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1945. Sum of Digits of String After Convert
Description
You are given a string s consisting of lowercase English letters, and an integer k.
First, convert s into an integer by replacing each letter with its position in the alphabet (i.e., replace 'a' with 1, 'b' with 2, ..., 'z' with 26). Then, transform the integer by replacing it with the sum of its digits. Repeat the transform operation k times in total.
For example, if s = "zbax" and k = 2, then the resulting integer would be 8 by the following operations:
- Convert:
"zbax" ➝ "(26)(2)(1)(24)" ➝ "262124" ➝ 262124 - Transform #1:
262124 ➝ 2 + 6 + 2 + 1 + 2 + 4 ➝ 17 - Transform #2:
17 ➝ 1 + 7 ➝ 8
Return the resulting integer after performing the operations described above.
Example 1:
Input: s = "iiii", k = 1 Output: 36 Explanation: The operations are as follows: - Convert: "iiii" ➝ "(9)(9)(9)(9)" ➝ "9999" ➝ 9999 - Transform #1: 9999 ➝ 9 + 9 + 9 + 9 ➝ 36 Thus the resulting integer is 36.
Example 2:
Input: s = "leetcode", k = 2 Output: 6 Explanation: The operations are as follows: - Convert: "leetcode" ➝ "(12)(5)(5)(20)(3)(15)(4)(5)" ➝ "12552031545" ➝ 12552031545 - Transform #1: 12552031545 ➝ 1 + 2 + 5 + 5 + 2 + 0 + 3 + 1 + 5 + 4 + 5 ➝ 33 - Transform #2: 33 ➝ 3 + 3 ➝ 6 Thus the resulting integer is 6.
Example 3:
Input: s = "zbax", k = 2 Output: 8
Constraints:
1 <= s.length <= 1001 <= k <= 10sconsists of lowercase English letters.
Solutions
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class Solution { public int getLucky(String s, int k) { StringBuilder sb = new StringBuilder(); for (char c : s.toCharArray()) { sb.append(c - 'a' + 1); } s = sb.toString(); while (k-- > 0) { int t = 0; for (char c : s.toCharArray()) { t += c - '0'; } s = String.valueOf(t); } return Integer.parseInt(s); } } -
class Solution { public: int getLucky(string s, int k) { string t; for (char c : s) t += to_string(c - 'a' + 1); s = t; while (k--) { int t = 0; for (char c : s) t += c - '0'; s = to_string(t); } return stoi(s); } }; -
class Solution: def getLucky(self, s: str, k: int) -> int: s = ''.join(str(ord(c) - ord('a') + 1) for c in s) for _ in range(k): t = sum(int(c) for c in s) s = str(t) return int(s) -
func getLucky(s string, k int) int { var t strings.Builder for _, c := range s { t.WriteString(strconv.Itoa(int(c - 'a' + 1))) } s = t.String() for k > 0 { k-- t := 0 for _, c := range s { t += int(c - '0') } s = strconv.Itoa(t) } ans, _ := strconv.Atoi(s) return ans } -
function getLucky(s: string, k: number): number { let ans = ''; for (const c of s) { ans += c.charCodeAt(0) - 'a'.charCodeAt(0) + 1; } for (let i = 0; i < k; i++) { let t = 0; for (const v of ans) { t += Number(v); } ans = `${t}`; } return Number(ans); } -
class Solution { /** * @param String $s * @param Integer $k * @return Integer */ function getLucky($s, $k) { $rs = ''; for ($i = 0; $i < strlen($s); $i++) { $num = ord($s[$i]) - 96; $rs = $rs . strval($num); } while ($k != 0) { $sum = 0; for ($j = 0; $j < strlen($rs); $j++) { $sum += intval($rs[$j]); } $rs = strval($sum); $k--; } return intval($rs); } } -
impl Solution { pub fn get_lucky(s: String, k: i32) -> i32 { let mut ans = String::new(); for c in s.as_bytes() { ans.push_str(&(c - b'a' + 1).to_string()); } for _ in 0..k { let mut t = 0; for c in ans.as_bytes() { t += (c - b'0') as i32; } ans = t.to_string(); } ans.parse().unwrap() } }