给定一个字符串 s ,请将 s 分割成一些子串,使每个子串都是 回文串 ,返回 s 所有可能的分割方案。
回文串 是正着读和反着读都一样的字符串。
示例 1:
输入:s = "google" 输出:[["g","o","o","g","l","e"],["g","oo","g","l","e"],["goog","l","e"]]
示例 2:
输入:s = "aab" 输出:[["a","a","b"],["aa","b"]]
示例 3:
输入:s = "a"
输出:[["a"]
提示:
1 <= s.length <= 16s仅由小写英文字母组成
注意:本题与主站 131 题相同: https://leetcode.cn/problems/palindrome-partitioning/
class Solution:
def partition(self, s: str) -> List[List[str]]:
ans = []
n = len(s)
dp = [[True] * n for _ in range(n)]
for i in range(n - 1, -1, -1):
for j in range(i + 1, n):
dp[i][j] = s[i] == s[j] and dp[i + 1][j - 1]
def dfs(s, i, t):
nonlocal n
if i == n:
ans.append(t.copy())
return
for j in range(i, n):
if dp[i][j]:
t.append(s[i : j + 1])
dfs(s, j + 1, t)
t.pop(-1)
dfs(s, 0, [])
return ansclass Solution {
private boolean[][] dp;
private List<List<String>> ans;
private int n;
public String[][] partition(String s) {
ans = new ArrayList<>();
n = s.length();
dp = new boolean[n][n];
for (int i = 0; i < n; ++i) {
Arrays.fill(dp[i], true);
}
for (int i = n - 1; i >= 0; --i) {
for (int j = i + 1; j < n; ++j) {
dp[i][j] = s.charAt(i) == s.charAt(j) && dp[i + 1][j - 1];
}
}
dfs(s, 0, new ArrayList<>());
String[][] res = new String[ans.size()][];
for (int i = 0; i < ans.size(); ++i) {
res[i] = ans.get(i).toArray(new String[0]);
}
return res;
}
private void dfs(String s, int i, List<String> t) {
if (i == n) {
ans.add(new ArrayList<>(t));
return;
}
for (int j = i; j < n; ++j) {
if (dp[i][j]) {
t.add(s.substring(i, j + 1));
dfs(s, j + 1, t);
t.remove(t.size() - 1);
}
}
}
}class Solution {
public:
vector<vector<bool>> dp;
vector<vector<string>> ans;
int n;
vector<vector<string>> partition(string s) {
n = s.size();
dp.assign(n, vector<bool>(n, true));
for (int i = n - 1; i >= 0; --i) {
for (int j = i + 1; j < n; ++j) {
dp[i][j] = s[i] == s[j] && dp[i + 1][j - 1];
}
}
vector<string> t;
dfs(s, 0, t);
return ans;
}
void dfs(string& s, int i, vector<string> t) {
if (i == n) {
ans.push_back(t);
return;
}
for (int j = i; j < n; ++j) {
if (dp[i][j]) {
t.push_back(s.substr(i, j - i + 1));
dfs(s, j + 1, t);
t.pop_back();
}
}
}
};func partition(s string) [][]string {
n := len(s)
dp := make([][]bool, n)
var ans [][]string
for i := 0; i < n; i++ {
dp[i] = make([]bool, n)
for j := 0; j < n; j++ {
dp[i][j] = true
}
}
for i := n - 1; i >= 0; i-- {
for j := i + 1; j < n; j++ {
dp[i][j] = s[i] == s[j] && dp[i+1][j-1]
}
}
var dfs func(s string, i int, t []string)
dfs = func(s string, i int, t []string) {
if i == n {
ans = append(ans, append([]string(nil), t...))
return
}
for j := i; j < n; j++ {
if dp[i][j] {
t = append(t, s[i:j+1])
dfs(s, j+1, t)
t = t[:len(t)-1]
}
}
}
var t []string
dfs(s, 0, t)
return ans
}