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Line 1: {{~~draft~~ task}} Calculate and show here a [[wp:Longest increasing subsequence\|longest increasing subsequence]] of the list: :<math>\{3, 2, 6, 4, 5, 1\}</math> Line 6: Note that a list may have more than one subsequence that is of the maximum length. {{Template:Strings}} ;Ref: # [http://www.youtube.com/watch?v=4fQJGoeW5VE Dynamic Programming #1: Longest Increasing Subsequence] on ~~Youtube~~YouTube # An efficient solution can be based on [[wp:Patience sorting\|Patience sorting]]. <br><br> =={{header\|11l}}== ~~An efficient solution is based on [[wp:Patience sorting\|Patience sorting]].~~ {{trans\|Python}} <syntaxhighlight lang="11l">F longest_increasing_subsequence(x) V n = x.len V P = [0] * n V M = [0] * (n + 1) V l = 0 L(i) 0 .< n V lo = 1 V hi = l L lo <= hi V mid = (lo + hi) I/ 2 I (x[M[mid]] < x[i]) lo = mid + 1 E hi = mid - 1 V newl = lo P[i] = M[newl - 1] M[newl] = i I (newl > l) l = newl [Int] s V k = M[l] L(i) (l - 1 .. 0).step(-1) s.append(x[k]) k = P[k] R reversed(s) L(d) [[3, 2, 6, 4, 5, 1], [0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15]] print(‘a L.I.S. of #. is #.’.format(d, longest_increasing_subsequence(d)))</syntaxhighlight> {{out}} <pre> a L.I.S. of [3, 2, 6, 4, 5, 1] is [2, 4, 5] a L.I.S. of [0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15] is [0, 2, 6, 9, 11, 15] </pre> =={{header\|360 Assembly}}== {{trans\|VBScript}} <syntaxhighlight lang="360asm">* Longest increasing subsequence 04/03/2017 LNGINSQ CSECT USING LNGINSQ,R13 base register B 72(R15) skip savearea DC 17F'0' savearea STM R14,R12,12(R13) save previous context ST R13,4(R15) link backward ST R15,8(R13) link forward LR R13,R15 set addressability LA R6,1 i=1 DO WHILE=(CH,R6,LE,=H'2') do i=1 to 2 IF CH,R6,EQ,=H'1' THEN if i=1 then MVC N,=AL2((A2-A1)/2) n=hbound(a1) MVC AA(64),A1 a=a1 ELSE , else MVC N,=AL2((AA-A2)/2) n=hbound(a2) MVC AA(64),A2 a=a2 ENDIF , endif MVC PG,=CL80': ' init buffer LA R2,AA-2 @a LH R3,N n BAL R14,PRINT print a MVC LL,=H'0' l=0 SR R7,R7 j=0 DO WHILE=(CH,R7,LE,N) do j=0 to n MVC LO,=H'1' lo=1 MVC HI,LL hi=l LH R4,LO lo DO WHILE=(CH,R4,LE,HI) do while lo<=hi LH R1,LO lo AH R1,HI lo+hi SRA R1,1 /2 STH R1,MIDDLE middle=(lo+hi)/2 SLA R1,1 2 LH R1,MM(R1) m(middle+1) SLA R1,1 2 LH R3,AA(R1) r3=a(m(middle+1)+1) LR R1,R7 j SLA R1,1 2 LH R4,AA(R1) r4=a(j+1) LH R2,MIDDLE middle IF CR,R3,LT,R4 THEN if a(m(middle+1)+1)<a(j+1) then LA R2,1(R2) middle+1 STH R2,LO lo=middle+1 ELSE , else BCTR R2,0 middle-1 STH R2,HI hi=middle-1 ENDIF , endif LH R4,LO lo ENDDO , end /while/ LH R10,LO newl=lo LR R1,R10 newl SLA R1,1 2 LH R3,MM-2(R1) m(newl) LR R1,R7 j SLA R1,1 2 STH R3,PP(R1) p(j+1)=m(newl) LR R1,R10 newl SLA R1,1 2 STH R7,MM(R1) m(newl+1)=j IF CH,R10,GT,LL if newl>l then STH R10,LL l=newl ENDIF , endif LA R7,1(R7) j++ ENDDO , enddo j LH R1,LL l SLA R1,1 2 LH R10,MM(R1) k=m(l+1) LH R7,LL j=l DO WHILE=(CH,R7,GE,=H'1') do j=l to 1 by -1 LR R1,R10 k SLA R1,1 2 LH R2,AA(R1) a(k+1) LR R1,R7 j SLA R1,1 2 STH R2,SS-2(R1) s(j)=a(k+1) LR R1,R10 k SLA R1,1 2 LH R10,PP(R1) k=p(k+1) BCTR R7,0 j-- ENDDO , enddo j MVC PG,=CL80'> ' init buffer LA R2,SS-2 @s LH R3,LL l BAL R14,PRINT print a LA R6,1(R6) i++ ENDDO , enddo i L R13,4(0,R13) restore previous savearea pointer LM R14,R12,12(R13) restore previous context XR R15,R15 rc=0 BR R14 exit PRINT LA R10,PG ---- print subroutine LA R10,2(R10) pgi=2 LA R7,1 j=1 DO WHILE=(CR,R7,LE,R3) do j=1 to nx LR R1,R7 j SLA R1,1 2 LH R1,0(R2,R1) x(j) XDECO R1,XDEC edit x(j) MVC 0(3,R10),XDEC+9 output x(j) LA R10,3(R10) pgi+=3 LA R7,1(R7) j++ ENDDO , enddo j XPRNT PG,L'PG print buffer BR R14 ---- return A1 DC H'3',H'2',H'6',H'4',H'5',H'1' A2 DC H'0',H'8',H'4',H'12',H'2',H'10',H'6',H'14' DC H'1',H'9',H'5',H'13',H'3',H'11',H'7',H'15' AA DS 32H a(32) PP DS 32H p(32) MM DS 32H m(32) SS DS 32H s(32) N DS H n LL DS H l LO DS H lo HI DS H hi MIDDLE DS H middle PG DS CL80 buffer XDEC DS CL12 temp for xdeco YREGS END LNGINSQ</syntaxhighlight> {{out}} <pre> : 3 2 6 4 5 1 > 2 4 5 : 0 8 4 12 2 10 6 14 1 9 5 13 3 11 7 15 > 0 2 6 9 11 15 </pre> =={{header\|AppleScript}}== {{Trans\|Phix}} … modified to return ''multiple'' co-longest sequences where found. It's not clear how equal values should be treated. Here the behaviour happens to be as in the demo code at the end. <syntaxhighlight lang="applescript">on longestIncreasingSubsequences(aList) script o property inputList : aList property m : {} -- End indices of identified subsequences. property p : {} -- 'Predecessor' indices for each point in each subsequence. property subsequence : {} -- Reconstructed longest sequence. end script -- Set m and p to lists of the same length as the input. Their initial contents don't matter! copy aList to o's m copy aList to o's p set bestLength to 0 repeat with i from 1 to (count o's inputList) -- Comments adapted from those in the Wikipedia article — as far as they can be understood! -- Binary search for the largest possible 'lo' ≤ bestLength such that inputList[m[lo]] ≤ inputList[i]. set lo to 1 set hi to bestLength repeat until (lo > hi) set mid to (lo + hi + 1) div 2 if (item (item mid of o's m) of o's inputList < item i of o's inputList) then set lo to mid + 1 else set hi to mid - 1 end if end repeat -- After searching, lo is 1 greater than the length of the longest prefix of inputList[i]. -- The predecessor of inputList[i] is the last index of the subsequence of length lo - 1. if (lo > 1) then set item i of o's p to item (lo - 1) of o's m set item lo of o's m to i -- If we found a subsequence longer than or the same length as any we've found yet, -- update bestLength and store the end index associated with it. if (lo > bestLength) then set bestLength to lo set bestEndIndices to {item bestLength of o's m} else if (lo = bestLength) then set end of bestEndIndices to item bestLength of o's m end if end repeat -- Reconstruct the longest increasing subsequence(s). set output to {} if (bestLength > 0) then repeat with k in bestEndIndices set o's subsequence to {} repeat bestLength times set beginning of o's subsequence to item k of o's inputList set k to item k of o's p end repeat set end of output to o's subsequence end repeat end if return output end longestIncreasingSubsequences -- Task code and other tests: local tests, output, input set tests to {{3, 2, 6, 4, 5, 1}, {0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15}, ¬ {9, 10, 11, 3, 8, 9, 6, 7, 4, 5}, {4, 5, 5, 6}, {5, 5}} set output to {} repeat with input in tests set end of output to {finds:longestIncreasingSubsequences(input's contents)} end repeat return output</syntaxhighlight> {{output}} <syntaxhighlight lang="applescript">{{finds:{{2, 4, 5}}}, {finds:{{0, 2, 6, 9, 11, 15}}}, {finds:{{9, 10, 11}, {3, 8, 9}, {3, 6, 7}, {3, 4, 5}}}, {finds:{{4, 5, 6}}}, {finds:{{5}, {5}}}}</syntaxhighlight> =={{header\|Arturo}}== <syntaxhighlight lang="rebol">lis: function [d][ l: new [[]] loop d 'num [ x: [] loop l 'seq [ if positive? size seq [ if and? num > last seq (size seq) > size x -> x: seq ] ] 'l ++ @[x ++ @[num]] ] result: [] loop l 'x [ if (size x) > size result -> result: x ] return result ] loop [ [3 2 6 4 5 1] [0 8 4 12 2 10 6 14 1 9 5 13 3 11 7 15] ] 'seq [ print ["LIS of" seq "=>" lis seq] ]</syntaxhighlight> {{out}} <pre>LIS of [3 2 6 4 5 1] => [3 4 5] LIS of [0 8 4 12 2 10 6 14 1 9 5 13 3 11 7 15] => [0 4 6 9 13 15]</pre> =={{header\|AutoHotkey}}== <syntaxhighlight lang="autohotkey">Lists := [[3,2,6,4,5,1], [0,8,4,12,2,10,6,14,1,9,5,13,3,11,7,15]] for k, v in Lists { D := LIS(v) MsgBox, % D[D.I].seq } LIS(L) { D := [] for i, v in L { D[i, "Length"] := 1, D[i, "Seq"] := v, D[i, "Val"] := v Loop, % i - 1 { if(D[A_Index].Val < v && D[A_Index].Length + 1 > D[i].Length) { D[i].Length := D[A_Index].Length + 1 D[i].Seq := D[A_Index].Seq ", " v if (D[i].Length > MaxLength) MaxLength := D[i].Length, D.I := i } } } return, D }</syntaxhighlight> '''Output:''' <pre>3, 4, 5 0, 4, 6, 9, 13, 15</pre> =={{header\|C}}== Using an array that doubles as linked list (more like reversed trees really). O(n) memory and O(n<sup>2</sup>) runtime. <syntaxhighlight lang="c">#include <stdio.h> #include <stdlib.h> struct node { int val, len; struct node next; }; void lis(int v, int len) { int i; struct node p, n = calloc(len, sizeof n); for (i = 0; i < len; i++) n[i].val = v[i]; for (i = len; i--; ) { // find longest chain that can follow n[i] for (p = n + i; p++ < n + len; ) { if (p->val > n[i].val && p->len >= n[i].len) { n[i].next = p; n[i].len = p->len + 1; } } } // find longest chain for (i = 0, p = n; i < len; i++) if (n[i].len > p->len) p = n + i; do printf(" %d", p->val); while ((p = p->next)); putchar('\n'); free(n); } int main(void) { int x[] = { 3, 2, 6, 4, 5, 1 }; int y[] = { 0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15 }; lis(x, sizeof(x) / sizeof(int)); lis(y, sizeof(y) / sizeof(int)); return 0; }</syntaxhighlight> {{out}} <pre> 3 4 5 0 4 6 9 13 15 </pre> =={{header\|C sharp}}== ===Recursive=== {{works with\|C sharp\|6}} <syntaxhighlight lang="csharp">using System; using System.Collections; using System.Collections.Generic; using System.Linq; public static class LIS { public static IEnumerable<T> FindRec<T>(IList<T> values, IComparer<T> comparer = null) => values == null ? throw new ArgumentNullException() : FindRecImpl(values, Sequence<T>.Empty, 0, comparer ?? Comparer<T>.Default).Reverse(); private static Sequence<T> FindRecImpl<T>(IList<T> values, Sequence<T> current, int index, IComparer<T> comparer) { if (index == values.Count) return current; if (current.Length > 0 && comparer.Compare(values[index], current.Value) <= 0) return FindRecImpl(values, current, index + 1, comparer); return Max( FindRecImpl(values, current, index + 1, comparer), FindRecImpl(values, current + values[index], index + 1, comparer) ); } private static Sequence<T> Max<T>(Sequence<T> a, Sequence<T> b) => a.Length < b.Length ? b : a; class Sequence<T> : IEnumerable<T> { public static readonly Sequence<T> Empty = new Sequence<T>(default(T), null); public Sequence(T value, Sequence<T> tail) { Value = value; Tail = tail; Length = tail == null ? 