collection, and they're not even the same element type. – shmosel Feb 28 '18 at 8:04
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You can't efficiently locate an item in an Iterable. I would suggest copying it to a temporary set (unless it already is a set) and then calling contains():

Set<Hotel> discardedSet = new HashSet<>();
discardedHotels.forEach(discardedSet::add);
allHotels.removeIf(h -> discardedSet.contains(h.getHotel()));

If you don't mind the O(n*m) complexity, you can call List.removeIf() within Iterable.forEach():

discardedHotels.forEach(h -> allHotels.removeIf(hps -> hps.getHotel().equals(h)))
  • Set creation can be simplified by Set<Hotel> discardedSet = StreamSupport.stream(discardedHotels.spliterator(), false).collect(Collectors.toSet()); – Flown Feb 28 '18 at 8:39
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    @Flown Thanks for the suggestion, but I don't see that as a simplification. – shmosel Feb 28 '18 at 8:41

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