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package class48;
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import java.util.ArrayList;
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import java.util.Arrays;
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import java.util.List;
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public class Problem_0472_ConcatenatedWords {
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public static class TrieNode {
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public boolean end;
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public TrieNode[] nexts;
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public TrieNode() {
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end = false;
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nexts = new TrieNode[26];
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}
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}
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public static void insert(TrieNode root, char[] s) {
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int path = 0;
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for (char c : s) {
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path = c - 'a';
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if (root.nexts[path] == null) {
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root.nexts[path] = new TrieNode();
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}
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root = root.nexts[path];
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}
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root.end = true;
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}
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// 方法1:前缀树优化
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public static List<String> findAllConcatenatedWordsInADict1(String[] words) {
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List<String> ans = new ArrayList<>();
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if (words == null || words.length < 3) {
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return ans;
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}
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// 字符串数量 >= 3个
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Arrays.sort(words, (str1, str2) -> str1.length() - str2.length());
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TrieNode root = new TrieNode();
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for (String str : words) {
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char[] s = str.toCharArray(); // "" 题目要求
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if (s.length > 0 && split1(s, root, 0)) {
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ans.add(str);
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} else {
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insert(root, s);
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}
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}
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return ans;
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}
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// 字符串s[i....]能不能被分解?
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// 之前的元件,全在前缀树上,r就是前缀树头节点
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public static boolean split1(char[] s, TrieNode r, int i) {
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boolean ans = false;
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if (i == s.length) { // 没字符了!
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ans = true;
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} else { // 还有字符
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TrieNode c = r;
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// s[i.....]
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// s[i..end]作前缀,看看是不是一个元件!f(end+1)...
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for (int end = i; end < s.length; end++) {
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int path = s[end] - 'a';
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if (c.nexts[path] == null) {
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break;
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}
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c = c.nexts[path];
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if (c.end && split1(s, r, end + 1)) {
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ans = true;
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break;
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}
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}
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}
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return ans;
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}
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// 提前准备好动态规划表
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public static int[] dp = new int[1000];
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// 方法二:前缀树优化 + 动态规划优化
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public static List<String> findAllConcatenatedWordsInADict2(String[] words) {
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List<String> ans = new ArrayList<>();
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if (words == null || words.length < 3) {
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return ans;
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}
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Arrays.sort(words, (str1, str2) -> str1.length() - str2.length());
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TrieNode root = new TrieNode();
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for (String str : words) {
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char[] s = str.toCharArray();
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Arrays.fill(dp, 0, s.length + 1, 0);
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if (s.length > 0 && split2(s, root, 0, dp)) {
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ans.add(str);
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} else {
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insert(root, s);
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}
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}
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return ans;
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}
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public static boolean split2(char[] s, TrieNode r, int i, int[] dp) {
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if (dp[i] != 0) {
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return dp[i] == 1;
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}
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boolean ans = false;
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if (i == s.length) {
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ans = true;
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} else {
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TrieNode c = r;
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for (int end = i; end < s.length; end++) {
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int path = s[end] - 'a';
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if (c.nexts[path] == null) {
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break;
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}
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c = c.nexts[path];
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if (c.end && split2(s, r, end + 1, dp)) {
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ans = true;
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break;
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}
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}
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}
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dp[i] = ans ? 1 : -1;
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return ans;
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}
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}
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