0 : tail.Length + 1; } public T Value { get; } public Sequence<T> Tail { get; } public int Length { get; } public static Sequence<T> operator +(Sequence<T> s, T value) => new Sequence<T>(value, s); public IEnumerator<T> GetEnumerator() { for (var s = this; s.Length > 0; s = s.Tail) yield return s.Value; } IEnumerator IEnumerable.GetEnumerator() => GetEnumerator(); } }</syntaxhighlight> ===Patience sorting=== {{works with\|C sharp\|7}} <syntaxhighlight lang="csharp">public static class LIS { public static T[] Find<T>(IList<T> values, IComparer<T> comparer = null) { if (values == null) throw new ArgumentNullException(); if (comparer == null) comparer = Comparer<T>.Default; var pileTops = new List<T>(); var pileAssignments = new int[values.Count]; for (int i = 0; i < values.Count; i++) { T element = values[i]; int pile = pileTops.BinarySearch(element, comparer); if (pile < 0) pile = ~pile; if (pile == pileTops.Count) pileTops.Add(element); else pileTops[pile] = element; pileAssignments[i] = pile; } T[] result = new T[pileTops.Count]; for (int i = pileAssignments.Length - 1, p = pileTops.Count - 1; p >= 0; i--) { if (pileAssignments[i] == p) result[p--] = values[i]; } return result; } public static void Main() { Console.WriteLine(string.Join(",", LIS.Find(new [] { 3, 2, 6, 4, 5, 1 }))); Console.WriteLine(string.Join(",", LIS.Find(new [] { 0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15 }))); } }</syntaxhighlight> {{out}} <pre> 2, 4, 5 0, 2, 6, 9, 11, 15</pre> =={{header\|C++}}== Patience sorting === C++11 === <syntaxhighlight lang="cpp">#include <vector> #include <list> #include <algorithm> #include <iostream> template <typename T> struct Node { T value; Node* prev_node; }; template <typename Container> Container lis(const Container& values) { using E = typename Container::value_type; using NodePtr = Node<E>; using ConstNodePtr = const NodePtr; std::vector<NodePtr> pileTops; std::vector<Node<E>> nodes(values.size()); // sort into piles auto cur_node = std::begin(nodes); for (auto cur_value = std::begin(values); cur_value != std::end(values); ++cur_value, ++cur_node) { auto node = &cur_node; node->value = cur_value; // lower_bound returns the first element that is not less than 'node->value' auto lb = std::lower_bound(pileTops.begin(), pileTops.end(), node, [](ConstNodePtr& node1, ConstNodePtr& node2) -> bool { return node1->value < node2->value; }); if (lb != pileTops.begin()) node->prev_node = std::prev(lb); if (lb == pileTops.end()) pileTops.push_back(node); else lb = node; } // extract LIS from piles // note that LIS length is equal to the number of piles Container result(pileTops.size()); auto r = std::rbegin(result); for (NodePtr node = pileTops.back(); node != nullptr; node = node->prev_node, ++r) r = node->value; return result; } template <typename Container> void show_lis(const Container& values) { auto&& result = lis(values); for (auto& r : result) { std::cout << r << ' '; } std::cout << std::endl; } int main() { show_lis(std::list<int> { 3, 2, 6, 4, 5, 1 }); show_lis(std::vector<int> { 0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15 }); }</syntaxhighlight> === C++98 === <syntaxhighlight lang="cpp">#include <vector> #include <list> #include <algorithm> #include <iostream> template <typename T> struct Node { T value; Node* prev_node; }; template <typename T> bool compare (const T& node1, const T& node2) { return node1->value < node2->value; } template <typename Container> Container lis(const Container& values) { typedef typename Container::value_type E; typedef typename Container::const_iterator ValueConstIter; typedef typename Container::iterator ValueIter; typedef Node<E>* NodePtr; typedef const NodePtr ConstNodePtr; typedef std::vector<Node<E> > NodeVector; typedef std::vector<NodePtr> NodePtrVector; typedef typename NodeVector::iterator NodeVectorIter; typedef typename NodePtrVector::iterator NodePtrVectorIter; std::vector<NodePtr> pileTops; std::vector<Node<E> > nodes(values.size()); // sort into piles NodeVectorIter cur_node = nodes.begin(); for (ValueConstIter cur_value = values.begin(); cur_value != values.end(); ++cur_value, ++cur_node) { NodePtr node = &cur_node; node->value = cur_value; // lower_bound returns the first element that is not less than 'node->value' NodePtrVectorIter lb = std::lower_bound(pileTops.begin(), pileTops.end(), node, compare<NodePtr>); if (lb != pileTops.begin()) node->prev_node = (lb - 1); if (lb == pileTops.end()) pileTops.push_back(node); else lb = node; } // extract LIS from piles // note that LIS length is equal to the number of piles Container result(pileTops.size()); std::reverse_iterator<ValueIter> r = std::reverse_iterator<ValueIter>(result.rbegin()); for (NodePtr node = pileTops.back(); node; node = node->prev_node, ++r) r = node->value; return result; } template <typename Container> void show_lis(const Container& values) { const Container& result = lis(values); for (typename Container::const_iterator it = result.begin(); it != result.end(); ++it) { std::cout << it << ' '; } std::cout << std::endl; } int main() { const int arr1[] = { 3, 2, 6, 4, 5, 1 }; const int arr2[] = { 0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15 }; std::vector<int> vec1(arr1, arr1 + sizeof(arr1) / sizeof(arr1[0])); std::vector<int> vec2(arr2, arr2 + sizeof(arr2) / sizeof(arr2[0])); show_lis(vec1); show_lis(vec2); }</syntaxhighlight> {{out}} <pre>2 4 5 0 2 6 9 11 15 </pre> =={{header\|Clojure}}== Implementation using the Patience Sort approach. The elements (''newelem'') put on a pile combine the "card" with a reference to the top of the previous stack, as per the algorithm. The combination is done using ''cons'', so what gets put on a pile is a list -- a descending subsequence. <syntaxhighlight lang="clojure">(defn place [piles card] (let [[les gts] (->> piles (split-with #(<= (ffirst %) card))) newelem (cons card (->> les last first)) modpile (cons newelem (first gts))] (concat les (cons modpile (rest gts))))) (defn a-longest [cards] (let [piles (reduce place '() cards)] (->> piles last first reverse))) (println (a-longest [3 2 6 4 5 1])) (println (a-longest [0 8 4 12 2 10 6 14 1 9 5 13 3 11 7 15]))</syntaxhighlight> {{out}} <syntaxhighlight lang="text">(2 4 5) (0 2 6 9 11 15)</syntaxhighlight> =={{header\|Common Lisp}}== ===Common Lisp: Using the method in the video=== Slower and more memory usage compared to the patience sort method. <syntaxhighlight lang="lisp">(defun longest-increasing-subseq (list) (let ((subseqs nil)) (dolist (item list) (let ((longest-so-far (longest-list-in-lists (remove-if-not #'(lambda (l) (> item (car l))) subseqs)))) (push (cons item longest-so-far) subseqs))) (reverse (longest-list-in-lists subseqs)))) (defun longest-list-in-lists (lists) (let ((longest nil) (longest-len 0)) (dolist (list lists) (let ((len (length list))) (when (> len longest-len) (setf longest list longest-len len)))) longest)) (dolist (l (list (list 3 2 6 4 5 1) (list 0 8 4 12 2 10 6 14 1 9 5 13 3 11 7 15))) (format t "~A~%" (longest-increasing-subseq l))))</syntaxhighlight> {{out}} <pre>(2 4 5) (0 2 6 9 11 15)</pre> ===Common Lisp: Using the Patience Sort approach=== This is 5 times faster and and uses a third of the memory compared to the approach in the video. <syntaxhighlight lang="lisp">(defun lis-patience-sort (input-list) (let ((piles nil)) (dolist (item input-list) (setf piles (insert-item item piles))) (reverse (caar (last piles))))) (defun insert-item (item piles) (let ((not-found t)) (loop while not-found for pile in piles and prev = nil then pile and i from 0 do (when (<= item (caar pile)) (setf (elt piles i) (push (cons item (car prev)) (elt piles i)) not-found nil))) (if not-found (append piles (list (list (cons item (caar (last piles)))))) piles))) (dolist (l (list (list 3 2 6 4 5 1) (list 0 8 4 12 2 10 6 14 1 9 5 13 3 11 7 15))) (format t "~A~%" (lis-patience-sort l)))</syntaxhighlight> {{out}} <pre>(2 4 5) (0 2 6 9 11 15)</pre> ===Common Lisp: Using the Patience Sort approach (alternative)=== This is a different version of the code above. <syntaxhighlight lang="lisp">(defun insert-item (item piles) (multiple-value-bind (i prev) (do* ((prev nil (car x)) (x piles (cdr x)) (i 0 (1+ i))) ((or (null x) (<= item (caaar x))) (values i prev))) (if (= i (length piles)) (append piles (list (list (cons item (caar (last piles)))))) (progn (push (cons item (car prev)) (elt piles i)) piles)))) (defun longest-inc-seq (input) (do* ((piles nil (insert-item (car x) piles)) (x input (cdr x))) ((null x) (reverse (caar (last piles)))))) (dolist (l (list (list 3 2 6 4 5 1) (list 0 8 4 12 2 10 6 14 1 9 5 13 3 11 7 15))) (format t "~A~%" (longest-inc-seq l)))</syntaxhighlight> {{out}} <pre>(2 4 5) (0 2 6 9 11 15)</pre> =={{header\|D}}== ===Simple Version=== {{trans\|Haskell}} Uses the second powerSet function from the Power Set Task. <syntaxhighlight lang="d">import std.stdio, std.algorithm, power_set2; T[] lis(T)(T[] items) pure nothrow { //return items.powerSet.filter!isSorted.max!q{ a.length }; return items .powerSet .filter!isSorted .minPos!q{ a.length > b.length } .front; } void main() { [3, 2, 6, 4, 5, 1].lis.writeln; [0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15].lis.writeln; }</syntaxhighlight> {{out}} <pre>[2, 4, 5] [0, 2, 6, 9, 11, 15]</pre> ===Patience sorting=== {{trans\|Python}} From the second Python entry, using the Patience sorting method. <syntaxhighlight lang="d">import std.stdio, std.algorithm, std.array; /// Return one of the Longest Increasing Subsequence of /// items using patience sorting. T[] lis(T)(in T[] items) pure nothrow if (__traits(compiles, T.init < T.init)) out(result) { assert(result.length <= items.length); assert(result.isSorted); assert(result.all!(x => items.canFind(x))); } body { if (items.empty) return null; static struct Node { T val; Node* back; } auto pile = [[new Node(items[0])]]; OUTER: foreach (immutable di; items[1 .. $]) { foreach (immutable j, ref pj; pile) if (pj[$ - 1].val > di) { pj ~= new Node(di, j ? pile[j - 1][$ - 1] : null); continue OUTER; } pile ~= [new Node(di, pile[$ - 1][$ - 1])]; } T[] result; for (auto ptr = pile[$ - 1][$ - 1]; ptr != null; ptr = ptr.back) result ~= ptr.val; result.reverse(); return result; } void main() { foreach (d; [[3,2,6,4,5,1], [0,8,4,12,2,10,6,14,1,9,5,13,3,11,7,15]]) d.lis.writeln; }</syntaxhighlight> The output is the same. ===Faster Version=== {{trans\|Java}} With some more optimizations. <syntaxhighlight lang="d">import std.stdio, std.algorithm, std.range, std.array; T[] lis(T)(in T[] items) pure nothrow if (__traits(compiles, T.init < T.init)) out(result) { assert(result.length <= items.length); assert(result.isSorted); assert(result.all!(x => items.canFind(x))); } body { if (items.empty) return null; static struct Node { T value; Node* pointer; } Node[] pileTops; auto nodes = minimallyInitializedArray!(Node[])(items.length); // Sort into piles. foreach (idx, x; items) { auto node = &nodes[idx]; node.value = x; immutable i = pileTops.length - pileTops.assumeSorted!q{a.value < b.value} .upperBound(node) .length; if (i != 0) node.pointer = pileTops[i - 1]; if (i != pileTops.length) pileTops[i] = node; else pileTops ~= node; } // Extract LIS from nodes. size_t count = 0; for (auto n = pileTops[$ - 1]; n != null; n = n.pointer) count++; auto result = minimallyInitializedArray!