Given a string s formed by digits ('0' - '9') 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.
It's guaranteed 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"
Example 3:
Input: s = "25#" Output: "y"
Example 4:
Input: s = "12345678910#11#12#13#14#15#16#17#18#19#20#21#22#23#24#25#26#" Output: "abcdefghijklmnopqrstuvwxyz"
Constraints:
1 <= s.length <= 1000s[i]only contains digits letters ('0'-'9') and'#'letter.swill be valid string such that mapping is always possible.
class Solution { public String freqAlphabets(String s) { StringBuilder sb = new StringBuilder(); if(s.length() == 0 || s == null || s.charAt(0) == '#') return ""; for(int i = 0; i < s.length(); i++){ if((i+2) < s.length() && s.charAt(i+2) == '#'){ sb.append((char) ('a' + Integer.parseInt(s.substring(i, i+2)) - 1)); i += 2; } else{ sb.append((char) ('a' + Integer.parseInt(s.substring(i, i+1)) - 1)); } } return sb.toString(); } }
可以直接做,先判断第三位是不是#,如果是就append前两位数对应的字母,记得要i = i + 2,总共应该是个+3跳过整个字母的对应,因为for循环中还有个+1所以这里+2就好了
如果第三位不是#,就说明是10位一下,方法照做就好,最后从头+1跳过就可以。
StringBuilder比String要好