Related
I am searching for an elegant way to filter a list for only the elements that are unique. An example:
[1, 2, 2, 3, 1, 4]
-> [3, 4] // 1 and 2 occur more than once
Most solutions I found manually compute the occurrences of all elements and then filter by the elements that have exactly one occurrence.
That does not sound too elegant to me, maybe there is a better solution, a best practice or a name for a data-structure that solves this already? I was also thinking about maybe utilizing streams, but I do not know how.
Note that I am not asking for duplicate removal, i.e. [1, 2, 3, 4] but for keeping only the unique elements, so [3, 4].
The order of the resulting list or what type of Collection exactly does not matter to me.
I doubt there is a better approach than actually counting and filtering for the ones that only appeared once. At least, all approaches I can think of will use something similar to that under the hood.
Also, it is not clear what you mean by elegant, readability or performance? So I will just dump some approaches.
Stream counting
Here is a stream-variant that computes number of occurrences (Map) and then filters for elements that appear only once. It is essentially the same as what you described already, or what Bags do under the hood:
List<E> result = elements.stream() // Stream<E>
.collect(Collectors.groupingBy(Function.identity(), Collectors.counting())) // Map<E, Long>
.entries() // Set<Entry<E, Long>>
.stream() // Stream<Entry<E, Long>>
.filter(entry -> entry.getValue() == 1)
.map(Entry::getKey)
.collect(Collectors.toList());
It requires two full iterations over the data-set. Since it uses the Stream-API, the operations support multi-threading right from the get-go though. So if you have lots of elements, this might be pretty fast due to that.
Manual Set
Here is another approach that reduces iteration and lookup time by manually collecting into a Set to identify duplicates as fast as possible:
Set<E> result = new HashSet<>();
Set<E> appeared = new HashSet<>();
for (E element : elements) {
if (result.contains(element)) { // 2nd occurrence
result.remove(element);
appeared.add(element);
continue;
}
if (appeared.contains(element)) { // >2nd occurrence
continue;
}
result.add(element); // 1st occurrence
}
As you see, this only requires one iteration over the elements instead of multiple.
This approach is elegant in a sense that it does not compute unnecessary information. For what you want, it is completely irrelevant to compute how often exactly elements appear. We only care for "does it appear once or more often?" and not if it appears 5 times or 11 times.
You can use Bag to count occurrences (getCount(1) for unique)
Bag is a collection that allows storing multiple items along with their repetition count:
public void whenAdded_thenCountIsKept() {
Bag<Integer> bag = new HashBag<>(
Arrays.asList(1, 2, 3, 3, 3, 1, 4));
assertThat(2, equalTo(bag.getCount(1)));
}
Or CollectionBag
Apache Collections' library provides a decorator called the CollectionBag. We can use this to make our bag collections compliant with the Java Collection contract:
And get unique set:
bag.uniqueSet();
Returns a Set of unique elements in the Bag.
One need first to collect all, reached the end for deleting groups of more than 1 element.
Map<String, Long> map = Stream.of("a", "b", "a", "a", "c", "d", "c")
.collect(Collectors.groupingBy(Function.identity(),
Collectors.counting()));
map.entrySet()
.stream()
.filter(e -> e.getValue() == 1L)
.map(e -> e.getKey())
.forEach(System.out::println);
Or in one go:
Stream.of("a", "b", "a", "a", "c", "d", "c")
.collect(Collectors.groupingBy(Function.identity(), Collectors.counting()))
.entrySet()
.stream()
.filter(e -> e.getValue() == 1L)
.map(e -> e.getKey())
.forEach(System.out::println);
The idea of using a map to accumulate frequency counts sounds like a good one: it runs in roughly linear (O(n)) time and only requires O(n) extra space.
