字符串 S 由小写字母组成。我们要把这个字符串划分为尽可能多的片段,同一字母最多出现在一个片段中。返回一个表示每个字符串片段的长度的列表。
示例:
输入:S = "ababcbacadefegdehijhklij" 输出:[9,7,8] 解释: 划分结果为 "ababcbaca", "defegde", "hijhklij"。 每个字母最多出现在一个片段中。 像 "ababcbacadefegde", "hijhklij" 的划分是错误的,因为划分的片段数较少。
提示:
S的长度在[1, 500]之间。S只包含小写字母'a'到'z'。
先用数组或哈希表 last 记录每个字母最后一次出现的位置。
接下来使用贪心的方法,将字符串划分为尽可能多的片段:
- 从左到右遍历字符串,遍历的同时维护当前片段的开始下标 left 和结束下标 right,初始均为 0;
- 对于每个访问到的字母 c,获取到最后一次出现的位置
last[c]。由于当前片段的结束下标一定不会小于last[c],因此令right = max(right, last[c]); - 当访问到下标 right 时,当前片段访问结束,当前片段的下标范围是
[left, right],长度为right - left + 1,将其添加到结果数组中,然后令 left = right + 1, 继续寻找下一个片段; - 重复上述过程,直至字符串遍历结束。
class Solution:
def partitionLabels(self, s: str) -> List[int]:
last = [0] * 26
for i, c in enumerate(s):
last[ord(c) - ord('a')] = i
ans = []
left = right = 0
for i, c in enumerate(s):
right = max(right, last[ord(c) - ord('a')])
if i == right:
ans.append(right - left + 1)
left = right + 1
return ansclass Solution {
public List<Integer> partitionLabels(String s) {
int[] last = new int[26];
int n = s.length();
for (int i = 0; i < n; ++i) {
last[s.charAt(i) - 'a'] = i;
}
List<Integer> ans = new ArrayList<>();
for (int i = 0, left = 0, right = 0; i < n; ++i) {
right = Math.max(right, last[s.charAt(i) - 'a']);
if (i == right) {
ans.add(right - left + 1);
left = right + 1;
}
}
return ans;
}
}function partitionLabels(s: string): number[] {
const n = s.length;
let last = new Array(26);
for (let i = 0; i < n; i++) {
last[s.charCodeAt(i) - 'a'.charCodeAt(0)] = i;
}
let ans = [];
let left = 0,
right = 0;
for (let i = 0; i < n; i++) {
right = Math.max(right, last[s.charCodeAt(i) - 'a'.charCodeAt(0)]);
if (i == right) {
ans.push(right - left + 1);
left = right + 1;
}
}
return ans;
}class Solution {
public:
vector<int> partitionLabels(string s) {
vector<int> last(26);
int n = s.size();
for (int i = 0; i < n; ++i) last[s[i] - 'a'] = i;
vector<int> ans;
for (int i = 0, left = 0, right = 0; i < n; ++i) {
right = max(right, last[s[i] - 'a']);
if (i == right) {
ans.push_back(right - left + 1);
left = right + 1;
}
}
return ans;
}
};func partitionLabels(s string) []int {
last := make([]int, 26)
n := len(s)
for i := 0; i < n; i++ {
last[s[i]-'a'] = i
}
var ans []int
for i, left, right := 0, 0, 0; i < n; i++ {
right = max(right, last[s[i]-'a'])
if i == right {
ans = append(ans, right-left+1)
left = right + 1
}
}
return ans
}
func max(a, b int) int {
if a > b {
return a
}
return b
}impl Solution {
pub fn partition_labels(s: String) -> Vec<i32> {
let n = s.len();
let bytes = s.as_bytes();
let mut inx_arr = [0; 26];
for i in 0..n {
inx_arr[(bytes[i] - b'a') as usize] = i;
}
let mut res = vec![];
let mut left = 0;
let mut right = 0;
for i in 0..n {
right = right.max(inx_arr[(bytes[i] - b'a') as usize]);
if right == i {
res.push((right - left + 1) as i32);
left = i + 1;
}
}
res
}
}