16

I have a list that I need to custom sort and then convert to a map with its Id vs. name map.

Here is my code:

Map<Long, String> map = new LinkedHashMap<>();
list.stream().sorted(Comparator.comparing(Building::getName)).forEach(b-> map.put(b.getId(), b.getName()));

I think this will do the job but I wonder if I can avoid creating LinkedHashMap here and use fancy functional programming to do the job in one line.

  • 2
    Besides that using collect is preferable you should beware that sorted(…).forEach(…) is wrong (despite it sometimes works). What you really mean is sorted(…).forEachOrdered(…) – Holger Apr 20 '15 at 9:12
44

You have Collectors.toMap for that purpose :

Map<Long, String> map = 
    list.stream()
        .sorted(Comparator.comparing(Building::getName))
        .collect(Collectors.toMap(Building::getId,Building::getName));

If you want to force the Map implementation that will be instantiated, use this :

Map<Long, String> map = 
    list.stream()
        .sorted(Comparator.comparing(Building::getName))
        .collect(Collectors.toMap(Building::getId,
                                  Building::getName,
                                  (v1,v2)->v1,
                                  LinkedHashMap::new));
  • 2
    toMap will convert this in HashMap right? which doesn't guarantee sorting? – Mohammad Adnan Apr 18 '15 at 18:26
  • 4
    @MohdAdnan The returned implementation is not guaranteed. You can force the implementation you wish by using the 4 parameter version. With the last parameter - the Supplier - you can specify which Map implementation will be instantiated. – Eran Apr 18 '15 at 18:32
  • 3
    Please note that, this implementation will omit the second entry for duplicate key. – Masudul Apr 18 '15 at 18:43
  • 1
    @Masud I was assuming there are no duplicates in this use case. If there are, a groupingBy Collector may be more appropriate. – Eran Apr 18 '15 at 18:46
  • 1
    given that the map implementation determines sorting, is there any need for the .sorted(Comparator.comparing(Building::getName)) line? – Emanuel George Hategan Dec 4 '15 at 10:38
0

Use toMap() of java.util.stream.Collectors

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