You are given two strings a and b that consist of lowercase letters. In one operation, you can change any character in a or b to any lowercase letter.
Your goal is to satisfy one of the following three conditions:
- Every letter in
ais strictly less than every letter inbin the alphabet. - Every letter in
bis strictly less than every letter inain the alphabet. - Both
aandbconsist of only one distinct letter.
Return the minimum number of operations needed to achieve your goal.
Example 1:
Input: a = "aba", b = "caa" Output: 2 Explanation: Consider the best way to make each condition true: 1) Change b to "ccc" in 2 operations, then every letter in a is less than every letter in b. 2) Change a to "bbb" and b to "aaa" in 3 operations, then every letter in b is less than every letter in a. 3) Change a to "aaa" and b to "aaa" in 2 operations, then a and b consist of one distinct letter. The best way was done in 2 operations (either condition 1 or condition 3).
Example 2:
Input: a = "dabadd", b = "cda" Output: 3 Explanation: The best way is to make condition 1 true by changing b to "eee".
Constraints:
1 <= a.length, b.length <= 105aandbconsist only of lowercase letters.
Prefix Sum
class Solution:
def minCharacters(self, a: str, b: str) -> int:
def f(cnt1, cnt2):
for i in range(1, 26):
t = sum(cnt1[i:]) + sum(cnt2[:i])
nonlocal ans
ans = min(ans, t)
m, n = len(a), len(b)
cnt1 = [0] * 26
cnt2 = [0] * 26
for c in a:
cnt1[ord(c) - ord('a')] += 1
for c in b:
cnt2[ord(c) - ord('a')] += 1
ans = m + n
for c1, c2 in zip(cnt1, cnt2):
ans = min(ans, m + n - c1 - c2)
f(cnt1, cnt2)
f(cnt2, cnt1)
return ansclass Solution {
private int ans;
public int minCharacters(String a, String b) {
int m = a.length(), n = b.length();
int[] cnt1 = new int[26];
int[] cnt2 = new int[26];
for (int i = 0; i < m; ++i) {
++cnt1[a.charAt(i) - 'a'];
}
for (int i = 0; i < n; ++i) {
++cnt2[b.charAt(i) - 'a'];
}
ans = m + n;
for (int i = 0; i < 26; ++i) {
ans = Math.min(ans, m + n - cnt1[i] - cnt2[i]);
}
f(cnt1, cnt2);
f(cnt2, cnt1);
return ans;
}
private void f(int[] cnt1, int[] cnt2) {
for (int i = 1; i < 26; ++i) {
int t = 0;
for (int j = i; j < 26; ++j) {
t += cnt1[j];
}
for (int j = 0; j < i; ++j) {
t += cnt2[j];
}
ans = Math.min(ans, t);
}
}
}class Solution {
public:
int minCharacters(string a, string b) {
int m = a.size(), n = b.size();
vector<int> cnt1(26);
vector<int> cnt2(26);
for (char& c : a) ++cnt1[c - 'a'];
for (char& c : b) ++cnt2[c - 'a'];
int ans = m + n;
for (int i = 0; i < 26; ++i) ans = min(ans, m + n - cnt1[i] - cnt2[i]);
auto f = [&](vector<int>& cnt1, vector<int>& cnt2) {
for (int i = 1; i < 26; ++i) {
int t = 0;
for (int j = i; j < 26; ++j) t += cnt1[j];
for (int j = 0; j < i; ++j) t += cnt2[j];
ans = min(ans, t);
}
};
f(cnt1, cnt2);
f(cnt2, cnt1);
return ans;
}
};func minCharacters(a string, b string) int {
cnt1 := [26]int{}
cnt2 := [26]int{}
for _, c := range a {
cnt1[c-'a']++
}
for _, c := range b {
cnt2[c-'a']++
}
m, n := len(a), len(b)
ans := m + n
for i := 0; i < 26; i++ {
ans = min(ans, m+n-cnt1[i]-cnt2[i])
}
f := func(cnt1, cnt2 [26]int) {
for i := 1; i < 26; i++ {
t := 0
for j := i; j < 26; j++ {
t += cnt1[j]
}
for j := 0; j < i; j++ {
t += cnt2[j]
}
ans = min(ans, t)
}
}
f(cnt1, cnt2)
f(cnt2, cnt1)
return ans
}
func min(a, b int) int {
if a < b {
return a
}
return b
}function minCharacters(a: string, b: string): number {
const m = a.length,
n = b.length;
let count1 = new Array(26).fill(0);
let count2 = new Array(26).fill(0);
const base = 'a'.charCodeAt(0);
for (let char of a) {
count1[char.charCodeAt(0) - base]++;
}
for (let char of b) {
count2[char.charCodeAt(0) - base]++;
}
let pre1 = 0,
pre2 = 0;
let ans = m + n;
for (let i = 0; i < 25; i++) {
pre1 += count1[i];
pre2 += count2[i];
// case1, case2, case3
ans = Math.min(
ans,
m - pre1 + pre2,
pre1 + n - pre2,
m + n - count1[i] - count2[i],
);
}
ans = Math.min(ans, m + n - count1[25] - count2[25]);
return ans;
}