Here's an algorithm that requires zero extra space, at the expense of running in O(n^2) time:
public static <T> void retainSingletons(List<T> list)
{
int i = 0;
while (i < list.size()) {
boolean foundDup = false;
int j = i + 1;
while (j < list.size()) {
if (list.get(i).equals(list.get(j))) {
list.remove(j);
foundDup = true;
} else {
++j;
}
}
if (foundDup) {
list.remove(i);
} else {
++i;
}
}
}
The idea is straightforward: step a slow pointer, i, over the list until it runs off the end; for each value of i, run a fast pointer j from i+1 until the end of the list, removing any list[j] that's a duplicate of list[i]; after j runs out, if any duplicates of list[i] were found and removed, also remove list[i].
The following will work using Eclipse Collections:
IntList list = IntLists.mutable.with(1, 2, 2, 3, 1, 4);
IntSet unique = list.toBag().selectUnique();
System.out.println(unique);
Using an IntList removes the need to box the int values and Integer objects.
Note: I am a committer for Eclipse Collections.
I am working with java 8 stream and trying to modify the object content in the forEach terminal operation.
The issues which i am facing here is that i am able to modify the List<Employee> object contents but not able to modify the contents of List<Integer>
The code snippet is as follows:
public static void streamExample() {
List<Employee> listEmp = Arrays.asList(new Employee());
listEmp.stream().forEach(a -> a.setEmptName("John Doe"));
listEmp.stream().forEach(System.out::println);
List<Integer> listInteger = Arrays.asList(2, 4, 6, 8, 12,17, 1234);
listInteger.stream().filter(v -> v % 2 == 0).forEach(a -> a=a+1);
listInteger.stream().forEach(System.out::println);
}
I am wondering the change is not reflecting back in the list because of unboxing the Integer object while performing the a=a+1 operation but not sure.
You use not optimal approach of Stream. Do think of each step in Stream as modify existed (or create new) element and return it back to the Stream. Finally you receive final result and you can use one of final method to finalize (and actually run the whole stream working) the Stream:
List<Integer> listInteger = Arrays.asList(2, 4, 6, 8, 12, 17, 1234);
listInteger.stream().filter(v -> v % 2 == 0).forEach(a -> a = a + 1);
listInteger.stream().forEach(System.out::println);
Here you have initial array. You want to do following:
Filter out some elements (this is not final step);
Print filtered elements out (this is final step).
To do so, you do not have to create Streams two times. Do use one:
Stream.of(2, 4, 6, 8, 12, 17, 1234) // create stream (there're many way to do it)
.filter(v -> v % 2 == 0) // filter out required elements
.map(v -> v + 1) // transform elements using given rule
.forEach(System.out::println); // finalize stream with printing out each element separately
Note: Stream.of(...) creates a Stream, then we add two steps to the stream filter and map and then finalize or START created stream with forEach.
You are assigning a new value to a local variable (a), so that has no affect on the source of the second Stream (your List<Integer>). Note that this is not what you are doing with your List<Employee>, where you are calling a setter method to mutate the elements of the List.
Since Integers are immutable, you can't mutate the elements of your input List<Integer>.
Instead, you can create a new List:
List<Integer> newList =
listInteger.stream()
.map(v -> v % 2 == 0 ? v + 1 : v)
.collect(Collectors.toList());
Or you can stream over the indices of your List, and replace some of the elements of that List:
IntStream.range(0,listInteger.size())
.filter(i -> listInteger.get(i) % 2 == 0)
.forEach(i -> listInteger.set(i, listInteger.get(i + 1));
I've just started playing with Java 8 lambdas and I'm trying to implement some of the things that I'm used to in functional languages.
For example, most functional languages have some kind of find function that operates on sequences, or lists that returns the first element, for which the predicate is true. The only way I can see to achieve this in Java 8 is:
lst.stream()
.filter(x -> x > 5)
.findFirst()
However this seems inefficient to me, as the filter will scan the whole list, at least to my understanding (which could be wrong). Is there a better way?