(T[])(count); for (auto n = pileTops[$ - 1]; n != null; n = n.pointer) result[--count] = n.value; return result; } void main() { foreach (d; [[3,2,6,4,5,1], [0,8,4,12,2,10,6,14,1,9,5,13,3,11,7,15]]) d.writeln; }</syntaxhighlight> The output is the same. =={{header\|Déjà Vu}}== {{trans\|Python}} <syntaxhighlight lang="dejavu">in-pair: if = :nil dup: false drop else: @in-pair &> swap &< dup get-last lst: get-from lst -- len lst lis-sub pile i di: for j range 0 -- len pile: local :pj get-from pile j if > &< get-last pj di: push-to pj & di if j get-last get-from pile -- j :nil return push-to pile [ & di get-last get-last pile ] lis d: local :pile [ [ & get-from d 0 :nil ] ] for i range 1 -- len d: lis-sub pile i get-from d i [ for in-pair get-last get-last pile ] !. lis [ 3 2 6 4 5 1 ] !. lis [ 0 8 4 12 2 10 6 14 1 9 5 13 3 11 7 15 ] </syntaxhighlight> {{out}} <pre>[ 2 4 5 ] [ 0 2 6 9 11 15 ]</pre> =={{header\|EasyLang}}== {{trans\|Ring}} <syntaxhighlight> func[] lis x[] . n = len x[] len p[] n len m[] n for i to n lo = 1 hi = lng while lo <= hi mid = (lo + hi) div 2 if x[m[mid]] < x[i] lo = mid + 1 else hi = mid - 1 . . if lo > 1 p[i] = m[lo - 1] . m[lo] = i if lo > lng lng = lo . . len res[] lng if lng > 0 k = m[lng] for i = lng downto 1 res[i] = x[k] k = p[k] . . return res[] . tests[][] = [ [ 3 2 6 4 5 1 ] [ 0 8 4 12 2 10 6 14 1 9 5 13 3 11 7 15 ] ] for x to len tests[][] print lis tests[x][] . </syntaxhighlight> {{out}} <pre> [ 2 4 5 ] [ 0 2 6 9 11 15 ] </pre> =={{header\|Elixir}}== {{trans\|Erlang}} ===Naive version=== very slow <syntaxhighlight lang="elixir">defmodule Longest_increasing_subsequence do # Naive implementation def lis(l) do (for ss <- combos(l), ss == Enum.sort(ss), do: ss) \|> Enum.max_by(fn ss -> length(ss) end) end defp combos(l) do Enum.reduce(1..length(l), [[]], fn k, acc -> acc ++ (combos(k, l)) end) end defp combos(1, l), do: (for x <- l, do: [x]) defp combos(k, l) when k == length(l), do: [l] defp combos(k, [h\|t]) do (for subcombos <- combos(k-1, t), do: [h \| subcombos]) ++ combos(k, t) end end IO.inspect Longest_increasing_subsequence.lis([3,2,6,4,5,1]) IO.inspect Longest_increasing_subsequence.lis([0,8,4,12,2,10,6,14,1,9,5,13,3,11,7,15])</syntaxhighlight> {{out}} <pre> [3, 4, 5] [0, 4, 6, 9, 13, 15] </pre> ===Patience sort version=== <syntaxhighlight lang="elixir">defmodule Longest_increasing_subsequence do # Patience sort implementation def patience_lis(l), do: patience_lis(l, []) defp patience_lis([h \| t], []), do: patience_lis(t, [[{h,[]}]]) defp patience_lis([h \| t], stacks), do: patience_lis(t, place_in_stack(h, stacks, [])) defp patience_lis([], []), do: [] defp patience_lis([], stacks), do: get_previous(stacks) \|> recover_lis \|> Enum.reverse defp place_in_stack(e, [stack = [{h,_} \| _] \| tstacks], prevstacks) when h > e do prevstacks ++ [[{e, get_previous(prevstacks)} \| stack] \| tstacks] end defp place_in_stack(e, [stack \| tstacks], prevstacks) do place_in_stack(e, tstacks, prevstacks ++ [stack]) end defp place_in_stack(e, [], prevstacks) do prevstacks ++ [[{e, get_previous(prevstacks)}]] end defp get_previous(stack = [_\|_]), do: hd(List.last(stack)) defp get_previous([]), do: [] defp recover_lis({e, prev}), do: [e \| recover_lis(prev)] defp recover_lis([]), do: [] end IO.inspect Longest_increasing_subsequence.patience_lis([3,2,6,4,5,1]) IO.inspect Longest_increasing_subsequence.patience_lis([0,8,4,12,2,10,6,14,1,9,5,13,3,11,7,15])</syntaxhighlight> {{out}} <pre> [2, 4, 5] [0, 2, 6, 9, 11, 15] </pre> =={{header\|Erlang}}== Four implementations: - Naive version{{trans\|Haskell}} - Memoization - Patience sort version - Patience sort version2 Function ''combos'' is copied from [http://panduwana.wordpress.com/2010/04/21/combination-in-erlang/ panduwana blog]. Function ''maxBy'' is copied from [http://stackoverflow.com/a/4762387/4162959 Hynek -Pichi- Vychodil's answer]. Function ''memo'' and ''patience2'' by [https://www.linkedin.com/in/find-roman/ Roman Rabinovich]. <syntaxhighlight lang="erlang"> -module(longest_increasing_subsequence). -export([test_naive/0, test_memo/0, test_patience/0, test_patience2/0, test_compare/1]). % *********************************************** % Interface to test the implementation % ********************************************** test_compare(N) when N =< 20 -> Funs = [ {"Naive", fun lis/1}, {"Memo", fun memo/1}, {"Patience", fun patience_lis/1}, {"Patience2", fun patience2/1} ], do_compare(Funs, N); test_compare(N) when N =< 500 -> Funs = [ {"Memo", fun memo/1}, {"Patience", fun patience_lis/1}, {"Patience2", fun patience2/1} ], do_compare(Funs, N); test_compare(N) -> Funs = [ {"Patience", fun patience_lis/1}, {"Patience2", fun patience2/1} ], do_compare(Funs, N). do_compare(Funs, N) -> List = [rand:uniform(1000) \|\| _ <- lists:seq(1,N)], Results = [{Name, timer:tc(fun() -> F(List) end)} \|\| {Name,F} <- Funs], Times = [{Name, Time} \|\| {Name, {Time, _Result}} <- Results], io:format("Result Times: ~p~n", [Times]). test_naive() -> test_gen(fun lis/1). test_memo() -> test_gen(fun memo/1). test_patience() -> test_gen(fun patience_lis/1). test_patience2() -> test_gen(fun patience2/1). test_gen(F) -> show_result(F([3,2,6,4,5,1])), show_result(F([0,8,4,12,2,10,6,14,1,9,5,13,3,11,7,15])). show_result(Res) -> io:format("~w\n", [Res]). % ********************************************** % ********************************************** % Naive implementation % ********************************************** lis(L) -> maxBy( fun(SS) -> length(SS) end, [ lists:usort(SS) \|\| SS <- combos(L), SS == lists:sort(SS)] ). % ********************************************** % Copied from http://stackoverflow.com/a/4762387/4162959 % ********************************************** maxBy(F, L) -> element( 2, lists:max([ {F(X), X} \|\| X <- L]) ). % ********************************************** % Copied from https://panduwana.wordpress.com/2010/04/21/combination-in-erlang/ % ********************************************** combos(L) -> lists:foldl( fun(K, Acc) -> Acc++(combos(K, L)) end, [[]], lists:seq(1, length(L)) ). combos(1, L) -> [[X] \|\| X <- L]; combos(K, L) when K == length(L) -> [L]; combos(K, [H\|T]) -> [[H \| Subcombos] \|\| Subcombos <- combos(K-1, T)] ++ (combos(K, T)). % ********************************************** % ********************************************** % Memoization implementation, Roman Rabinovich % ********************************************** memo(S) -> put(test, #{}), memo(S, -1). memo([], _) -> []; memo([H \| Tail] = S, Min) when H > Min -> case maps:get({S,Min}, get(test), undefined) of undefined -> L1 = [H \| memo(Tail, H)], L2 = memo(Tail, Min), case length(L1) >= length(L2) of true -> Map = get(test), put(test, Map#{{S, Min} => L1}), L1; _ -> Map = get(test), put(test, Map#{{S, Min} => L2}), L2 end; X -> X end; memo([_\|Tail], Min) -> memo(Tail, Min). % ********************************************** % ********************************************** % Patience sort implementation % ********************************************** patience_lis(L) -> patience_lis(L, []). patience_lis([H \| T], Stacks) -> NStacks = case Stacks of [] -> [[{H,[]}]]; _ -> place_in_stack(H, Stacks, []) end, patience_lis(T, NStacks); patience_lis([], Stacks) -> case Stacks of [] -> []; [_\|_] -> lists:reverse( recover_lis( get_previous(Stacks) ) ) end. place_in_stack(E, [Stack = [{H,_} \| _] \| TStacks], PrevStacks) when H > E -> PrevStacks ++ [[{E, get_previous(PrevStacks)} \| Stack] \| TStacks]; place_in_stack(E, [Stack = [{H,_} \| _] \| TStacks], PrevStacks) when H =< E -> place_in_stack(E, TStacks, PrevStacks ++ [Stack]); place_in_stack(E, [], PrevStacks)-> PrevStacks ++ [[{E, get_previous(PrevStacks)}]]. get_previous(Stack = [_\|_]) -> hd(lists:last(Stack)); get_previous([]) -> []. recover_lis({E,Prev}) -> [E\|recover_lis(Prev)]; recover_lis([]) -> []. % ********************************************** % ********************************************** % Patience2 by Roman Rabinovich, improved performance over above % ********************************************** patience2([]) -> []; patience2([H\|L]) -> Piles = [[{H, undefined}]], patience2(L, Piles, []). patience2([], Piles, _) -> get_seq(lists:reverse(Piles)); patience2([H\|T], [[{PE,_}\|_Rest] = Pile\| Piles], PrevPiles) when H =< PE -> case PrevPiles of [] -> patience2(T, [[{H, undefined}\|Pile]\|Piles], []); [[{K,_}\|_]\|_] -> patience2(T, lists:reverse(PrevPiles) ++ [[{H, K}\|Pile]\|Piles], []) end; patience2([H\|_T] = L, [[{PE,_}\|_Rest] = Pile\| Piles], PrevPiles) when H > PE -> patience2(L, Piles, [Pile\|PrevPiles]); patience2([H\|T], [], [[{K,_}\|_]\|_]=PrevPiles) -> patience2(T, lists:reverse([[{H,K}]\|PrevPiles]), []). get_seq([]) -> []; get_seq([[{K,P}\|_]\|Rest]) -> get_seq(P, Rest, [K]). get_seq(undefined, [], Seq) -> Seq; get_seq(K, [Pile\|Rest], Seq) -> case lists:keyfind(K, 1, Pile) of undefined -> get_seq(K, Rest, Seq); {K, P} -> get_seq(P, Rest, [K\|Seq]) end. % ************************************************ </syntaxhighlight> Output naive: <pre> [3,4,5] [0,4,6,9,13,15] </pre> Output memoization: <pre> [3,4,5] [0,4,6,9,13,15] </pre> Output patience: <pre> [2,4,5] [0,2,6,9,11,15] </pre> Output patience2: <pre> [2,4,5] [0,2,6,9,11,15] </pre> =={{header\|FreeBASIC}}== <syntaxhighlight lang="vb">Sub Lis(arr() As Integer) Dim As Integer lb = Lbound(arr), ub = Ubound(arr) Dim As Integer i, lo, hi, mitad, newl, l = 0 Dim As Integer p(ub), m(ub) For i = lb To ub lo = 1 hi = l Do While lo <= hi mitad = Int((lo+hi)/2) If arr(m(mitad)) < arr(i) Then lo = mitad + 1 Else hi = mitad - 1 End If Loop newl = lo p(i) = m(newl-1) m(newl) = i If newL > l Then l = newl Next i Dim As Integer res(l) Dim As Integer k = m(l) For i = l-1 To 0 Step - 1 res(i) = arr(k) k = p(k) Next i For i = Lbound(res) To Ubound(res)-1 Print res(i); " "; Next i End Sub Dim As Integer arrA(5) => {3,2,6,4,5,1} Lis(arrA()) Print Dim As Integer arrB(15) => {0,8,4,12,2,10,6,14,1,9,5,13,3,11,7,15} Lis(arrB()) Sleep</syntaxhighlight> {{out}} <pre>2 4 5 0 2 6 9 11 15</pre> =={{header\|Go}}== Patience sorting <syntaxhighlight lang="go">package main import ( "fmt" "sort" ) type Node struct { val int back Node } func lis (n []int) (result []int) { var pileTops []Node // sort into piles for _, x := range n { j := sort.Search(len(pileTops), func (i int) bool { return pileTops[i].val >= x }) node := &Node{ x, nil } if j != 0 { node.back = pileTops[j-1] } if j != len(pileTops) { pileTops[j] = node } else { pileTops = append(pileTops, node) } } if len(pileTops) == 0 { return []int{} } for node := pileTops[len(pileTops)-1]; node != nil; node = node.back { result = append(result, node.val) } // reverse for i := 0; i < len(result)/2; i++ { result[i], result[len(result)-i-1] = result[len(result)-i-1], result[i] } return } func main() { for _, d := range [][]int{{3, 2, 6, 4, 5, 1}, {0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15}} { fmt.Printf("an L.I.S. of %v is %v\n", d, lis(d)) } }</syntaxhighlight> {{out}} <pre>an L.I.S. of [3 2 6 4 5 1] is [2 4 5] an L.I.S. of [0 8 4 12 2 10 6 14 1 9 5 13 3 11 7 15] is [0 2 6 9 11 15]</pre> =={{header\|Haskell}}== ===Naive implementation=== <syntaxhighlight lang="haskell">import Data.Ord ( comparing ) import Data.List ( maximumBy, subsequences ) import Data.List.Ordered ( isSorted, nub ) lis :: Ord a => [a] -> [a] lis = maximumBy (comparing length) . map nub . filter isSorted . subsequences -- longest <-- unique <-- increasing <-- all main = do print $ lis [3,2,6,4,5,1] print $ lis [0,8,4,12,2,10,6,14,1,9,5,13,3,11,7,15] print $ lis [1,1,1,1]</syntaxhighlight> {{out}} <pre>[2,4,5] [0,2,6,9,11,15] [1]</pre> ===Patience sorting=== <syntaxhighlight lang="haskell">{-# LANGUAGE FlexibleContexts, UnicodeSyntax #-} module Main (main, lis) where import Control.Monad.ST ( ST, runST ) import Control.Monad ( (>>=), (=<<), foldM ) import Data.Array.ST ( Ix, STArray, readArray, writeArray, newArray ) import Data.Array.MArray ( MArray ) infix 4 ≡ (≡) :: Eq α ⇒ α → α → Bool (≡) = (==) (∘) = (.) lis ∷ Ord α ⇒ [α] → [α] lis xs = runST $ do let lxs = length xs pileTops ← newSTArray (min 1 lxs , lxs) [] i ← foldM (stack pileTops) 0 xs readArray pileTops i >>= return ∘ reverse stack ∷ (Integral ι, Ord ε, Ix ι, MArray α [ε] μ) ⇒ α ι [ε] → ι → ε → μ ι stack piles i x = do j ← bsearch piles x i writeArray piles j ∘ (x:) =<< if j ≡ 1 then return [] else readArray piles (j-1) return $ if j ≡ i+1 then i+1 else i bsearch ∷ (Integral ι, Ord ε, Ix ι, MArray α [ε] μ) ⇒ α ι [ε] → ε → ι → μ ι bsearch piles x = go 1 where go lo hi \| lo > hi = return lo \| otherwise = do (y:_) ← readArray piles mid if y < x then go (succ mid) hi else go lo (pred mid) where mid = (lo + hi) `div` 2 newSTArray ∷ Ix ι ⇒ (ι,ι) → ε → ST σ (STArray σ ι ε) newSTArray = newArray main ∷ IO () main = do print $ lis [3, 2, 6, 4, 5, 1] print $ lis [0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15] print $ lis [1, 1, 1, 1]</syntaxhighlight> {{out}} <pre>[2,4,5] [0,2,6,9,11,15] [1]</pre> =={{header\|Icon}} and {{header\|Unicon}}== The following works in both languages: <syntaxhighlight lang="unicon">procedure main(A) every writes((!lis(A)\|\|" ") \| "\n") end procedure lis(A) r := [A[1]] \| fail every (put(pt := [], [v := !A]), p := !pt) do if put(p, p[-1] < v) then r := (p > r, p) else p[-1] := (p[-2] < v) return r end</syntaxhighlight> Sample runs: <pre> ->lis 3 2 6 4 5 1 3 4 5 ->lis 0 8 4 12 2 10 6 14 1 9 5 13 3 11 7 15 0 4 6 9 11 15 -> </pre> =={{header\|J}}== These examples are simple enough for brute force to be reasonable: <syntaxhighlight lang="j">increasing=: (-: /:~)@#~"1 #:@i.@^~&2@# longestinc=: ] #~ [: (#~ ([: (= >./) +/"1)) #:@I.@increasing</syntaxhighlight> In other words: consider all 2^n bitmasks of length n, and select those which strictly select increasing sequences. Find the length of the longest of these and use the masks of that length to select from the original sequence. Example use: <syntaxhighlight lang="j"> longestinc 3,2,6,4,5,1 2 4 5 3 4 5 longestinc 0,8,4,12,2,10,6,14,1,9,5,13,3,11,7,15 0 2 6 9 11 15 0 2 6 9 13 15 0 4 6 9 11 15 0 4 6 9 13 15</syntaxhighlight> =={{header\|Java}}== A solution based on patience sorting, except that it is not necessary to keep the whole pile, only the top (in solitaire, bottom) of the pile, along with pointers from each "card" to the top of its "previous" pile. <~~lang~~syntaxhighlight lang="java">import java.util.; public class LIS { Line 34 ⟶ 1,475: // extract LIS from nodes List<E> result = new ArrayList<E>(); for (Node<E> node = ~~pileTops.get(~~pileTops.size()~~-1);~~ ~~node !~~== ~~null;~~0 ~~node~~? =null ~~node~~: pileTops.~~pointer~~get(pileTops.size()-1); node != null; node = node.pointer) result.add(node.value); Collections.reverse(result); Line 52 ⟶ 1,494: System.out.printf("an L.I.S. of %s is %s\n", d, lis(d)); } }</~~lang~~syntaxhighlight> {{out}} <pre>an L.I.S. of [3, 2, 6, 4, 5, 1] is [2, 4, 5] an L.I.S. of [0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15] is [0, 2, 6, 9, 11, 15]</pre> =={{header\|JavaScript}}== <syntaxhighlight lang="javascript">function getLis(input) { if (input.length === 0) { return []; } var lisLenPerIndex = []; let max = { index: 0, length: 1 }; for (var i = 0; i < input.length; i++) { lisLenPerIndex[i] = 1; for (var j = i - 1; j >= 0; j--) { if (input[i] > input[j] && lisLenPerIndex[j] >= lisLenPerIndex[i]) { var length = lisLenPerIndex[i] = lisLenPerIndex[j] + 1; if (length > max.length) { max = { index: i, length }; } } } } var lis = [input[max.index]]; for (var i = max.index; i >= 0 && max.length !== 0; i--) { if (input[max.index] > input[i] && lisLenPerIndex[i] === max.length - 1) { lis.unshift(input[i]); max.length--; } } return lis; } console.log(getLongestIncreasingSubsequence([0, 7, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15])); console.log(getLongestIncreasingSubsequence([3, 2, 6, 4, 5, 1])); </syntaxhighlight> {{out}} <pre> [ 0, 2, 6, 9, 11, 15 ] [ 2, 4, 5 ] </pre> ===Patience sorting=== <syntaxhighlight lang="javascript">function getLIS(input) { if (input.length === 0) { return 0; } const piles = [input[0]]; for (let i = 1; i < input.length; i++) { const leftPileIdx = binarySearch(piles, input[i]); if (leftPileIdx !== -1) { piles[leftPileIdx] = input[i]; } else { piles.push(input[i]); } } return piles.length; } function binarySearch(arr, target) { let lo = 0; let hi = arr.length - 1; while (lo <= hi) { const mid = lo + Math.floor((hi - lo) / 2); if (arr[mid] >= target) { hi = mid - 1; } else { lo = mid + 1; } } return lo < arr.length ? lo : -1; } console.log(getLongestIncreasingSubsequence([0, 7, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15])); console.log(getLongestIncreasingSubsequence([3, 2, 6, 4, 5, 1])); </syntaxhighlight> {{out}} <pre> [ 0, 2, 6, 9, 11, 15 ] [ 2, 4, 5 ] </pre> =={{header\|jq}}== {{works with\|jq\|1.4}} Use the patience sorting method to find a longest (strictly) increasing subsequence. '''Generic functions:''' Recent versions of jq have functions that obviate the need for the two generic functions defined in this subsection. <syntaxhighlight lang="jq">def until(cond; update): def _until: if cond then . else (update \| _until) end; try _until catch if .== "break" then empty else . end; # binary search for insertion point def bsearch(target): . as $in \| [0, length-1] # [low, high] \| until(.[0] > .[1]; .[0] as $low \| .[1] as $high \| ($low + ($high - $low) / 2 \| floor) as $mid \| if $in[$mid] >= target then .[1] = $mid - 1 else .[0] = $mid + 1 end ) \| .[0];</syntaxhighlight> '''lis:''' <syntaxhighlight lang="jq">def lis: # Helper function: # given a stream, produce an array of the items in reverse order: def reverse(stream): reduce stream as $i ([]; [$i] + .); # put the items into increasing piles using the structure: # NODE = {"val": value, "back": NODE} reduce .[] as $x ( []; # array of NODE # binary search for the appropriate pile (map(.val) \| bsearch($x)) as $i \| setpath([$i]; {"val": $x, "back": (if $i > 0 then .[$i-1] else null end) }) ) \| .[length - 1] \| reverse( recurse(.back) \| .val ) ; </syntaxhighlight> '''Examples:''' <syntaxhighlight lang="jq">( [3,2,6,4,5,1], [0,8,4,12,2,10,6,14,1,9,5,13,3,11,7,15] ) \| lis</syntaxhighlight> {{out}} <syntaxhighlight lang="sh">$ jq -c -n -f lis.jq [2,4,5] [0,2,6,9,11,15] </syntaxhighlight> =={{header\|Julia}}== {{works with\|Julia\|0.6}} <syntaxhighlight lang="julia"> function lis(arr::Vector) if length(arr) == 0 return copy(arr) end L = Vector{typeof(arr)}(length(arr)) L[1] = [arr[1]] for i in 2:length(arr) nextL = [] for j in 1:i if arr[j] < arr[i] && length(L[j]) ≥ length(nextL) nextL = L[j] end end L[i] = vcat(nextL, arr[i]) end return L[indmax(length.(L))] end @show lis([3, 2, 6, 4, 5, 1]) @show lis([0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15])</syntaxhighlight> {{out}} <pre>lis([3, 2, 6, 4, 5, 1]) = [2, 4, 5] lis([0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15]) = [0, 2, 6, 9, 11, 15]</pre> =={{header\|Kotlin}}== Uses the algorithm in the Wikipedia L.I.S. article: <syntaxhighlight lang="scala">// version 1.1.0 fun longestIncreasingSubsequence(x: IntArray): IntArray = when (x.size) { 0 -> IntArray(0) 1 -> x else -> { val n = x.size val p = IntArray(n) val m = IntArray(n + 1) var len = 0 for (i in 0 until n) { var lo = 1 var hi = len while (lo <= hi) { val mid = Math.ceil((lo + hi) / 2.0).toInt() if (x[m[mid]] < x[i]) lo = mid + 1 else hi = mid - 1 } val newLen = lo p[i] = m[newLen - 1] m[newLen] = i if (newLen > len) len = newLen } val s = IntArray(len) var k = m[len] for (i in len - 1 downTo 0) { s[i] = x[k] k = p[k] } s } } fun main(args: Array<String>) { val lists = listOf( intArrayOf(3, 2, 6, 4, 5, 1), intArrayOf(0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15) ) lists.forEach { println(longestIncreasingSubsequence(it).asList()) } }</syntaxhighlight> {{out}} <pre> [2, 4, 5] [0, 2, 6, 9, 11, 15] </pre> =={{header\|Lua}}== <syntaxhighlight lang="lua">function buildLIS(seq) local piles = { { {table.remove(seq, 1), nil} } } while #seq>0 do local x=table.remove(seq, 1) for j=1,#piles do if piles[j][#piles[j]][1]>x then table.insert(piles[j], {x, (piles[j-1] and #piles[j-1])}) break elseif j==#piles then table.insert(piles, {{x, #piles[j]}}) end end end local t={} table.insert(t, piles[#piles][1][1]) local p=piles[#piles][1][2] for i=#piles-1,1,-1 do table.insert(t, piles[i][p][1]) p=piles[i][p][2] end table.sort(t) print(unpack(t)) end buildLIS({3,2,6,4,5,1}) buildLIS({0,8,4,12,2,10,6,14,1,9,5,13,3,11,7,15}) </syntaxhighlight> {{out}} <pre>2 4 5 0 2 6 9 11 15 </pre> =={{header\|M2000 Interpreter}}== ===Using Stack objects in an array=== stack:=stackitem(L(i)), ! stack(L(j)) returns a refence to a new stack object, with the first item on L(i) (which is a reference to stack object) and merge using ! the copy of L(j) stack. <syntaxhighlight lang="m2000 interpreter"> Module LIS_example { Function LIS { LD=Stack.Size-1 dim L(0 to LD) For i=0 to LD : Read V: L(i):=Stack:=V:next M=1 M1=LD for i=LD-1 to 0 for j=LD to i+1 if stackitem(L(i))<stackitem(L(j)) then if len(L(i))<=len(L(j)) then L(i) =stack:=stackitem(L(i)), ! stack(L(j)) end if next if len(L(i))>=M then M1=i:M=Len(L(i)) next =L(M1) } Const seq$="sequence", subseq$="Longest increasing subsequence" Document doc$ Disp(seq$, Stack:=3,2,6,4,5,1) Disp(subseq$, Lis(3,2,6,4,5,1)) Disp(seq$, Stack:=0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15) Disp(subseq$, LIS(0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15)) Print #-2,Doc$ Clipboard Doc$ Sub Disp(title$, m) local n=each(m), s$ while n s$+=", "+str$(stackitem(n),"") end while s$=trim$(mid$(s$, 2)) Doc$=title$+": "+s$+{ } End Sub } LIS_example </syntaxhighlight> ===Using arrays in an array=== <syntaxhighlight