1082. Read Number in Chinese (25)【字符串处理】——PAT (Advanced Level) Practise
题目信息
1082. Read Number in Chinese (25)
时间限制400 ms
内存限制65536 kB
代码长度限制16000 B
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:
100800
Sample Output 2:
yi Shi Wan ling ba Bai
解题思路
注意细节
AC代码
#include #include #include #include using namespace std; char num[][5] = {"ling", "yi", "er", "san", "si", "wu", "liu", "qi", "ba", "jiu"}; char step[][5] = {"", "Shi", "Bai", "Qian"}; char bigStep[][5] = {"", "Wan", "Yi"}; vector ans, qans; void show(string s, bool first) { int i = 0, t = -1; while (i < s.size() && '0' == s[i]) ++i; t = i - 1; if (i != 0 && (ans.empty() || ans[ans.size() - 1] != "ling")) ans.push_back("ling"); for (; i < s.size(); ++i){ if (t + 1 != i) ans.push_back("ling"); t = i; ans.push_back(num[s[i] - '0']); ans.push_back(step[s.size() - 1 - i]); while (i + 1 < s.size() && '0' == s[i + 1]) ++i; first = false; } } int main() { char s[15]; char *p = s; gets(s); int len = strlen(s); if (s[0] == '-'){ ans.push_back("Fu"); --len; ++p; } for (int i = 8; i >= 0; i -= 4){ if (len > i){ show(string(p, p + len - i), p == s); if (ans[ans.size() - 1] != "ling") ans.push_back(bigStep[i/4]); p += len - i; len -= len - i; if (strspn(p, "0") == len) break; } } for (int i = 0; i < ans.size(); ++i){ if (ans[i] != "") qans.push_back(ans[i]); } for (int i = 0; i < qans.size() - 1; ++i){ printf("%s ", qans[i].c_str()); } printf("%s\n", qans[qans.size() - 1].c_str()); return 0; }