No, filter does not scan the whole stream. It's an intermediate operation, which returns a lazy stream (actually all intermediate operations return a lazy stream). To convince you, you can simply do the following test:
List<Integer> list = Arrays.asList(1, 10, 3, 7, 5);
int a = list.stream()
.peek(num -> System.out.println("will filter " + num))
.filter(x -> x > 5)
.findFirst()
.get();
System.out.println(a);
Which outputs:
will filter 1
will filter 10
10
You see that only the two first elements of the stream are actually processed.
So you can go with your approach which is perfectly fine.
However this seems inefficient to me, as the filter will scan the whole list
No it won't - it will "break" as soon as the first element satisfying the predicate is found. You can read more about laziness in the stream package javadoc, in particular (emphasis mine):
Many stream operations, such as filtering, mapping, or duplicate removal, can be implemented lazily, exposing opportunities for optimization. For example, "find the first String with three consecutive vowels" need not examine all the input strings. Stream operations are divided into intermediate (Stream-producing) operations and terminal (value- or side-effect-producing) operations. Intermediate operations are always lazy.
return dataSource.getParkingLots()
.stream()
.filter(parkingLot -> Objects.equals(parkingLot.getId(), id))
.findFirst()
.orElse(null);
I had to filter out only one object from a list of objects. So i used this, hope it helps.
In addition to Alexis C's answer, If you are working with an array list, in which you are not sure whether the element you are searching for exists, use this.
Integer a = list.stream()
.peek(num -> System.out.println("will filter " + num))
.filter(x -> x > 5)
.findFirst()
.orElse(null);
Then you could simply check whether a is null.
Already answered by #AjaxLeung, but in comments and hard to find.
For check only
lst.stream()
.filter(x -> x > 5)
.findFirst()
.isPresent()
is simplified to
lst.stream()
.anyMatch(x -> x > 5)
import org.junit.Test;
import java.util.Arrays;
import java.util.List;
import java.util.Optional;
// Stream is ~30 times slower for same operation...
public class StreamPerfTest {
int iterations = 100;
List<Integer> list = Arrays.asList(1, 10, 3, 7, 5);
// 55 ms
#Test
public void stream() {
for (int i = 0; i < iterations; i++) {
Optional<Integer> result = list.stream()
.filter(x -> x > 5)
.findFirst();
System.out.println(result.orElse(null));
}
}
// 2 ms
#Test
public void loop() {
for (int i = 0; i < iterations; i++) {
Integer result = null;
for (Integer walk : list) {
if (walk > 5) {
result = walk;
break;
}
}
System.out.println(result);
}
}
}
A generic utility function with looping seems a lot cleaner to me:
static public <T> T find(List<T> elements, Predicate<T> p) {
for (T item : elements) if (p.test(item)) return item;
return null;
}
static public <T> T find(T[] elements, Predicate<T> p) {
for (T item : elements) if (p.test(item)) return item;
return null;
}
In use:
List<Integer> intList = Arrays.asList(1, 2, 3, 4, 5);
Integer[] intArr = new Integer[]{1, 2, 3, 4, 5};
System.out.println(find(intList, i -> i % 2 == 0)); // 2
System.out.println(find(intArr, i -> i % 2 != 0)); // 1
System.out.println(find(intList, i -> i > 5)); // null
Improved One-Liner answer: If you are looking for a boolean return value, we can do it better by adding isPresent:
return dataSource.getParkingLots().stream().filter(parkingLot -> Objects.equals(parkingLot.getId(), id)).findFirst().isPresent();
Use Case
Through some coding Katas posted at work, I stumbled on this problem that I'm not sure how to solve.
Using Java 8 Streams, given a list of positive integers, produce a
list of integers where the integer preceded a larger value.
[10, 1, 15, 30, 2, 6]
The above input would yield:
[1, 15, 2]
since 1 precedes 15, 15 precedes 30, and 2 precedes 6.