lang="m2000 interpreter"> Module LIS_example { Function LIS { LD=Stack.Size-1 dim L(0 to LD) For i=0 to LD : Read V: L(i):=(V,):next M=1 M1=LD for i=LD-1 to 0 for j=LD to i+1 if Array(L(i))<Array(L(j)) then ' you can use either is the same ' if len(L(i))<=len(L(j)) then L(i)=Cons((Array(L(i)),), L(j)) if len(L(i))<=len(L(j)) then L(i)=(Array(L(i)),): Append L(i), L(j) end if next if len(L(i))>=M then M1=i:M=Len(L(i)) next =L(M1) } Const seq$="sequence", subseq$="Longest increasing subsequence" Document doc$ Disp(seq$, (3,2,6,4,5,1)) Disp(subseq$, LIS(3,2,6,4,5,1)) Disp(seq$, (0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15)) Disp(subseq$, LIS(0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15)) Print #-2,Doc$ Clipboard Doc$ Sub Disp(title$, m) local n=each(m), s$ while n s$+=", "+str$(Array(n),"") end while s$=trim$(mid$(s$, 2)) Doc$=title$+": "+s$+{ } End Sub } LIS_example </syntaxhighlight> {{out}} <pre style="height:30ex;overflow:scroll"> sequence: 3, 2, 6, 4, 5, 1 Longest increasing subsequence: 3, 4, 5 sequence: 0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15 Longest increasing subsequence: 0, 2, 6, 9, 11, 15 </pre > =={{header\|Maple}}== <syntaxhighlight lang="maple"># dynamic programming: LIS := proc(L) local i, j; local index := 1; local output := Array(1..numelems(L), i -> Array(1..0)); for i from 1 to numelems(L) do for j from 1 to i - 1 do if (L[j] < L[i]) and (upperbound(output[j]) > upperbound(output[i])) then output[i] := copy(output[j]); end if; end do; # append current value output[i] ,= L[i]; end do; #output longest subsequence using loop for i from 2 to numelems(L) do if (upperbound(output[i]) > upperbound(output[index])) then index := i; end if; end do; return output[index]; end proc:</syntaxhighlight> Alternatively, output the longest subsequence using built-in command max: <syntaxhighlight lang="maple">i := max[index](map(numelems,output)); output[i];</syntaxhighlight> <syntaxhighlight lang="maple">L := [3, 2, 6, 4, 5, 1]; M := [0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15]; LIS(L); LIS(M);</syntaxhighlight> {{out}} <pre> [3 4 5] [0 4 6 9 13 15] </pre> =={{header\|Mathematica}}/{{header\|Wolfram Language}}== Although undocumented, Mathematica has the function LongestAscendingSequence which exactly does what the Task asks for: <syntaxhighlight lang="mathematica">LongestAscendingSequence/@{{3,2,6,4,5,1},{0,8,4,12,2,10,6,14,1,9,5,13,3,11,7,15}}</syntaxhighlight> {{out}} <pre>{{2,4,5},{0,2,6,9,11,15}}</pre> =={{header\|Nim}}== {{trans\|Python}} <syntaxhighlight lang="nim">proc longestIncreasingSubsequence[T](d: seq[T]): seq[T] = var l: seq[seq[T]] for i in 0 .. d.high: var x: seq[T] for j in 0 ..< i: if l[j][l[j].high] < d[i] and l[j].len > x.len: x = l[j] l.add x & @[d[i]] for x in l: if x.len > result.len: result = x for d in [@[3,2,6,4,5,1], @[0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15]]: echo "A L.I.S. of ", d, " is ", longestIncreasingSubsequence(d)</syntaxhighlight> {{out}} <pre>A L.I.S. of @[3, 2, 6, 4, 5, 1] is @[3, 4, 5] A L.I.S. of @[0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15] is @[0, 4, 6, 9, 13, 15]</pre> =={{header\|Objective-C}}== Patience sorting <syntaxhighlight lang="objc">#import <Foundation/Foundation.h> @interface Node : NSObject { @public id val; Node back; } @end @implementation Node @end @interface NSArray (LIS) - (NSArray )longestIncreasingSubsequenceWithComparator:(NSComparator)comparator; @end @implementation NSArray (LIS) - (NSArray )longestIncreasingSubsequenceWithComparator:(NSComparator)comparator { NSMutableArray pileTops = [[NSMutableArray alloc] init]; // sort into piles for (id x in self) { Node node = [[Node alloc] init]; node->val = x; int i = [pileTops indexOfObject:node inSortedRange:NSMakeRange(0, [pileTops count]) options:NSBinarySearchingInsertionIndex\|NSBinarySearchingFirstEqual usingComparator:^NSComparisonResult(Node node1, Node node2) { return comparator(node1->val, node2->val); }]; if (i != 0) node->back = pileTops[i-1]; pileTops[i] = node; } // follow pointers from last node NSMutableArray result = [[NSMutableArray alloc] init]; for (Node node = [pileTops lastObject]; node; node = node->back) [result addObject:node->val]; return [[result reverseObjectEnumerator] allObjects]; } @end int main(int argc, const char argv[]) { @autoreleasepool { for (NSArray d in @[@[@3, @2, @6, @4, @5, @1], @[@0, @8, @4, @12, @2, @10, @6, @14, @1, @9, @5, @13, @3, @11, @7, @15]]) NSLog(@"an L.I.S. of %@ is %@", d, [d longestIncreasingSubsequenceWithComparator:^NSComparisonResult(id obj1, id obj2) { return [obj1 compare:obj2]; }]); } return 0; }</syntaxhighlight> {{out}} <pre>an L.I.S. of ( 3, 2, 6, 4, 5, 1 ) is ( 2, 4, 5 ) an L.I.S. of ( 0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15 ) is ( 0, 2, 6, 9, 11, 15 )</pre> =={{header\|OCaml}}== ===Naïve implementation=== <syntaxhighlight lang="ocaml">let longest l = List.fold_left (fun acc x -> if List.length acc < List.length x then x else acc) [] l let subsequences d l = let rec check_subsequences acc = function \| x::s -> check_subsequences (if (List.hd (List.rev x)) < d then x::acc else acc) s \| [] -> acc in check_subsequences [] l let lis d = let rec lis' l = function \| x::s -> lis' ((longest (subsequences x l)@[x])::l) s \| [] -> longest l in lis' [] d let _ = let sequences = [[3; 2; 6; 4; 5; 1]; [0; 8; 4; 12; 2; 10; 6; 14; 1; 9; 5; 13; 3; 11; 7; 15]] in List.map (fun x -> print_endline (String.concat " " (List.map string_of_int (lis x)))) sequences</syntaxhighlight> {{out}} <pre> 3 4 5 0 4 6 9 13 15 </pre> ===Patience sorting=== <syntaxhighlight lang="ocaml">let lis cmp list = let pile_tops = Array.make (List.length list) [] in let bsearch_piles x len = let rec aux lo hi = if lo > hi then lo else let mid = (lo + hi) / 2 in if cmp (List.hd pile_tops.(mid)) x < 0 then aux (mid+1) hi else aux lo (mid-1) in aux 0 (len-1) in let f len x = let i = bsearch_piles x len in pile_tops.(i) <- x :: if i = 0 then [] else pile_tops.(i-1); if i = len then len+1 else len in let len = List.fold_left f 0 list in List.rev pile_tops.(len-1)</syntaxhighlight> Usage: <pre># lis compare [3; 2; 6; 4; 5; 1];; - : int list = [2; 4; 5] # lis compare [0; 8; 4; 12; 2; 10; 6; 14; 1; 9; 5; 13; 3; 11; 7; 15];; - : int list = [0; 2; 6; 9; 11; 15]</pre> =={{header\|Pascal}}== {{works with\|FPC}} O(NLogN) version. <syntaxhighlight lang="pascal"> program LisDemo; {$mode objfpc}{$h+} uses SysUtils; function Lis(const A: array of Integer): specialize TArray<Integer>; var TailIndex: array of Integer; function CeilIndex(Value, R: Integer): Integer; var L, M: Integer; begin L := 0; while L < R do begin {$PUSH}{$Q-}{$R-}M := (L + R) shr 1;{$POP} if A[TailIndex[M]] < Value then L := M + 1 else R := M; end; Result := R; end; var I, J, Len: Integer; Parents: array of Integer; begin Result := nil; if Length(A) = 0 then exit; SetLength(TailIndex, Length(A)); SetLength(Parents, Length(A)); Len := 1; for I := 1 to High(A) do if A[I] < A[TailIndex[0]] then TailIndex[0] := I else if A[TailIndex[Len-1]] < A[I] then begin Parents[I] := TailIndex[Len - 1]; TailIndex[Len] := I; Inc(Len); end else begin J := CeilIndex(A[I], Len - 1); Parents[I] := TailIndex[J - 1]; TailIndex[J] := I; end; if Len < 2 then exit([A[0]]); SetLength(Result, Len); J := TailIndex[Len - 1]; for I := Len - 1 downto 0 do begin Result[I] := A[J]; J := Parents[J]; end; end; procedure PrintArray(const A: array of Integer); var I: SizeInt; begin Write('['); for I := 0 to High(A) - 1 do Write(A[I], ', '); WriteLn(A[High(A)], ']'); end; begin PrintArray(Lis([3, 2, 6, 4, 5, 1])); PrintArray(Lis([0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15])); PrintArray(Lis([1, 1, 1, 1, 1, 0])); end. </syntaxhighlight> {{out}} <pre> [2, 4, 5] [0, 2, 6, 9, 11, 15] [1] </pre> =={{header\|Perl}}== ===Dynamic programming=== {{trans\|Raku}} <syntaxhighlight lang="perl">use strict; sub lis { my @l = map [], 1 .. @_; push @{$l[0]}, +$_[0]; for my $i (1 .. @_-1) { for my $j (0 .. $i - 1) { if ($_[$j] < $_[$i] and @{$l[$i]} < @{$l[$j]} + 1) { $l[$i] = [ @{$l[$j]} ]; } } push @{$l[$i]}, $_[$i]; } my ($max, $l) = (0, []); for (@l) { ($max, $l) = (scalar(@$_), $_) if @$_ > $max; } return @$l; } print join ' ', lis 3, 2, 6, 4, 5, 1; print join ' ', lis 0,8,4,12,2,10,6,14,1,9,5,13,3,11,7,15;</syntaxhighlight> {{out}} <pre>2 4 5 0 2 6 9 11 15</pre> ===Patience sorting=== <syntaxhighlight lang="perl">sub lis { my @pileTops; # sort into piles foreach my $x (@_) { # binary search my $low = 0, $high = $#pileTops; while ($low <= $high) { my $mid = int(($low + $high) / 2); if ($pileTops[$mid]{val} >= $x) { $high = $mid - 1; } else { $low = $mid + 1; } } my $i = $low; my $node = {val => $x}; $node->{back} = $pileTops[$i-1] if $i != 0; $pileTops[$i] = $node; } my @result; for (my $node = $pileTops[-1]; $node; $node = $node->{back}) { push @result, $node->{val}; } return reverse @result; } foreach my $r ([3, 2, 6, 4, 5, 1], [0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15]) { my @d = @$r; my @lis = lis(@d); print "an L.I.S. of [@d] is [@lis]\n"; }</syntaxhighlight> {{out}} <pre>an L.I.S. of [3 2 6 4 5 1] is [2 4 5] an L.I.S. of [0 8 4 12 2 10 6 14 1 9 5 13 3 11 7 15] is [0 2 6 9 11 15]</pre> =={{header\|Phix}}== Using the Wikipedia algorithm (converted to 1-based indexing) <!