12

Following this question about sorting a list by another list, I tried to do the same thing - but from some reason it doesn't work for me. What am I missing?

    List<Double> nums = Arrays.asList(5.0, 0.9, 10.4);
    List<Double> order = Arrays.asList(3.0, 1.0, 2.0);
    nums.sort(Comparator.comparing(order::indexOf));
    System.out.println(nums);

    OUTPUT: [5.0, 0.9, 10.4]

It should be [0.9, 10.4, 5.0] (according to order). What am I not doing right?

EDIT: As most of you noticed, I got answer to the question I linked to all wrong. Here's what I actually want to do.

  • For this to work, each nums element must exist in order – Logan Wlv May 16 at 9:59
  • Just failed an audit on this... I don't get how the EDIT part is acceptable. – Almo Jun 4 at 16:03
17

You are sorting the numbers by their position in the order list, but none of the numbers occur in the order list. In this case, indexOf will return -1 for everything, meaning everything is equal to everything else. In such a case, the resulting sort order is unspecified - though you may realistically assume that it would not change.

  • Oh, so I got it all wrong.. how then do I sort nums by order? – shakedzy May 16 at 9:56
  • @shakedzy I don't know what you mean by "sort nums by order" – Michael May 16 at 9:56
  • @Michael I believe using order as the keys for sorting. – justhalf May 16 at 14:55
  • @shakedzy I'd like to add that the comparator does not fulfil the Comparator specification. That implies that not only is the sort order unspecified, but sort methods might throw exception. ArrayList for example might throw AssertionError. – Lii Jun 6 at 16:13
  • Just for fun I played with ArrayList and different flawed comparators. I never get an exception with comparators that always return -1, and I never get AssertionErrors. With comparators that return random integers I often get IllegalArgumentException however. (Of course, all this is unspecified and implementation dependent, so it might vary between JRE:s and releases.) – Lii Jun 7 at 8:49
4

You can make a list of pairs :

[3.0, 5.0]
[1.0, 0.9]
[2.0, 10.4]

Then sort this list of pairs by the first value of each array :

[1.0, 0.9]
[2.0, 10.4]
[3.0, 5.0]

Here is the code :

List<Double> nums = Arrays.asList(5.0, 0.9, 10.4);
List<Double> order = Arrays.asList(3.0, 1.0, 2.0);

List<Double[]> pairs = new ArrayList<>();
for (int i = 0; i < nums.size(); i++) {
    pairs.add(new Double[] {order.get(i), nums.get(i)});
}

pairs.sort(Comparator.comparing(pair -> pair[0]));

for (Double[] pair : pairs) {
    System.out.print(pair[1] + " ");
}

Output :

0.9 10.4 5.0 
2

Update

List<Double> nums = Arrays.asList(5.0, 0.9, 10.4);
List<Double> order = Arrays.asList(3.0, 1.0, 2.0);
Map<Double,Double> numToOrder = new HashMap<>();
for (int i = 0; i < nums.size(); ++i) {
    numToOrder.put(nums.get(i), order.get(i));
}
nums.sort(Comparator.comparing(num -> numToOrder.get(num)));
System.out.println(nums);

Original (wrong) answer

(nums is modified in place, and the lambda returning key returns wrong results)

List<Double> nums = Arrays.asList(5.0, 0.9, 10.4);
List<Double> order = Arrays.asList(3.0, 1.0, 2.0);
nums.sort(Comparator.comparing(num -> order.get(nums.indexOf(num))));
System.out.println(nums);
  • 2
    Results in [0.9, 5.0, 10.4], which is wrong – Michael May 16 at 10:07
1

The Comparator you are supplying calls indexOf for every num passed. The returned values are -1 on all calls, so the order is preserverd as-is.

You need to sort natural.

Sorting by another list of Double should be possible, but unnecessarily complicated, it would be simpler to provide a custom Object which sorts as desired.

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