Non-Stream Solution
public List<Integer> findSmallPrecedingValues(final List<Integer> values) {
List<Integer> result = new ArrayList<Integer>();
for (int i = 0; i < values.size(); i++) {
Integer next = (i + 1 < values.size() ? values.get(i + 1) : -1);
Integer current = values.get(i);
if (current < next) {
result.push(current);
}
}
return result;
}
What I've Tried
The problem I have is I can't figure out how to access next in the lambda.
return values.stream().filter(v -> v < next).collect(Collectors.toList());
Question
Is it possible to retrieve the next value in a stream?
Should I be using map and mapping to a Pair in order to access next?
Using IntStream.range:
static List<Integer> findSmallPrecedingValues(List<Integer> values) {
return IntStream.range(0, values.size() - 1)
.filter(i -> values.get(i) < values.get(i + 1))
.mapToObj(values::get)
.collect(Collectors.toList());
}
It's certainly nicer than an imperative solution with a large loop, but still a bit meh as far as the goal of "using a stream" in an idiomatic way.
Is it possible to retrieve the next value in a stream?
Nope, not really. The best cite I know of for that is in the java.util.stream package description:
The elements of a stream are only visited once during the life of a stream. Like an Iterator, a new stream must be generated to revisit the same elements of the source.
(Retrieving elements besides the current element being operated on would imply they could be visited more than once.)
We could also technically do it in a couple other ways:
Statefully (very meh).
Using a stream's iterator is technically still using the stream.
That's not a pure Java8, but recently I've published a small library called StreamEx which has a method exactly for this task:
// Find all numbers where the integer preceded a larger value.
Collection<Integer> numbers = Arrays.asList(10, 1, 15, 30, 2, 6);
List<Integer> res = StreamEx.of(numbers).pairMap((a, b) -> a < b ? a : null)
.nonNull().toList();
assertEquals(Arrays.asList(1, 15, 2), res);
The pairMap operation internally implemented using custom spliterator. As a result you have quite clean code which does not depend on whether the source is List or anything else. Of course it works fine with parallel stream as well.
Committed a testcase for this task.
It's not a one-liner (it's a two-liner), but this works:
List<Integer> result = new ArrayList<>();
values.stream().reduce((a,b) -> {if (a < b) result.add(a); return b;});
Rather than solving it by "looking at the next element", this solves it by "looking at the previous element, which reduce() give you for free. I have bent its intended usage by injecting a code fragment that populates the list based on the comparison of previous and current elements, then returns the current so the next iteration will see it as its previous element.
Some test code:
List<Integer> result = new ArrayList<>();
IntStream.of(10, 1, 15, 30, 2, 6).reduce((a,b) -> {if (a < b) result.add(a); return b;});
System.out.println(result);
Output:
[1, 15, 2]
The accepted answer works fine if either the stream is sequential or parallel but can suffer if the underlying List is not random access, due to multiple calls to get.
If your stream is sequential, you might roll this collector:
public static Collector<Integer, ?, List<Integer>> collectPrecedingValues() {
int[] holder = {Integer.MAX_VALUE};
return Collector.of(ArrayList::new,
(l, elem) -> {
if (holder[0] < elem) l.add(holder[0]);
holder[0] = elem;
},
(l1, l2) -> {
throw new UnsupportedOperationException("Don't run in parallel");
});
}
and a usage:
List<Integer> precedingValues = list.stream().collect(collectPrecedingValues());
Nevertheless you could also implement a collector so thats works for sequential and parallel streams. The only thing is that you need to apply a final transformation, but here you have control over the List implementation so you won't suffer from the get performance.
The idea is to generate first a list of pairs (represented by a int[] array of size 2) which contains the values in the stream sliced by a window of size two with a gap of one. When we need to merge two lists, we check the emptiness and merge the gap of the last element of the first list with the first element of the second list. Then we apply a final transformation to filter only desired values and map them to have the desired output.
