You are given a string s formed by digits and '#'. We want to map s to English lowercase characters as follows:
- Characters (
'a'to'i') are represented by ('1'to'9') respectively. - Characters (
'j'to'z') are represented by ('10#'to'26#') respectively.
Return the string formed after mapping.
The test cases are generated so that a unique mapping will always exist.
Example 1:
Input: s = "10#11#12" Output: "jkab" Explanation: "j" -> "10#" , "k" -> "11#" , "a" -> "1" , "b" -> "2".
Example 2:
Input: s = "1326#" Output: "acz"
Constraints:
1 <= s.length <= 1000sconsists of digits and the'#'letter.swill be a valid string such that mapping is always possible.
class Solution:
def freqAlphabets(self, s: str) -> str:
def get(s):
return chr(ord('a') + int(s) - 1)
i, n = 0, len(s)
res = []
while i < n:
if i + 2 < n and s[i + 2] == '#':
res.append(get(s[i : i + 2]))
i += 3
else:
res.append(get(s[i]))
i += 1
return ''.join(res)class Solution {
public String freqAlphabets(String s) {
int i = 0, n = s.length();
StringBuilder res = new StringBuilder();
while (i < n) {
if (i + 2 < n && s.charAt(i + 2) == '#') {
res.append(get(s.substring(i, i + 2)));
i += 3;
} else {
res.append(get(s.substring(i, i + 1)));
i += 1;
}
}
return res.toString();
}
private char get(String s) {
return (char) ('a' + Integer.parseInt(s) - 1);
}
}function freqAlphabets(s: string): string {
const n = s.length;
const ans = [];
let i = 0;
while (i < n) {
if (s[i + 2] == '#') {
ans.push(s.slice(i, i + 2));
i += 3;
} else {
ans.push(s[i]);
i += 1;
}
}
return ans
.map(c => String.fromCharCode('a'.charCodeAt(0) + Number(c) - 1))
.join('');
}impl Solution {
pub fn freq_alphabets(s: String) -> String {
let s = s.as_bytes();
let n = s.len();
let mut res = String::new();
let mut i = 0;
while i < n {
let code: u8;
if s.get(i + 2).is_some() && s[i + 2] == b'#' {
code = (s[i] - b'0') * 10 + s[i + 1];
i += 3;
} else {
code = s[i];
i += 1;
}
res.push(char::from('a' as u8 + code - b'1'));
}
res
}
}char* freqAlphabets(char* s) {
int n = strlen(s);
int i = 0;
int j = 0;
char* ans = malloc(sizeof(s) * n);
while (i < n) {
int t;
if (i + 2 < n && s[i + 2] == '#') {
t = (s[i] - '0') * 10 + s[i + 1];
i += 3;
} else {
t = s[i];
i += 1;
}
ans[j++] = 'a' + t - '1';
}
ans[j] = '\0';
return ans;
}