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Add SCS.
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* [Fisher–Yates Shuffle](https://github.com/trekhleb/javascript-algorithms/tree/master/src/algorithms/sets/fisher-yates) - random permutation of a finite sequence
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* [Longest Common Subsequence](https://github.com/trekhleb/javascript-algorithms/tree/master/src/algorithms/sets/longest-common-subsequnce) (LCS)
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* [Longest Increasing subsequence](https://github.com/trekhleb/javascript-algorithms/tree/master/src/algorithms/sets/longest-increasing-subsequence)
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* [Shortest Common Supersequence](https://github.com/trekhleb/javascript-algorithms/tree/master/src/algorithms/sets/shortest-common-supersequence) (SCS)
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* **String**
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* [Levenshtein Distance](https://github.com/trekhleb/javascript-algorithms/tree/master/src/algorithms/string/levenshtein-distance) - minimum edit distance between two sequences
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* [Hamming Distance](https://github.com/trekhleb/javascript-algorithms/tree/master/src/algorithms/string/hamming-distance) - number of positions at which the symbols are different
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@ -92,7 +93,7 @@
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* [Longest Common Subsequence](https://github.com/trekhleb/javascript-algorithms/tree/master/src/algorithms/sets/longest-common-subsequnce) (LCS)
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* [Longest Common Substring](https://github.com/trekhleb/javascript-algorithms/tree/master/src/algorithms/string/longest-common-substring)
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* [Longest Increasing subsequence](https://github.com/trekhleb/javascript-algorithms/tree/master/src/algorithms/sets/longest-increasing-subsequence)
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* Shortest common supersequence
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* [Shortest Common Supersequence](https://github.com/trekhleb/javascript-algorithms/tree/master/src/algorithms/sets/shortest-common-supersequence)
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* Knapsack problem
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* Maximum subarray
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* Maximum sum path
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src/algorithms/sets/shortest-common-supersequence/README.md
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src/algorithms/sets/shortest-common-supersequence/README.md
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# Shortest Common Supersequence
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The shortest common supersequence (SCS) of two sequences `X` and `Y`
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is the shortest sequence which has `X` and `Y` as subsequences.
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In other words assume we're given two strings str1 and str2, find
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the shortest string that has both str1 and str2 as subsequences.
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This is a problem closely related to the longest common
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subsequence problem.
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## Example
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```
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Input: str1 = "geek", str2 = "eke"
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Output: "geeke"
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Input: str1 = "AGGTAB", str2 = "GXTXAYB"
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Output: "AGXGTXAYB"
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```
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## References
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- [GeeksForGeeks](https://www.geeksforgeeks.org/shortest-common-supersequence/)
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import shortestCommonSupersequence from '../shortestCommonSupersequence';
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describe('shortestCommonSupersequence', () => {
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it('should find shortest common supersequence of two sequences', () => {
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// LCS (longest common subsequence) is empty
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expect(shortestCommonSupersequence(
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['A', 'B', 'C'],
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['D', 'E', 'F'],
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)).toEqual(['A', 'B', 'C', 'D', 'E', 'F']);
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// LCS (longest common subsequence) is "EE"
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expect(shortestCommonSupersequence(
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['G', 'E', 'E', 'K'],
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['E', 'K', 'E'],
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)).toEqual(['G', 'E', 'K', 'E', 'K']);
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// LCS (longest common subsequence) is "GTAB"
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expect(shortestCommonSupersequence(
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['A', 'G', 'G', 'T', 'A', 'B'],
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['G', 'X', 'T', 'X', 'A', 'Y', 'B'],
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)).toEqual(['A', 'G', 'G', 'X', 'T', 'X', 'A', 'Y', 'B']);
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// LCS (longest common subsequence) is "BCBA".
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expect(shortestCommonSupersequence(
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['A', 'B', 'C', 'B', 'D', 'A', 'B'],
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['B', 'D', 'C', 'A', 'B', 'A'],
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)).toEqual(['A', 'B', 'D', 'C', 'A', 'B', 'D', 'A', 'B']);
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// LCS (longest common subsequence) is "BDABA".
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expect(shortestCommonSupersequence(
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['B', 'D', 'C', 'A', 'B', 'A'],
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['A', 'B', 'C', 'B', 'D', 'A', 'B', 'A', 'C'],
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)).toEqual(['A', 'B', 'C', 'B', 'D', 'C', 'A', 'B', 'A', 'C']);
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});
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});
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import longestCommonSubsequnce from '../longest-common-subsequnce/longestCommonSubsequnce';
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/**
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* @param {string[]} set1
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* @param {string[]} set2
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* @return {string[]}
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*/
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export default function shortestCommonSupersequence(set1, set2) {
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// Let's first find the longest common subsequence of two sets.
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const lcs = longestCommonSubsequnce(set1, set2);
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// If LCS is empty then the shortest common supersequnce would be just
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// concatenation of two sequences.
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if (lcs.length === 1 && lcs[0] === '') {
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return set1.concat(set2);
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}
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// Now let's add elements of set1 and set2 in order before/inside/after the LCS.
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let supersequence = [];
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let setIndex1 = 0;
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let setIndex2 = 0;
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let lcsIndex = 0;
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let setOnHold1 = false;
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let setOnHold2 = false;
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while (lcsIndex < lcs.length) {
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// Add elements of the first set to supersequence in correct order.
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if (setIndex1 < set1.length) {
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if (!setOnHold1 && set1[setIndex1] !== lcs[lcsIndex]) {
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supersequence.push(set1[setIndex1]);
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setIndex1 += 1;
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} else {
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setOnHold1 = true;
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}
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}
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// Add elements of the second set to supersequence in correct order.
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if (setIndex2 < set2.length) {
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if (!setOnHold2 && set2[setIndex2] !== lcs[lcsIndex]) {
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supersequence.push(set2[setIndex2]);
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setIndex2 += 1;
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} else {
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setOnHold2 = true;
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}
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}
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// Add LCS element to the supersequence in correct order.
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if (setOnHold1 && setOnHold2) {
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supersequence.push(lcs[lcsIndex]);
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lcsIndex += 1;
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setIndex1 += 1;
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setIndex2 += 1;
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setOnHold1 = false;
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setOnHold2 = false;
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}
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}
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// Attach set1 leftovers.
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if (setIndex1 < set1.length) {
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supersequence = supersequence.concat(set1.slice(setIndex1));
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}
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// Attach set2 leftovers.
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if (setIndex2 < set2.length) {
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supersequence = supersequence.concat(set2.slice(setIndex2));
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}
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return supersequence;
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}
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