It might not be as simple as the accepted answer, but well it can be an alternative solution.
public static Collector<Integer, ?, List<Integer>> collectPrecedingValues() {
return Collectors.collectingAndThen(
Collector.of(() -> new ArrayList<int[]>(),
(l, elem) -> {
if (l.isEmpty()) l.add(new int[]{Integer.MAX_VALUE, elem});
else l.add(new int[]{l.get(l.size() - 1)[1], elem});
},
(l1, l2) -> {
if (l1.isEmpty()) return l2;
if (l2.isEmpty()) return l1;
l2.get(0)[0] = l1.get(l1.size() - 1)[1];
l1.addAll(l2);
return l1;
}), l -> l.stream().filter(arr -> arr[0] < arr[1]).map(arr -> arr[0]).collect(Collectors.toList()));
}
You can then wrap these two collectors in a utility collector method, check if the stream is parallel with isParallel an then decide which collector to return.
If you're willing to use a third party library and don't need parallelism, then jOOλ offers SQL-style window functions as follows
System.out.println(
Seq.of(10, 1, 15, 30, 2, 6)
.window()
.filter(w -> w.lead().isPresent() && w.value() < w.lead().get())
.map(w -> w.value())
.toList()
);
Yielding
[1, 15, 2]
The lead() function accesses the next value in traversal order from the window.
Disclaimer: I work for the company behind jOOλ
You can achieve that by using a bounded queue to store elements which flows through the stream (which is basing on the idea which I described in detail here: Is it possible to get next element in the Stream?
Belows example first defines instance of BoundedQueue class which will store elements going through the stream (if you don't like idea of extending the LinkedList, refer to link mentioned above for alternative and more generic approach). Later you just examine the two subsequent elements - thanks to the helper class:
public class Kata {
public static void main(String[] args) {
List<Integer> input = new ArrayList<Integer>(asList(10, 1, 15, 30, 2, 6));
class BoundedQueue<T> extends LinkedList<T> {
public BoundedQueue<T> save(T curElem) {
if (size() == 2) { // we need to know only two subsequent elements
pollLast(); // remove last to keep only requested number of elements
}
offerFirst(curElem);
return this;
}
public T getPrevious() {
return (size() < 2) ? null : getLast();
}
public T getCurrent() {
return (size() == 0) ? null : getFirst();
}
}
BoundedQueue<Integer> streamHistory = new BoundedQueue<Integer>();
final List<Integer> answer = input.stream()
.map(i -> streamHistory.save(i))
.filter(e -> e.getPrevious() != null)
.filter(e -> e.getCurrent() > e.getPrevious())
.map(e -> e.getPrevious())
.collect(Collectors.toList());
answer.forEach(System.out::println);
}
}
I've tested a bit the max function on Java 8 lambdas and streams, and it seems that in case max is executed, even if more than one object compares to 0, it returns an arbitrary element within the tied candidates without further consideration.
Is there an evident trick or function for such a max expected behavior, so that all max values are returned? I don't see anything in the API but I am sure it must exist something better than comparing manually.
For instance:
// myComparator is an IntegerComparator
Stream.of(1, 3, 5, 3, 2, 3, 5)
.max(myComparator)
.forEach(System.out::println);
// Would print 5, 5 in any order.
I believe the OP is using a Comparator to partition the input into equivalence classes, and the desired result is a list of members of the equivalence class that is the maximum according to that Comparator.
Unfortunately, using int values as a sample problem is a terrible example. All equal int values are fungible, so there is no notion of preserving the ordering of equivalent values. Perhaps a better example is using string lengths, where the desired result is to return a list of strings from an input that all have the longest length within that input.
I don't know of any way to do this without storing at least partial results in a collection.