--<syntaxhighlight lang="phix">(phixonline)--> <span style="color: #008080;">with</span> <span style="color: #008080;">javascript_semantics</span> <span style="color: #008080;">function</span> <span style="color: #000000;">lis</span><span style="color: #0000FF;">(</span><span style="color: #004080;">sequence</span> <span style="color: #000000;">x</span><span style="color: #0000FF;">,</span> <span style="color: #004080;">integer</span> <span style="color: #000000;">n</span> <span style="color: #0000FF;">=</span> <span style="color: #7060A8;">length</span><span style="color: #0000FF;">(</span><span style="color: #000000;">x</span><span style="color: #0000FF;">))</span> <span style="color: #004080;">sequence</span> <span style="color: #000000;">p</span> <span style="color: #0000FF;">=</span> <span style="color: #7060A8;">repeat</span><span style="color: #0000FF;">(</span><span style="color: #000000;">0</span><span style="color: #0000FF;">,</span><span style="color: #000000;">n</span><span style="color: #0000FF;">),</span> <span style="color: #000000;">m</span> <span style="color: #0000FF;">=</span> <span style="color: #7060A8;">repeat</span><span style="color: #0000FF;">(</span><span style="color: #000000;">0</span><span style="color: #0000FF;">,</span><span style="color: #000000;">n</span><span style="color: #0000FF;">)</span> <span style="color: #004080;">integer</span> <span style="color: #000000;">len</span> <span style="color: #0000FF;">=</span> <span style="color: #000000;">0</span> <span style="color: #008080;">for</span> <span style="color: #000000;">i</span><span style="color: #0000FF;">=</span><span style="color: #000000;">1</span> <span style="color: #008080;">to</span> <span style="color: #000000;">n</span> <span style="color: #008080;">do</span> <span style="color: #004080;">integer</span> <span style="color: #000000;">lo</span> <span style="color: #0000FF;">=</span> <span style="color: #000000;">1</span> <span style="color: #004080;">integer</span> <span style="color: #000000;">hi</span> <span style="color: #0000FF;">=</span> <span style="color: #000000;">len</span> <span style="color: #008080;">while</span> <span style="color: #000000;">lo</span><span style="color: #0000FF;"><=</span><span style="color: #000000;">hi</span> <span style="color: #008080;">do</span> <span style="color: #004080;">integer</span> <span style="color: #000000;">mid</span> <span style="color: #0000FF;">=</span> <span style="color: #7060A8;">ceil</span><span style="color: #0000FF;">((</span><span style="color: #000000;">lo</span><span style="color: #0000FF;">+</span><span style="color: #000000;">hi</span><span style="color: #0000FF;">)/</span><span style="color: #000000;">2</span><span style="color: #0000FF;">)</span> <span style="color: #008080;">if</span> <span style="color: #000000;">x</span><span style="color: #0000FF;">[</span><span style="color: #000000;">m</span><span style="color: #0000FF;">[</span><span style="color: #000000;">mid</span><span style="color: #0000FF;">]]<</span><span style="color: #000000;">x</span><span style="color: #0000FF;">[</span><span style="color: #000000;">i</span><span style="color: #0000FF;">]</span> <span style="color: #008080;">then</span> <span style="color: #000000;">lo</span> <span style="color: #0000FF;">=</span> <span style="color: #000000;">mid</span> <span style="color: #0000FF;">+</span> <span style="color: #000000;">1</span> <span style="color: #008080;">else</span> <span style="color: #000000;">hi</span> <span style="color: #0000FF;">=</span> <span style="color: #000000;">mid</span> <span style="color: #0000FF;">-</span> <span style="color: #000000;">1</span> <span style="color: #008080;">end</span> <span style="color: #008080;">if</span> <span style="color: #008080;">end</span> <span style="color: #008080;">while</span> <span style="color: #008080;">if</span> <span style="color: #000000;">lo</span><span style="color: #0000FF;">></span><span style="color: #000000;">1</span> <span style="color: #008080;">then</span> <span style="color: #000000;">p</span><span style="color: #0000FF;">[</span><span style="color: #000000;">i</span><span style="color: #0000FF;">]</span> <span style="color: #0000FF;">=</span> <span style="color: #000000;">m</span><span style="color: #0000FF;">[</span><span style="color: #000000;">lo</span><span style="color: #0000FF;">-</span><span style="color: #000000;">1</span><span style="color: #0000FF;">]</span> <span style="color: #008080;">end</span> <span style="color: #008080;">if</span> <span style="color: #000000;">m</span><span style="color: #0000FF;">[</span><span style="color: #000000;">lo</span><span style="color: #0000FF;">]</span> <span style="color: #0000FF;">=</span> <span style="color: #000000;">i</span> <span style="color: #008080;">if</span> <span style="color: #000000;">lo</span><span style="color: #0000FF;">></span><span style="color: #000000;">len</span> <span style="color: #008080;">then</span> <span style="color: #000000;">len</span> <span style="color: #0000FF;">=</span> <span style="color: #000000;">lo</span> <span style="color: #008080;">end</span> <span style="color: #008080;">if</span> <span style="color: #008080;">end</span> <span style="color: #008080;">for</span> <span style="color: #004080;">sequence</span> <span style="color: #000000;">res</span> <span style="color: #0000FF;">=</span> <span style="color: #7060A8;">repeat</span><span style="color: #0000FF;">(</span><span style="color: #000000;">0</span><span style="color: #0000FF;">,</span><span style="color: #000000;">len</span><span style="color: #0000FF;">)</span> <span style="color: #008080;">if</span> <span style="color: #000000;">len</span><span style="color: #0000FF;">></span><span style="color: #000000;">0</span> <span style="color: #008080;">then</span> <span style="color: #004080;">integer</span> <span style="color: #000000;">k</span> <span style="color: #0000FF;">=</span> <span style="color: #000000;">m</span><span style="color: #0000FF;">[</span><span style="color: #000000;">len</span><span style="color: #0000FF;">]</span> <span style="color: #008080;">for</span> <span style="color: #000000;">i</span><span style="color: #0000FF;">=</span><span style="color: #000000;">len</span> <span style="color: #008080;">to</span> <span style="color: #000000;">1</span> <span style="color: #008080;">by</span> <span style="color: #0000FF;">-</span><span style="color: #000000;">1</span> <span style="color: #008080;">do</span> <span style="color: #000000;">res</span><span style="color: #0000FF;">[</span><span style="color: #000000;">i</span><span style="color: #0000FF;">]</span> <span style="color: #0000FF;">=</span> <span style="color: #000000;">x</span><span style="color: #0000FF;">[</span><span style="color: #000000;">k</span><span style="color: #0000FF;">]</span> <span style="color: #000000;">k</span> <span style="color: #0000FF;">=</span> <span style="color: #000000;">p</span><span style="color: #0000FF;">[</span><span style="color: #000000;">k</span><span style="color: #0000FF;">]</span> <span style="color: #008080;">end</span> <span style="color: #008080;">for</span> <span style="color: #008080;">end</span> <span style="color: #008080;">if</span> <span style="color: #008080;">return</span> <span style="color: #000000;">res</span> <span style="color: #008080;">end</span> <span style="color: #008080;">function</span> <span style="color: #008080;">constant</span> <span style="color: #000000;">tests</span> <span style="color: #0000FF;">=</span> <span style="color: #0000FF;">{{</span><span style="color: #000000;">3</span><span style="color: #0000FF;">,</span> <span style="color: #000000;">2</span><span style="color: #0000FF;">,</span> <span style="color: #000000;">6</span><span style="color: #0000FF;">,</span> <span style="color: #000000;">4</span><span style="color: #0000FF;">,</span> <span style="color: #000000;">5</span><span style="color: #0000FF;">,</span> <span style="color: #000000;">1</span><span style="color: #0000FF;">},</span> <span style="color: #0000FF;">{</span><span style="color: #000000;">0</span><span style="color: #0000FF;">,</span> <span style="color: #000000;">8</span><span style="color: #0000FF;">,</span> <span style="color: #000000;">4</span><span style="color: #0000FF;">,</span> <span style="color: #000000;">12</span><span style="color: #0000FF;">,</span> <span style="color: #000000;">2</span><span style="color: #0000FF;">,</span> <span style="color: #000000;">10</span><span style="color: #0000FF;">,</span> <span style="color: #000000;">6</span><span style="color: #0000FF;">,</span> <span style="color: #000000;">14</span><span style="color: #0000FF;">,</span> <span style="color: #000000;">1</span><span style="color: #0000FF;">,</span> <span style="color: #000000;">9</span><span style="color: #0000FF;">,</span> <span style="color: #000000;">5</span><span style="color: #0000FF;">,</span> <span style="color: #000000;">13</span><span style="color: #0000FF;">,</span> <span style="color: #000000;">3</span><span style="color: #0000FF;">,</span> <span style="color: #000000;">11</span><span style="color: #0000FF;">,</span> <span style="color: #000000;">7</span><span style="color: #0000FF;">,</span> <span style="color: #000000;">15</span><span style="color: #0000FF;">}}</span> <span style="color: #008080;">for</span> <span style="color: #000000;">i</span><span style="color: #0000FF;">=</span><span style="color: #000000;">1</span> <span style="color: #008080;">to</span> <span style="color: #7060A8;">length</span><span style="color: #0000FF;">(</span><span style="color: #000000;">tests</span><span style="color: #0000FF;">)</span> <span style="color: #008080;">do</span> <span style="color: #0000FF;">?</span><span style="color: #000000;">lis</span><span style="color: #0000FF;">(</span><span style="color: #000000;">tests</span><span style="color: #0000FF;">[</span><span style="color: #000000;">i</span><span style="color: #0000FF;">])</span> <span style="color: #008080;">end</span> <span style="color: #008080;">for</span> <!--</syntaxhighlight>--> {{out}} <pre> {2,4,5} {0,2,6,9,11,15} </pre> =={{header\|PHP}}== Patience sorting <syntaxhighlight lang="php"><?php class Node { public $val; public $back = NULL; } function lis($n) { $pileTops = array(); // sort into piles foreach ($n as $x) { // binary search $low = 0; $high = count($pileTops)-1; while ($low <= $high) { $mid = (int)(($low + $high) / 2); if ($pileTops[$mid]->val >= $x) $high = $mid - 1; else $low = $mid + 1; } $i = $low; $node = new Node(); $node->val = $x; if ($i != 0) $node->back = $pileTops[$i-1]; $pileTops[$i] = $node; } $result = array(); for ($node = count($pileTops) ? $pileTops[count($pileTops)-1] : NULL; $node != NULL; $node = $node->back) $result[] = $node->val; return array_reverse($result); } print_r(lis(array(3, 2, 6, 4, 5, 1))); print_r(lis(array(0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15))); ?></syntaxhighlight> {{out}} <pre>Array ( [0] => 2 [1] => 4 [2] => 5 ) Array ( [0] => 0 [1] => 2 [2] => 6 [3] => 9 [4] => 11 [5] => 15 )</pre> =={{header\|Picat}}== ===Mode-directed tabling=== {{trans\|Prolog}} <syntaxhighlight lang="picat">table(+,+,max) lis_mode(In, Out,OutLen) => one_is(In, [], Is), Out = reverse(Is), OutLen = Out.length. one_is([], Current, Current2) => Current = Current2. one_is([H\|T], Current, Final) => ( Current = [], one_is(T, [H], Final)); ( Current = [H1\|_], H1 @< H, one_is(T, [H\|Current], Final)); one_is(T, Current, Final).</syntaxhighlight> ===Constraint modelling approach=== For larger instances, the sat solver is generally faster than the cp solver. <syntaxhighlight lang="picat">lis_cp(S, Res,Z) => Len = S.len, X = new_list(Len), X :: 0..1, increasing_except_0($[X[I]S[I] : I in 1..Len]), Z #= sum(X), solve($[max(Z)],X), % Extract the found LIS Res = [S[I] : I in 1..Len, X[I] == 1]. % % Ensures that array A is (strictly) increasing if we disregard any 0's % increasing_except_0(A) => N = A.len, foreach(I in 1..N, J in I+1..N) (A[I] #!= 0 #/\ A[J] #!= 0) #=> (A[I] #< A[J]) end.</syntaxhighlight> ===Test=== <syntaxhighlight lang="picat">import sat. % for lis_cp % import cp. % Slower than sat on larger instances. go => nolog, Tests = [ [3,2,6,4,5,1], [0,8,4,12,2,10,6,14,1,9,5,13,3,11,7,15], [1,1,1,1], [4,65,2,-31,0,99,83,782,1] ], Funs = [lis_mode, lis_cp], foreach(Fun in Funs) println(fun=Fun), foreach(Test in Tests) call(Fun,Test,Lis,Len), printf("%w: LIS=%w (len=%d)\n",Test, Lis,Len) end, nl, end, nl.