package LeetCode_395
/**
* 395. Longest Substring with At Least K Repeating Characters
* https://leetcode.com/problems/longest-substring-with-at-least-k-repeating-characters/description/
*
* Find the length of the longest substring T of a given string (consists of lowercase letters only) such that every character in T appears no less than k times.
Example 1:
Input:
s = "aaabb", k = 3
Output:
3
The longest substring is "aaa", as 'a' is repeated 3 times.
Example 2:
Input:
s = "ababbc", k = 2
Output:
5
The longest substring is "ababb", as 'a' is repeated 2 times and 'b' is repeated 3 times.
* */
class Solution {
/*
* solution: Divide and Conquer, find out the break potion of string and compare the length of the valid string,
* Time complexity:O(n^2), Space complexity:O(1)
* */
fun longestSubstring(s: String, k: Int): Int {
if (s == "") {
return 0
}
val n = s.length
//because just lowercase letters
val map = IntArray(26)
for (c in s) {
map[c - 'a']++
}
var currentStringOk = true
for (c in s) {
if (map[c - 'a'] < k) {
currentStringOk = false
}
}
if (currentStringOk) {
return s.length
}
var result = 0
var start = 0
var end = 0
while (end < n) {
//if appearance time of current char less than k, find out the substring and go to compare
if (map[s[end] - 'a'] < k) {
result = Math.max(result, longestSubstring(s.substring(start, end), k))
//set the start to the index of break point
start = end + 1
}
end++
}
//some case that: if end pointer had at the end position, but start pointer haven't at same position, so need to check
result = Math.max(result, longestSubstring(s.substring(start), k))
return result
}
}
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