Given an input collection, say
List<String> list = ... ;
...it's simple enough to do this in two passes, the first to get the longest length, and the second to filter the strings that have that length:
int longest = list.stream()
.mapToInt(String::length)
.max()
.orElse(-1);
List<String> result = list.stream()
.filter(s -> s.length() == longest)
.collect(toList());
If the input is a stream, which cannot be traversed more than once, it is possible to compute the result in only a single pass using a collector. Writing such a collector isn't difficult, but it is a bit tedious as there are several cases to be handled. A helper function that generates such a collector, given a Comparator, is as follows:
static <T> Collector<T,?,List<T>> maxList(Comparator<? super T> comp) {
return Collector.of(
ArrayList::new,
(list, t) -> {
int c;
if (list.isEmpty() || (c = comp.compare(t, list.get(0))) == 0) {
list.add(t);
} else if (c > 0) {
list.clear();
list.add(t);
}
},
(list1, list2) -> {
if (list1.isEmpty()) {
return list2;
}
if (list2.isEmpty()) {
return list1;
}
int r = comp.compare(list1.get(0), list2.get(0));
if (r < 0) {
return list2;
} else if (r > 0) {
return list1;
} else {
list1.addAll(list2);
return list1;
}
});
}
This stores intermediate results in an ArrayList. The invariant is that all elements within any such list are equivalent in terms of the Comparator. When adding an element, if it's less than the elements in the list, it's ignored; if it's equal, it's added; and if it's greater, the list is emptied and the new element is added. Merging isn't too difficult either: the list with the greater elements is returned, but if their elements are equal the lists are appended.
Given an input stream, this is pretty easy to use:
Stream<String> input = ... ;
List<String> result = input.collect(maxList(comparing(String::length)));
I would group by value and store the values into a TreeMap in order to have my values sorted, then I would get the max value by getting the last entry as next:
Stream.of(1, 3, 5, 3, 2, 3, 5)
.collect(groupingBy(Function.identity(), TreeMap::new, toList()))
.lastEntry()
.getValue()
.forEach(System.out::println);
Output:
5
5
I implemented more generic collector solution with custom downstream collector. Probably some readers might find it useful:
public static <T, A, D> Collector<T, ?, D> maxAll(Comparator<? super T> comparator,
Collector<? super T, A, D> downstream) {
Supplier<A> downstreamSupplier = downstream.supplier();
BiConsumer<A, ? super T> downstreamAccumulator = downstream.accumulator();
BinaryOperator<A> downstreamCombiner = downstream.combiner();
class Container {
A acc;
T obj;
boolean hasAny;
Container(A acc) {
this.acc = acc;
}
}
Supplier<Container> supplier = () -> new Container(downstreamSupplier.get());
BiConsumer<Container, T> accumulator = (acc, t) -> {
if(!acc.hasAny) {
downstreamAccumulator.accept(acc.acc, t);
acc.obj = t;
acc.hasAny = true;
} else {
int cmp = comparator.compare(t, acc.obj);
if (cmp > 0) {
acc.acc = downstreamSupplier.get();
acc.obj = t;
}
if (cmp >= 0)
downstreamAccumulator.accept(acc.acc, t);
}
};
BinaryOperator<Container> combiner = (acc1, acc2) -> {
if (!acc2.hasAny) {
return acc1;
}
if (!acc1.hasAny) {
return acc2;
}
int cmp = comparator.compare(acc1.obj, acc2.obj);
if (cmp > 0) {
return acc1;
}
if (cmp < 0) {
return acc2;
}
acc1.acc = downstreamCombiner.apply(acc1.acc, acc2.acc);
return acc1;
};
Function<Container, D> finisher = acc -> downstream.finisher().apply(acc.acc);
return Collector.of(supplier, accumulator, combiner, finisher);
}
So by default it can be collected to a list using:
public static <T> Collector<T, ?, List<T>> maxAll(Comparator<? super T> comparator) {
return maxAll(comparator, Collectors.toList());
}
But you can use other downstream collectors as well:
public static String joinLongestStrings(Collection<String> input) {
return input.stream().collect(
maxAll(Comparator.comparingInt(String::length), Collectors.joining(","))));
}
If I understood well, you want the frequency of the max value in the Stream.
One way to achieve that would be to store the results in a TreeMap<Integer, List<Integer> when you collect elements from the Stream. Then you grab the last key (or first depending on the comparator you give) to get the value which will contains the list of max values.