</syntaxhighlight> {{out}} <pre>[3,2,6,4,5,1]: LIS=[3,4,5] (len=3) [0,8,4,12,2,10,6,14,1,9,5,13,3,11,7,15]: LIS=[0,4,6,9,13,15] (len=6) [1,1,1,1]: LIS=[1] (len=1) [4,65,2,-31,0,99,83,782,1]: LIS=[4,65,99,782] (len=4)</pre> The mode directed tabling tends to be the fastest of the two methods. =={{header\|PicoLisp}}== Adapted patience sorting approach: <syntaxhighlight lang="picolisp">(de longinc (Lst) (let (D NIL R NIL) (for I Lst (cond ((< I (last D)) (for (Y . X) D (T (> X I) (set (nth D Y) I)) ) ) ((< I (car R)) (set R I) (when D (set (cdr R) (last D))) ) (T (when R (queue 'D (car R))) (push 'R I) ) ) ) (flip R) ) )</syntaxhighlight> Original recursive glutton: <syntaxhighlight lang="picolisp">(de glutton (L) (let N (pop 'L) (maxi length (recur (N L) (ifn L (list (list N)) (mapcan '((R) (if (> (car R) N) (list (cons N R) R) (list (list N) R) ) ) (recurse (car L) (cdr L)) ) ) ) ) ) ) (test (2 4 5) (glutton (3 2 6 4 5 1))) (test (2 6 9 11 15) (glutton (8 4 12 2 10 6 14 1 9 5 13 3 11 7 15))) (test (-31 0 83 782) (glutton (4 65 2 -31 0 99 83 782 1)) )</syntaxhighlight> =={{header\|PowerShell}}== {{works with\|PowerShell\|2}} <syntaxhighlight lang="powershell">function Get-LongestSubsequence ( [int[]]$A ) { If ( $A.Count -lt 2 ) { return $A } # Start with an "empty" pile # (We will only store the top value in each "pile".) $Pile = @( [int]::MaxValue ) $Last = 0 # Hashtable to hold the back pointers $BP = @{} # For each number in the orginal sequence... ForEach ( $N in $A ) { # Find the first pile with a value greater than N $i = 0..$Last \| Where { $N -lt $Pile[$_] } \| Select -First 1 # Place N on the pile $Pile[$i] = $N # Set the back pointer for this value to the value of the previous pile $BP["$N"] = $Pile[$i-1] # If this is the previously empty pile, add a new empty pile If ( $i -eq $Last ) { $Pile += @( [int]::MaxValue ) $Last++ } } # Ignore the empty pile $Last-- # Start with the value of the last pile $N = $Pile[$Last] $S = @( $N ) # Add the remainder of the values by walking through the back pointers ForEach ( $i in $Last..1 ) { $S += ( $N = $BP["$N"] ) } # Return the series (reversed into the correct order) return $S[$Last..0] }</syntaxhighlight> <syntaxhighlight lang="powershell">( Get-LongestSubsequence 3, 2, 6, 4, 5, 1 ) -join ', ' ( Get-LongestSubsequence 0, 8, 4, 12, 2, 10, 6, 16, 14, 1, 9, 5, 13, 3, 11, 7, 15 ) -join ', '</syntaxhighlight> {{out}} <pre>2, 4, 5 0, 2, 6, 9, 11, 15</pre> =={{header\|Prolog}}== Works with SWI-Prolog version 6.4.1<br> Naïve implementation. <syntaxhighlight lang="prolog">lis(In, Out) :- % we ask Prolog to find the longest sequence aggregate(max(N,Is), (one_is(In, [], Is), length(Is, N)), max(_, Res)), reverse(Res, Out). % we describe the way to find increasing subsequence one_is([], Current, Current). one_is([H \| T], Current, Final) :- ( Current = [], one_is(T, [H], Final)); ( Current = [H1 \| _], H1 < H, one_is(T, [H \| Current], Final)); one_is(T, Current, Final). </syntaxhighlight> Prolog finds the first longest subsequence <pre> ?- lis([0,8,4,12,2,10,6,14,1,9,5,13,3,11,7,15], Out). Out = [0,4,6,9,13,15]. ?- lis([3,2,6,4,5,1], Out). Out = [3,4,5]. </pre> =={{header\|Python}}== ~~<lang python>def longest_increasing_subsequence(d):~~ ===Python: O(nlogn) Method from Wikipedia's LIS Article[https://en.wikipedia.org/wiki/Longest_increasing_subsequence#Efficient_algorithms]=== <syntaxhighlight lang="python">def longest_increasing_subsequence(X): """Returns the Longest Increasing Subsequence in the Given List/Array""" N = len(X) P = [0] N M = [0] * (N+1) L = 0 for i in range(N): lo = 1 hi = L while lo <= hi: mid = (lo+hi)//2 if (X[M[mid]] < X[i]): lo = mid+1 else: hi = mid-1 newL = lo P[i] = M[newL-1] M[newL] = i if (newL > L): L = newL S = [] k = M[L] for i in range(L-1, -1, -1): S.append(X[k]) k = P[k] return S[::-1] if __name__ == '__main__': for d in [[3,2,6,4,5,1], [0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15]]: print('a L.I.S. of %s is %s' % (d, longest_increasing_subsequence(d)))</syntaxhighlight> {{out}} <pre>a L.I.S. of [3, 2, 6, 4, 5, 1] is [2, 4, 5] a L.I.S. of [0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15] is [0, 2, 6, 9, 11, 15]</pre> ===Python: Method from video=== <syntaxhighlight lang="python">def longest_increasing_subsequence(d): 'Return one of the L.I.S. of list d' l = [] Line 69 ⟶ 2,569: if __name__ == '__main__': for d in [[3,2,6,4,5,1], [0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15]]: print('a L.I.S. of %s is %s' % (d, longest_increasing_subsequence(d)))</~~lang~~syntaxhighlight> {{out}} <pre>a L.I.S. of [3, 2, 6, 4, 5, 1] is [3, 4, 5] a L.I.S. of [0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15] is [0, 4, 6, 9, 13, 15]</pre> ===Python: Patience sorting method=== <syntaxhighlight lang="python">from collections import namedtuple from functools import total_ordering from bisect import bisect_left @total_ordering class Node(namedtuple('Node_', 'val back')): def __iter__(self): while self is not None: yield self.val self = self.back def __lt__(self, other): return self.val < other.val def __eq__(self, other): return self.val == other.val def lis(d): """Return one of the L.I.S. of list d using patience sorting.""" if not d: return [] pileTops = [] for di in d: j = bisect_left(pileTops, Node(di, None)) pileTops[j:j+1] = [Node(di, pileTops[j-1] if j > 0 else None)] return list(pileTops[-1])[::-1] if __name__ == '__main__': for d in [[3,2,6,4,5,1], [0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15]]: print('a L.I.S. of %s is %s' % (d, lis(d)))</syntaxhighlight> {{out}} <pre>a L.I.S. of [3, 2, 6, 4, 5, 1] is [2, 4, 5] a L.I.S. of [0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15] is [0, 2, 6, 9, 11, 15]</pre> =={{header\|Racket}}== Patience sorting. The program saves only the top card of each pile, with a link (cons) to the top of the previous pile at the time it was inserted. It uses binary search to find the correct pile. <syntaxhighlight lang="racket">#lang racket/base (require data/gvector) (define (gvector-last gv) (gvector-ref gv (sub1 (gvector-count gv)))) (define (lis-patience-sort input-list) (let ([piles (gvector)]) (for ([item (in-list input-list)]) (insert-item! piles item)) (reverse (gvector-last piles)))) (define (insert-item! piles item) (if (zero? (gvector-count piles)) (gvector-add! piles (cons item '())) (cond [(not (<= item (car (gvector-last piles)))) (gvector-add! piles (cons item (gvector-last piles)))] [(<= item (car (gvector-ref piles 0))) (gvector-set! piles 0 (cons item '()))] [else (let loop ([first 1] [last (sub1 (gvector-count piles))]) (if (= first last) (gvector-set! piles first (cons item (gvector-ref piles (sub1 first)))) (let ([middle (quotient (+ first last) 2)]) (if (<= item (car (gvector-ref piles middle))) (loop first middle) (loop (add1 middle) last)))))])))</syntaxhighlight> {{out}} <pre>'(2 4 5) '(0 2 6 9 11 15)</pre> =={{header\|Raku}}== (formerly Perl 6) {{works with\|Rakudo\|2018.03}} ===Dynamic programming=== Straight-forward implementation of the algorithm described in the video. <syntaxhighlight lang="raku" line>sub lis(@d) { my @l = [].item xx @d; @l[0].push: @d[0]; for 1 ..^ @d -> $i { for ^$i -> $j { if @d[$j] < @d[$i] && @l[$i] < @l[$j] + 1 { @l[$i] = [ @l[$j][] ] } } @l[$i].push: @d[$i]; } return max :by(.elems), @l; } say lis([3,2,6,4,5,1]); say lis([0,8,4,12,2,10,6,14,1,9,5,13,3,11,7,15]);</syntaxhighlight> {{out}} <pre>[2 4 5] [0 2 6 9 11 15]</pre> ===Patience sorting=== <syntaxhighlight lang="raku" line>sub lis(@deck is copy) { my @S = [@deck.shift() => Nil].item; for @deck -> $card { with first { @S[$_][-1].key > $card }, ^@S -> $i { @S[$i].push: $card => @S[$i-1][-1] // Nil } else { @S.push: [ $card => @S[-1][-1] // Nil ].item } } reverse map .key, ( @S[-1][-1], .value ...^ !.defined ) } say lis <3 2 6 4 5 1>; say lis <0 8 4 12 2 10 6 14 1 9 5 13 3 11 7 15>;</syntaxhighlight> {{out}} <pre>[2 4 5] [0 2 6 9 11 15]</pre> =={{header\|REXX}}== {{trans\|VBScript}} <syntaxhighlight lang="rexx">/REXX program finds & displays the longest increasing subsequence from a list of #'s./ $.=; $.1= 3 2 6 4 5 1 /define the 1st list to be examined. / $.2= 0 8 4 12 2 10 6 14 1 9 5 13 3 11 7 15 /* " " 2nd " " " " / do j=1 while $.j\==''; say / [↓] process all of the list for LIS/ say ' input: ' $.j /display the (original) input list. / call LIS $.j /invoke the LIS function. / say 'output: ' result /display the output (result from LIS)/ end /j/ exit /stick a fork in it, we're all done. / /──────────────────────────────────────────────────────────────────────────────────────/ LIS: procedure; parse arg x; n= words(x); if n==0 then return '' p.=; m.= p. do #=1 to n; _= # - 1; @._= word(x, #) /build an array (@) from input./ end /#/ L= 0 do j=0 to n-1; lo= 1 HI= L do while LO<=HI; middle= (LO+HI) % 2 _= m.middle /create a temporary value for @ index./ if @._<@.j then LO= middle + 1 else HI= middle - 1 end /while/ newLO= LO _= newLO - 1 /create a temporary value for M index./ p.j= m._ m.newLO= j if newLO>L then L= newLO end /i/ k= m.L; $= / [↓] build a list for the result. / do L; $= @.k $; k= p.k /perform this DO loop L times. / end /i/ return strip($) /the result has an extra leading blank/</syntaxhighlight> {{out\|output\|text=  when using the internal default input:}} <pre> input: 3 2 6 4 5 1 output: 2 4 5 input: 0 8 4 12 2 10 6 14 1 9 5 13 3 11 7 15 output: 0 2 6 9 11 15 </pre> =={{header\|Ring}}== <syntaxhighlight lang="ring"> # Project : Longest increasing subsequence tests = [[3, 2, 6, 4, 5, 1], [0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15]] res = [] for x=1 to len(tests) lis(tests[x]) showarray(res) end func lis(X) N = len(X) P = list(N) M = list(N) for nr = 1 to len(P) P[nr] = 0 next for nr = 1 to len(M) P[nr] = 0 next len = 0 for i=1 to N lo = 1 hi = len while lo <= hi mid = floor((lo+hi)/2) if X[M[mid]]<X[i] lo = mid + 1 else hi = mid - 1 ok end if lo>1 P[i] = M[lo-1] ok M[lo] = i if lo>len len = lo ok next res = list(len) if len>0 k = M[len] for i=len to 1 step -1 res[i] = X[k] k = P[k] next ok return res func showarray(vect) see "{" svect = "" for n = 1 to len(vect) svect = svect + vect[n] + ", " next svect = left(svect, len(svect) - 2) see svect see "}" + nl </syntaxhighlight> Output: <pre> {2, 4, 5} {0, 2, 6, 9, 11, 15} </pre> =={{header\|Ruby}}== Patience sorting <syntaxhighlight lang="ruby">Node = Struct.new(:val, :back) def lis(n) pileTops = [] # sort into piles for x in n # binary search low, high = 0, pileTops.size-1 while low <= high mid = low + (high - low) / 2 if pileTops[mid].val >= x high = mid - 1 else low = mid + 1 end end i = low node = Node.new(x) node.back = pileTops[i-1] if i > 0 pileTops[i] = node end result = [] node = pileTops.last while node result.unshift(node.val) node = node.back end result end p lis([3, 2, 6, 4, 5, 1]) p lis([0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15])</syntaxhighlight> {{out}} <pre>[2, 4, 5] [0, 2, 6, 9, 11, 15]</pre> =={{header\|Rust}}== <syntaxhighlight lang="rust"> fn lis(x: &[i32])-> Vec<i32> { let n = x.len(); let mut m = vec![0; n]; let mut p = vec![0; n]; let mut l = 0; for i in 0..n { let mut lo = 1; let mut hi = l; while lo <= hi { let mid = (lo + hi) / 2; if x[m[mid]] <= x[i] { lo = mid + 1; } else { hi = mid - 1; } } let new_l = lo; p[i] = m[new_l - 1]; m[new_l] = i; if new_l > l { l = new_l; } } let mut o = vec![0; l]; let mut k = m[l]; for i in (0..l).rev() { o[i] = x[k]; k = p[k]; } o } fn main() { let list = vec![3, 2, 6, 4, 5, 1]; println!