字母的 字母值 取决于字母在字母表中的位置,从 0 开始 计数。即,'a' -> 0、'b' -> 1、'c' -> 2,以此类推。
对某个由小写字母组成的字符串 s 而言,其 数值 就等于将 s 中每个字母的 字母值 按顺序 连接 并 转换 成对应整数。
- 例如,
s = "acb",依次连接每个字母的字母值可以得到"021",转换为整数得到21。
给你三个字符串 firstWord、secondWord 和 targetWord ,每个字符串都由从 'a' 到 'j' (含 'a' 和 'j' )的小写英文字母组成。
如果 firstWord 和 secondWord 的 数值之和 等于 targetWord 的数值,返回 true ;否则,返回 false 。
示例 1:
输入:firstWord = "acb", secondWord = "cba", targetWord = "cdb" 输出:true 解释: firstWord 的数值为 "acb" -> "021" -> 21 secondWord 的数值为 "cba" -> "210" -> 210 targetWord 的数值为 "cdb" -> "231" -> 231 由于 21 + 210 == 231 ,返回 true
示例 2:
输入:firstWord = "aaa", secondWord = "a", targetWord = "aab" 输出:false 解释: firstWord 的数值为 "aaa" -> "000" -> 0 secondWord 的数值为 "a" -> "0" -> 0 targetWord 的数值为 "aab" -> "001" -> 1 由于 0 + 0 != 1 ,返回 false
示例 3:
输入:firstWord = "aaa", secondWord = "a", targetWord = "aaaa" 输出:true 解释: firstWord 的数值为 "aaa" -> "000" -> 0 secondWord 的数值为 "a" -> "0" -> 0 targetWord 的数值为 "aaaa" -> "0000" -> 0 由于 0 + 0 == 0 ,返回 true
提示:
1 <= firstWord.length,secondWord.length,targetWord.length <= 8firstWord、secondWord和targetWord仅由从'a'到'j'(含'a'和'j')的小写英文字母组成。
class Solution:
def isSumEqual(self, firstWord: str, secondWord: str, targetWord: str) -> bool:
def f(s):
res = 0
for c in s:
res = res * 10 + (ord(c) - ord('a'))
return res
return f(firstWord) + f(secondWord) == f(targetWord)class Solution {
public boolean isSumEqual(String firstWord, String secondWord, String targetWord) {
return f(firstWord) + f(secondWord) == f(targetWord);
}
private int f(String s) {
int res = 0;
for (char c : s.toCharArray()) {
res = res * 10 + (c - 'a');
}
return res;
}
}class Solution {
public:
bool isSumEqual(string firstWord, string secondWord, string targetWord) {
return f(firstWord) + f(secondWord) == f(targetWord);
}
int f(string s) {
int res = 0;
for (char c : s) res = res * 10 + (c - 'a');
return res;
}
};func isSumEqual(firstWord string, secondWord string, targetWord string) bool {
f := func(s string) int {
res := 0
for _, c := range s {
res = res*10 + int(c-'a')
}
return res
}
return f(firstWord)+f(secondWord) == f(targetWord)
}/**
* @param {string} firstWord
* @param {string} secondWord
* @param {string} targetWord
* @return {boolean}
*/
var isSumEqual = function (firstWord, secondWord, targetWord) {
function f(s) {
let res = 0;
for (let c of s) {
res = res * 10 + (c.charCodeAt() - 'a'.charCodeAt());
}
return res;
}
return f(firstWord) + f(secondWord) == f(targetWord);
};function isSumEqual(
firstWord: string,
secondWord: string,
targetWord: string,
): boolean {
const calc = (s: string) => {
let res = 0;
for (const c of s) {
res = res * 10 + c.charCodeAt(0) - 'a'.charCodeAt(0);
}
return res;
};
return calc(firstWord) + calc(secondWord) === calc(targetWord);
}impl Solution {
fn calc(s: &String) -> i32 {
let mut res = 0;
for c in s.as_bytes() {
res = res * 10 + (c - b'a') as i32;
}
res
}
pub fn is_sum_equal(first_word: String, second_word: String, target_word: String) -> bool {
Self::calc(&first_word) + Self::calc(&second_word) == Self::calc(&target_word)
}
}int calc(char *s) {
int res = 0;
for (int i = 0; s[i]; i++) {
res = res * 10 + s[i] - 'a';
}
return res;
}
bool isSumEqual(char *firstWord, char *secondWord, char *targetWord) {
return calc(firstWord) + calc(secondWord) == calc(targetWord);
}