| comments | difficulty | edit_url | rating | source | tags | ||
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true |
Medium |
1473 |
Biweekly Contest 18 Q2 |
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Given a palindromic string of lowercase English letters palindrome, replace exactly one character with any lowercase English letter so that the resulting string is not a palindrome and that it is the lexicographically smallest one possible.
Return the resulting string. If there is no way to replace a character to make it not a palindrome, return an empty string.
A string a is lexicographically smaller than a string b (of the same length) if in the first position where a and b differ, a has a character strictly smaller than the corresponding character in b. For example, "abcc" is lexicographically smaller than "abcd" because the first position they differ is at the fourth character, and 'c' is smaller than 'd'.
Example 1:
Input: palindrome = "abccba" Output: "aaccba" Explanation: There are many ways to make "abccba" not a palindrome, such as "zbccba", "aaccba", and "abacba". Of all the ways, "aaccba" is the lexicographically smallest.
Example 2:
Input: palindrome = "a" Output: "" Explanation: There is no way to replace a single character to make "a" not a palindrome, so return an empty string.
Constraints:
1 <= palindrome.length <= 1000palindromeconsists of only lowercase English letters.
First, we check if the length of the string is
Otherwise, we traverse the first half of the string from left to right, find the first character that is not 'a', and change it to 'a'. If no such character exists, we change the last character to 'b'.
The time complexity is
class Solution:
def breakPalindrome(self, palindrome: str) -> str:
n = len(palindrome)
if n == 1:
return ""
s = list(palindrome)
i = 0
while i < n // 2 and s[i] == "a":
i += 1
if i == n // 2:
s[-1] = "b"
else:
s[i] = "a"
return "".join(s)class Solution {
public String breakPalindrome(String palindrome) {
int n = palindrome.length();
if (n == 1) {
return "";
}
char[] cs = palindrome.toCharArray();
int i = 0;
while (i < n / 2 && cs[i] == 'a') {
++i;
}
if (i == n / 2) {
cs[n - 1] = 'b';
} else {
cs[i] = 'a';
}
return String.valueOf(cs);
}
}class Solution {
public:
string breakPalindrome(string palindrome) {
int n = palindrome.size();
if (n == 1) {
return "";
}
int i = 0;
while (i < n / 2 && palindrome[i] == 'a') {
++i;
}
if (i == n / 2) {
palindrome[n - 1] = 'b';
} else {
palindrome[i] = 'a';
}
return palindrome;
}
};func breakPalindrome(palindrome string) string {
n := len(palindrome)
if n == 1 {
return ""
}
i := 0
s := []byte(palindrome)
for i < n/2 && s[i] == 'a' {
i++
}
if i == n/2 {
s[n-1] = 'b'
} else {
s[i] = 'a'
}
return string(s)
}function breakPalindrome(palindrome: string): string {
const n = palindrome.length;
if (n === 1) {
return '';
}
const s = palindrome.split('');
let i = 0;
while (i < n >> 1 && s[i] === 'a') {
i++;
}
if (i == n >> 1) {
s[n - 1] = 'b';
} else {
s[i] = 'a';
}
return s.join('');
}