A string s is LUCKY if and only if the number of different characters in s is a fibonacci number. Given a string consisting of only lower case letters , output all its lucky non-empty substrings in lexicographical order. Same substrings should be printed once.
输入描述:
a string consisting no more than 100 lower case letters.
输出描述:
output the lucky substrings in lexicographical order.one per line. Same substrings should be printed once.
输入例子:
aabcd
输出例子:
a
aa
aab
aabc
ab
abc
b
bc
bcd
c
cd
d
微软的题目。
字符串处理,主要是找到子串,然后判断子串里不同的字符数。主要由三个难点:
1、判断子串里不同字符个数,可以用一个大小为26char数组来解决:如果出现过就置1,如果没有出现过就是默认的0.(用count函数解决)
2、主要就是要生成全部的substring,以及26以内的fibonacci数列。
26以内的fibonacci数列只有 1 2 3 5 8 13 21 34 55 89,用一个const int数组可以表示。然后用STL里的find函数来判断是否为fibonacci数列。
3、构建子串,用STL里的string的substr(int i,size_t size)可以解决。
#include <iostream> #include <string> #include <vector> #include <set> #include <algorithm> using namespace std; int count(string s) { int p[26] = { 0 }, R = 0; for (int i = 0; i<s.length(); i++) if (p[s[i] - 'a'] == 0) { R++; p[s[i] - 'a'] = 1; } return R; } int main() { string str; set<string> s; cin >> str; const int fibonacci[] = { 1,2,3,5,8,13,21}; vector<int> vec1(fibonacci, fibonacci + 7); int n = 1; while (n<str.length()) { for (int i = 0; i <= str.length() - n; i++) { string ss = str.substr(i, n); if (find(vec1.begin(), vec1.end(), count(ss)) != vec1.end()) s.insert(ss); } n++; } set<string>::iterator it; for (it = s.begin(); it != s.end(); it++) cout << *it << endl; return 0; }