Given an integer with no more than 9 digits, you are supposed to read it in the traditional Chinese way. Output Fu first if it is negative. For example, -123456789 is read as Fu yi Yi er Qian san Bai si Shi wu Wan liu Qian qi Bai ba Shi jiu. Note: zero (ling) must be handled correctly according to the Chinese tradition. For example, 100800 is yi Shi Wan ling ba Bai.
Input Specification:
Each input file contains one test case, which gives an integer with no more than 9 digits.
Output Specification:
For each test case, print in a line the Chinese way of reading the number. The characters are separated by a space and there must be no extra space at the end of the line.
Sample Input 1:
-123456789
Sample Output 1:
Fu yi Yi er Qian san Bai si Shi wu Wan liu Qian qi Bai ba Shi jiu
Sample Input 2:
100800Sample Output 2:
yi Shi Wan ling ba Bai思路:
• 设置下标left和right,分别指向一小节(4位或者小于4位)的当前位和个位;
• 循环处理每一小节的数据,当遇到非第一位的0的时候,flag=1;如果不是0,判断前面是否已经累积0决定是和否输出“ling”,然后依次输出汉语和位数;
• 在每一小节输出之后判断是否输出“Wan”或“Yi”。注意大小写,被“Fu”写成“fu”搞得心力交瘁(╬ ̄皿 ̄)=○
以上思路参照《算法笔记》和我自己的理解。
#include <iostream> #include <string> #include <algorithm> using namespace std; int main() { int n; string s; string hy[10] = { "ling","yi","er","san","si","wu","liu","qi","ba","jiu" }; string wei[3] = { "Shi","Bai","Qian" }; string sw[2] = { "Wan","Yi" }; cin >> n; if (n == 0)cout << "ling"; else { if (n < 0)cout << "Fu" << " "; s = to_string(abs(n)); } int len = s.length(); int left = 0, right = len - 1;//分别指向首尾元素 while (left + 4 <= right) right -= 4; while (left < len) { int flag = 0;//是否有累积0 int isprint = 0;//是否已经有输出 while (left <= right) { if (s[left] == '0') { flag = 1; } else { if (left > 0)cout << " "; if (flag == 1) { cout << "ling" << " "; flag = 0; } cout << hy[s[left] - '0']; isprint = 1; if (left != right)cout << " " << wei[right - left - 1]; } left++; } if (isprint == 1 && right != len - 1) { cout << " " << sw[(len-right)/4-1]; } right += 4; } return 0; }