You are given a 0-indexed string text
and another 0-indexed string pattern
of length 2
, both of which consist of only lowercase English letters.
You can add either pattern[0]
or pattern[1]
anywhere in text
exactly once. Note that the character can be added even at the beginning or at the end of text
.
Return the maximum number of times pattern
can occur as a subsequence of the modified text
.
A subsequence is a string that can be derived from another string by deleting some or no characters without changing the order of the remaining characters.
Example 1:
Input: text = "abdcdbc", pattern = "ac" Output: 4 Explanation: If we add pattern[0] = 'a' in between text[1] and text[2], we get "abadcdbc". Now, the number of times "ac" occurs as a subsequence is 4. Some other strings which have 4 subsequences "ac" after adding a character to text are "aabdcdbc" and "abdacdbc". However, strings such as "abdcadbc", "abdccdbc", and "abdcdbcc", although obtainable, have only 3 subsequences "ac" and are thus suboptimal. It can be shown that it is not possible to get more than 4 subsequences "ac" by adding only one character.
Example 2:
Input: text = "aabb", pattern = "ab" Output: 6 Explanation: Some of the strings which can be obtained from text and have 6 subsequences "ab" are "aaabb", "aaabb", and "aabbb".
Constraints:
1 <= text.length <= 105
pattern.length == 2
text
andpattern
consist only of lowercase English letters.
class Solution:
def maximumSubsequenceCount(self, text: str, pattern: str) -> int:
ans = 0
cnt = Counter()
for c in text:
if c == pattern[1]:
ans += cnt[pattern[0]]
cnt[c] += 1
ans += max(cnt[pattern[0]], cnt[pattern[1]])
return ans
class Solution {
public long maximumSubsequenceCount(String text, String pattern) {
int[] cnt = new int[26];
char a = pattern.charAt(0);
char b = pattern.charAt(1);
long ans = 0;
for (char c : text.toCharArray()) {
if (c == b) {
ans += cnt[a - 'a'];
}
cnt[c - 'a']++;
}
ans += Math.max(cnt[a - 'a'], cnt[b - 'a']);
return ans;
}
}
class Solution {
public:
long long maximumSubsequenceCount(string text, string pattern) {
long long ans = 0;
char a = pattern[0], b = pattern[1];
vector<int> cnt(26);
for (char& c : text) {
if (c == b) ans += cnt[a - 'a'];
cnt[c - 'a']++;
}
ans += max(cnt[a - 'a'], cnt[b - 'a']);
return ans;
}
};
func maximumSubsequenceCount(text string, pattern string) int64 {
ans := 0
cnt := make([]int, 26)
a, b := pattern[0], pattern[1]
for i := range text {
c := text[i]
if c == b {
ans += cnt[a-'a']
}
cnt[c-'a']++
}
ans += max(cnt[a-'a'], cnt[b-'a'])
return int64(ans)
}
func max(a, b int) int {
if a > b {
return a
}
return b
}