("{:?}", lis(&list)); let list = vec![0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15]; println!("{:?}", lis(&list)); }</syntaxhighlight> {{out}} <pre>[2, 4, 5] [0, 2, 6, 9, 11, 15]</pre> =={{header\|Scala}}== ===Patience sorting=== {{Out}}See it in running in your browser by [https://scalafiddle.io/sf/Wx8DsUO/1 ScalaFiddle (JavaScript)] or by [https://scastie.scala-lang.org/FtLHeaAwSrO6VXVOTTZ7FQ Scastie (JVM)]. <syntaxhighlight lang="scala">object LongestIncreasingSubsequence extends App { val tests = Map( "3,2,6,4,5,1" -> Seq("2,4,5", "3,4,5"), "0,8,4,12,2,10,6,14,1,9,5,13,3,11,7,15" -> Seq("0,2,6,9,11,15", "0,2,6,9,13,15", "0,4,6,9,13,15", "0,4,6,9,11,15") ) def lis(l: Array[Int]): Seq[Array[Int]] = if (l.length < 2) Seq(l) else { def increasing(done: Array[Int], remaining: Array[Int]): Seq[Array[Int]] = if (remaining.isEmpty) Seq(done) else (if (remaining.head > done.last) increasing(done :+ remaining.head, remaining.tail) else Nil) ++ increasing(done, remaining.tail) // all increasing combinations val all = (1 to l.length) .flatMap(i => increasing(l take i takeRight 1, l.drop(i + 1))) .sortBy(-_.length) all.takeWhile(_.length == all.head.length) // longest of all increasing combinations } def asInts(s: String): Array[Int] = s split "," map (_.toInt) assert(tests forall { case (given, expect) => val allLongests: Seq[Array[Int]] = lis(asInts(given)) println( s"$given has ${allLongests.length} longest increasing subsequences, e.g. ${ allLongests.last.mkString(",")}") allLongests.forall(lis => expect.contains(lis.mkString(","))) }) }</syntaxhighlight> {{Out}} <pre>3,2,6,4,5,1 has 2 longest increasing subsequences, e.g. 2,4,5 0,8,4,12,2,10,6,14,1,9,5,13,3,11,7,15 has 4 longest increasing subsequences, e.g. 0,2,6,9,11,15</pre> ===Brute force solution=== <syntaxhighlight lang="scala">def powerset[A](s: List[A]) = (0 to s.size).map(s.combinations(_)).reduce(_++_) def isSorted(l:List[Int])(f: (Int, Int) => Boolean) = l.view.zip(l.tail).forall(x => f(x._1,x._2)) def sequence(set: List[Int])(f: (Int, Int) => Boolean) = powerset(set).filter(_.nonEmpty).filter(x => isSorted(x)(f)).toList.maxBy(_.length) sequence(set)(_<_) sequence(set)(_>_)</syntaxhighlight> =={{header\|Scheme}}== Patience sorting <syntaxhighlight lang="scheme">(define (lis less? lst) (define pile-tops (make-vector (length lst))) (define (bsearch-piles x len) (let aux ((lo 0) (hi (- len 1))) (if (> lo hi) lo (let ((mid (quotient (+ lo hi) 2))) (if (less? (car (vector-ref pile-tops mid)) x) (aux (+ mid 1) hi) (aux lo (- mid 1))))))) (let aux ((len 0) (lst lst)) (if (null? lst) (reverse (vector-ref pile-tops (- len 1))) (let ((x (car lst)) (i (bsearch-piles x len))) (vector-set! pile-tops i (cons x (if (= i 0) '() (vector-ref pile-tops (- i 1))))) (aux (if (= i len) (+ len 1) len) (cdr lst)))))) (display (lis < '(3 2 6 4 5 1))) (newline) (display (lis < '(0 8 4 12 2 10 6 14 1 9 5 13 3 11 7 15))) (newline)</syntaxhighlight> {{out}} <pre>(2 4 5) (0 2 6 9 11 15)</pre> =={{header\|Sidef}}== Dynamic programming: <syntaxhighlight lang="ruby">func lis(a) { var l = a.len.of { [] } l[0] << a[0] for i in (1..a.end) { for j in ^i { if ((a[j] < a[i]) && (l[i].len < l[j].len+1)) { l[i] = [l[j]...] } } l[i] << a[i] } l.max_by { .len } } say lis(%i<3 2 6 4 5 1>) say lis(%i<0 8 4 12 2 10 6 14 1 9 5 13 3 11 7 15>)</syntaxhighlight> Patience sorting: <syntaxhighlight lang="ruby">func lis(deck) { var pileTops = [] deck.each { \|x\| var low = 0; var high = pileTops.end while (low <= high) { var mid = ((low + high) // 2) if (pileTops[mid]{:val} >= x) { high = mid-1 } else { low = mid+1 } } var i = low var node = Hash(val => x) node{:back} = pileTops[i-1] if (i != 0) pileTops[i] = node } var result = [] for (var node = pileTops[-1]; node; node = node{:back}) { result << node{:val} } result.reverse } say lis(%i<3 2 6 4 5 1>) say lis(%i<0 8 4 12 2 10 6 14 1 9 5 13 3 11 7 15>)</syntaxhighlight> {{out}} <pre> [2, 4, 5] [0, 2, 6, 9, 11, 15] </pre> =={{header\|Standard ML}}== Patience sorting {{works with\|SML/NJ}} <syntaxhighlight lang="sml">fun lis cmp n = let val pile_tops = DynamicArray.array (length n, []) fun bsearch_piles x = let fun aux (lo, hi) = if lo > hi then lo else let val mid = (lo + hi) div 2 in if cmp (hd (DynamicArray.sub (pile_tops, mid)), x) = LESS then aux (mid+1, hi) else aux (lo, mid-1) end in aux (0, DynamicArray.bound pile_tops) end fun f x = let val i = bsearch_piles x in DynamicArray.update (pile_tops, i, x :: (if i = 0 then [] else DynamicArray.sub (pile_tops, i-1))) end in app f n; rev (DynamicArray.sub (pile_tops, DynamicArray.bound pile_tops)) end</syntaxhighlight> Usage: <pre>- lis Int.compare [3, 2, 6, 4, 5, 1]; val it = [2,4,5] : int list - lis Int.compare [0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15]; val it = [0,2,6,9,11,15] : int list</pre> =={{header\|Swift}}== <syntaxhighlight lang="swift">import Foundation extension Array where Element: Comparable { @inlinable public func longestIncreasingSubsequence() -> [Element] { var startI = [Int](repeating: 0, count: count) var endI = [Int](repeating: 0, count: count + 1) var len = 0 for i in 0..<count { var lo = 1 var hi = len while lo <= hi { let mid = Int(ceil((Double(lo + hi)) / 2)) if self[endI[mid]] <= self[i] { lo = mid + 1 } else { hi = mid - 1 } } startI[i] = endI[lo-1] endI[lo] = i if lo > len { len = lo } } var s = [Element]() var k = endI[len] for _ in 0..<len { s.append(self[k]) k = startI[k] } return s.reversed() } } let l1 = [3, 2, 6, 4, 5, 1] let l2 = [0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15] print("\(l1) = \(l1.longestIncreasingSubsequence())") print("\(l2) = \(l2.longestIncreasingSubsequence())")</syntaxhighlight> {{out}} <pre>[3, 2, 6, 4, 5, 1] = [2, 4, 5] [0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15] = [0, 2, 6, 9, 11, 15]</pre> =={{header\|Swym}}== {{trans\|Python}} Based on the Python video solution. Interpreter at [[http://cheersgames.com/swym/SwymInterpreter.html?Array.%27lis%27%0A%7B%0A%20%20%27stems%27%20%3D%20Number.Array.mutableArray%5B%20%5B%5D%20%5D%0A%20%0A%20%20forEach%28this%29%20%27value%27-%3E%0A%20%20%7B%0A%20%20%20%20%27bestStem%27%20%3D%20stems.where%7B%3D%3D%5B%5D%20%7C%7C%20.last%20%3C%20value%7D.max%7B.length%7D%0A%20%0A%20%20%20%20stems.push%28%20bestStem%20+%20%5Bvalue%5D%20%29%0A%20%20%7D%0A%20%0A%20%20return%20stems.max%7B.length%7D%0A%7D%0A%20%0A%5B3%2C2%2C6%2C4%2C5%2C1%5D.lis.trace%0A%5B0%2C8%2C4%2C12%2C2%2C10%2C6%2C14%2C1%2C9%2C5%2C13%2C3%2C11%2C7%2C15%5D.lis.trace]] <syntaxhighlight lang="swym">Array.'lis' { 'stems' = Number.Array.mutableArray[ [] ] forEach(this) 'value'-> { 'bestStem' = stems.where{==[] \|\| .last < value}.max{.length} stems.push( bestStem + [value] ) } return stems.max{.length} } [3,2,6,4,5,1].lis.trace [0,8,4,12,2,10,6,14,1,9,5,13,3,11,7,15].lis.trace</syntaxhighlight> {{out}} <pre> [3,4,5] [0,4,6,9,13,15] </pre> =={{header\|Tcl}}== {{works with\|Tcl\|8.6}} <~~lang~~syntaxhighlight lang="tcl">package require Tcl 8.6 proc longestIncreasingSubsequence {sequence} { Line 97 ⟶ 3,169: # Pick the longest subsequence; -stride requires Tcl 8.6 return [lindex [lsort -stride 2 -index 0 $subseq] end] }</~~lang~~syntaxhighlight> Demonstrating: <~~lang~~syntaxhighlight lang="tcl">puts [longestIncreasingSubsequence {3 2 6 4 5 1}] puts [longestIncreasingSubsequence {0 8 4 12 2 10 6 14 1 9 5 13 3 11 7 15}]</~~lang~~syntaxhighlight> {{out}} <pre> 3 4 5 0 4 6 9 13 15 </pre> =={{header\|VBScript}}== <syntaxhighlight lang="vb"> Function LIS(arr) n = UBound(arr) Dim p() ReDim p(n) Dim m() ReDim m(n) l = 0 For i = 0 To n lo = 1 hi = l Do While lo <= hi middle = Int((lo+hi)/2) If arr(m(middle)) < arr(i) Then lo = middle + 1 Else hi = middle - 1 End If Loop newl = lo p(i) = m(newl-1) m(newl) = i If newL > l Then l = newl End If Next Dim s() ReDim s(l) k = m(l) For i = l-1 To 0 Step - 1 s(i) = arr(k) k = p(k) Next LIS = Join(s,",") End Function WScript.StdOut.WriteLine LIS(Array(3,2,6,4,5,1)) WScript.StdOut.WriteLine LIS(Array(0,8,4,12,2,10,6,14,1,9,5,13,3,11,7,15)) </syntaxhighlight> {{Out}} <pre> 2,4,5, 0,2,6,9,11,15, </pre> =={{header\|Wren}}== {{trans\|Kotlin}} <syntaxhighlight lang="wren">var longestIncreasingSubsequence = Fn.new { \|x\| var n = x.count if (n == 0) return [] if (n == 1) return x var p = List.filled(n, 0) var m = List.filled(n+1, 0) var len = 0 for (i in 0...n) { var lo = 1 var hi = len while (lo <= hi) { var mid = ((lo + hi)/2).ceil if (x[m[mid]] < x[i]) { lo = mid + 1 } else { hi = mid - 1 } } var newLen = lo p[i] = m[newLen - 1] m[newLen] = i if (newLen > len) len = newLen } var s = List.filled(len, 0) var k = m[len] for (i in len-1..0) { s[i] = x[k] k = p[k] } return s } var lists = [ [3, 2, 6, 4, 5, 1], [0, 8, 4, 12, 2, 10, 6, 14, 1, 9, 5, 13, 3, 11, 7, 15] ] lists.each { \|l\| System.print(longestIncreasingSubsequence.call(l)) }</syntaxhighlight> {{out}} <pre> [2, 4, 5] [0, 2, 6, 9, 11, 15] </pre> =={{header\|zkl}}== <syntaxhighlight lang="zkl">fcn longestSequence(ns){ // based on Patience sorting piles:=L(); backPtr:='wrap(np){ return(np-1,if(np) piles[np-1].len()-1 else -1) }; // maybe (-1,-1) foreach n in (ns){ newPile:=True; // create list of sorted lists foreach e,p in (piles.enumerate()){ if(n<p[-1][0]){ p.del(1,-1) // only need the first and last elements .append(T(n,backPtr(e))); newPile=False; break; } } if(newPile) piles.append(L(T(n,backPtr(piles.len())))); } reg r=L(),p=-1,n=0; do{ n,p=piles[p][n]; r.write(n); p,n=p; }while(p!=-1); r.reverse() }</syntaxhighlight> <syntaxhighlight lang="zkl">foreach ns in (T(T(1),T(3,2,6,4,5,1),T(4,65,2,-31,0,99,83,782,1), T(0,8,4,12,2,10,6,14,1,9,5,13,3,11,7,15),"foobar")){ s:=longestSequence(ns); println(s.len(),": ",s," from ",ns); }</syntaxhighlight> {{out}} <pre> 1: L(1) from L(1) 3: L(2,4,5) from L(3,2,6,4,5,1) 4: L(-31,0,83,782) from L(4,65,2,-31,0,99,83,782,1) 6: L(0,1,3,9,11,15) from L(0,8,4,12,2,10,6,14,1,9,5,13,3,11,7,15) 4: L("f","o","o","r") from foobar </pre>