思路:
2*26^1 + 1*26^0 = 53 ---> BA
2*26^2 + 26*26^1 + 26*26^0 = 2054 ---> BZZ
代码实现:
package date_0406;
import java.util.Scanner;
//1 ~ 26 A~Z 、AA 27 AB 28
public class Main1 {
public static void main(String[] args) {
/**
* 2*26^1 + 1*26^0 = 53 ---> BA
* 2*26^2 + 26*26^1 + 26*26^0 = 2054 ---> BZZ
*/
Scanner scanner = new Scanner(System.in);
int target = scanner.nextInt();
char[] ans = new char[1000000];
//下标索引
int index = 0;
while (target >0) {
//求出余数
int temp = target%26;
if (temp == 0) {//整除,余数为0,值为Z
//index++ 会在这一行执行完毕后递增,目的就是更新索引
ans[index++] = 'Z';
//挪位 -26/26
target = (target-26)/26;
}else {
//余数对照字符赋值
ans[index++] = (char)('A'+temp-1);
//挪位 -余数/26
target = (target - temp) /26;
}
}
//输出
for (int i = index-1; i >=0; i--) {
System.out.print(ans[i]);
}
}
}
注意:
('A' + temp-1) -1是因为前面A算是+1了,所以,保持原来的就需要 -1
挪位:
整除了: (target -26 )/ 26
有余数:(target - 余数) /26