2022-06-28 Daily-Challenge
Today I have done leetcode's June LeetCoding Challenge with cpp
.
June LeetCoding Challenge 28
Description
Minimum Deletions to Make Character Frequencies Unique
A string s
is called good if there are no two different characters in s
that have the same frequency.
Given a string s
, return the minimum number of characters you need to delete to make s
good.
The frequency of a character in a string is the number of times it appears in the string. For example, in the string "aab"
, the frequency of 'a'
is 2
, while the frequency of 'b'
is 1
.
Example 1:
Input: s = "aab"
Output: 0
Explanation: s is already good.
Example 2:
Input: s = "aaabbbcc"
Output: 2
Explanation: You can delete two 'b's resulting in the good string "aaabcc".
Another way it to delete one 'b' and one 'c' resulting in the good string "aaabbc".
Example 3:
Input: s = "ceabaacb"
Output: 2
Explanation: You can delete both 'c's resulting in the good string "eabaab".
Note that we only care about characters that are still in the string at the end (i.e. frequency of 0 is ignored).
Constraints:
1 <= s.length <= 10^5
s
contains only lowercase English letters.
Solution
class Solution {
bool noDeletion(int *cnt) {
int pos = 0;
while(pos < 26 && !cnt[pos]) pos += 1;
if(!pos) pos += 1;
while(pos < 26 && cnt[pos] != cnt[pos - 1]) pos += 1;
return pos == 26;
}
public:
int minDeletions(string s) {
int cnt[26] = {};
for(auto c : s) {
cnt[c - 'a'] += 1;
}
sort(cnt, cnt + 26);
if(noDeletion(cnt)) return 0;
int pos = 0;
while(pos < 26 && !cnt[pos]) pos += 1;
int answer = 0;
for(int i = pos + 1; i < 26; ++i) {
if(cnt[i] != cnt[i - 1]) continue;
for(int j = i - 1; j >= pos; --j) {
if(!cnt[j] || cnt[j] != cnt[j + 1]) break;
cnt[j] -= 1;
answer += 1;
}
}
return answer;
}
};
// Accepted
// 103/103 cases passed (79 ms)
// Your runtime beats 62.49 % of cpp submissions
// Your memory usage beats 81.59 % of cpp submissions (17.3 MB)