List<Integer> maxValues = st.collect(toMap(i -> i,
Arrays::asList,
(l1, l2) -> Stream.concat(l1.stream(), l2.stream()).collect(toList()),
TreeMap::new))
.lastEntry()
.getValue();
Collecting it from the Stream(4, 5, -2, 5, 5) will give you a List [5, 5, 5].
Another approach in the same spirit would be to use a group by operation combined with the counting() collector:
Entry<Integer, Long> maxValues = st.collect(groupingBy(i -> i,
TreeMap::new,
counting())).lastEntry(); //5=3 -> 5 appears 3 times
Basically you firstly get a Map<Integer, List<Integer>>. Then the downstream counting() collector will return the number of elements in each list mapped by its key resulting in a Map. From there you grab the max entry.
The first approaches require to store all the elements from the stream. The second one is better (see Holger's comment) as the intermediate List is not built. In both approached, the result is computed in a single pass.
If you get the source from a collection, you may want to use Collections.max one time to find the maximum value followed by Collections.frequency to find how many times this value appears.
It requires two passes but uses less memory as you don't have to build the data-structure.
The stream equivalent would be coll.stream().max(...).get(...) followed by coll.stream().filter(...).count().
I'm not really sure whether you are trying to
(a) find the number of occurrences of the maximum item, or
(b) Find all the maximum values in the case of a Comparator that is not consistent with equals.
An example of (a) would be [1, 5, 4, 5, 1, 1] -> [5, 5].
An example of (b) would be:
Stream.of("Bar", "FOO", "foo", "BAR", "Foo")
.max((s, t) -> s.toLowerCase().compareTo(t.toLowerCase()));
which you want to give [Foo, foo, Foo], rather than just FOO or Optional[FOO].
In both cases, there are clever ways to do it in just one pass. But these approaches are of dubious value because you would need to keep track of unnecessary information along the way. For example, if you start with [2, 0, 2, 2, 1, 6, 2], it would only be when you reach 6 that you would realise it was not necessary to track all the 2s.
I think the best approach is the obvious one; use max, and then iterate the items again putting all the ties into a collection of your choice. This will work for both (a) and (b).
If you'd rather rely on a library than the other answers here, StreamEx has a collector to do this.
Stream.of(1, 3, 5, 3, 2, 3, 5)
.collect(MoreCollectors.maxAll())
.forEach(System.out::println);
There's a version which takes a Comparator too for streams of items which don't have a natural ordering (i.e. don't implement Comparable).
System.out.println(
Stream.of(1, 3, 5, 3, 2, 3, 5)
.map(a->new Integer[]{a})
.reduce((a,b)->
a[0]==b[0]?
Stream.concat(Stream.of(a),Stream.of(b)).toArray() :
a[0]>b[0]? a:b
).get()
)
I was searching for a good answer on this question, but a tad more complex and couldn't find anything until I figured it out myself, which is why I'm posting if this helps anybody.
I have a list of Kittens.
Kitten is an object which has a name, age and gender. I had to return a list of all the youngest kittens.
For example:
So kitten list would contain kitten objects (k1, k2, k3, k4) and their ages would be (1, 2, 3, 1) accordingly. We want to return [k1, k4], because they are both the youngest. If only one youngest exists, the function should return [k1(youngest)].
Find the min value of the list (if it exists):
Optional<Kitten> minKitten = kittens.stream().min(Comparator.comparingInt(Kitten::getAge));
filter the list by the min value
return minKitten.map(value -> kittens.stream().filter(kitten -> kitten.getAge() == value.getAge())
.collect(Collectors.toList())).orElse(Collections.emptyList());
The following two lines will do it without implementing a separate comparator:
List<Integer> list = List.of(1, 3, 5, 3, 2, 3, 5);
list.stream().filter(i -> i == (list.stream().max(Comparator.comparingInt(i2 -> i2))).get()).forEach(System.out::println);