Hidden String
Accepts: 437
Submissions: 2174
Time Limit: 2000/1000 MS (Java/Others)
Memory Limit: 262144/262144 K (Java/Others)
问题描述
今天是BestCoder一周年纪念日. 比赛管理员Soda有一个长度为n 的字符串s . 他想要知道能否找到s 的三个互不相交的子串s[l1..r1] ,s[l2..r2] ,s[l3..r3] 满足下列条件: 1.1≤l1≤r1<l2≤r2<l3≤r3≤n 2.s[l1..r1] ,s[l2..r2] ,s[l3..r3] 依次连接之后得到字符串"anniversary".
输入描述
输入有多组数据. 第一行有一个整数T (1≤T≤100) , 表示测试数据组数. 然后对于每组数据: 一行包含一个仅含小写字母的字符串s (1≤|s|≤100) .
输出描述
对于每组数据, 如果Soda可以找到这样三个子串, 输出"YES", 否则输出"NO".
输入样例
2 annivddfdersewwefary nniversarya
输出样例
YES NO
这题想要总结的地方就是理解一下题意吧,分成三段。。。(单独的annniversary要输出YES)
改了很久也很low的代码,也不优化了,纪念一下吧
代码:
#include <iostream> #include <algorithm> #include <cmath> #include <vector> #include <string> #include <cstring> #pragma warning(disable:4996) using namespace std; vector<int> wei_z[30]; vector<int> weizhi; char test[200]; int len,i,flag; void init() { for(i=0;i<len;i++) { wei_z[test[i]-'a'].push_back(i); } } bool pend() { int result=0,temp=weizhi[0]; for(i=1;i<weizhi.size();i++) { if(temp!=weizhi[i]-1) result++; temp=weizhi[i]; } if(result<=2) return true; else return false; } void solve() { int i1,i2,i3,i4,i5,i6,i7,i8,i9,i10,i11; for(i1=0;i1<wei_z['a'-'a'].size();i1++) { for(i2=0;i2<wei_z['n'-'a'].size();i2++) { if(wei_z['n'-'a'][i2]<=wei_z['a'-'a'][i1])continue; for(i3=0;i3<wei_z['n'-'a'].size();i3++) { if(wei_z['n'-'a'][i3]<=wei_z['n'-'a'][i2])continue; for(i4=0;i4<wei_z['i'-'a'].size();i4++) { if(wei_z['i'-'a'][i4]<=wei_z['n'-'a'][i3])continue; for(i5=0;i5<wei_z['v'-'a'].size();i5++) { if(wei_z['v'-'a'][i5]<=wei_z['i'-'a'][i4])continue; for(i6=0;i6<wei_z['e'-'a'].size();i6++) { if(wei_z['e'-'a'][i6]<=wei_z['v'-'a'][i5])continue; for(i7=0;i7<wei_z['r'-'a'].size();i7++) { if(wei_z['r'-'a'][i7]<=wei_z['e'-'a'][i6])continue; for(i8=0;i8<wei_z['s'-'a'].size();i8++) { if(wei_z['s'-'a'][i8]<=wei_z['r'-'a'][i7])continue; for(i9=0;i9<wei_z['a'-'a'].size();i9++) { if(wei_z['a'-'a'][i9]<=wei_z['s'-'a'][i8])continue; for(i10=0;i10<wei_z['r'-'a'].size();i10++) { if(wei_z['r'-'a'][i10]<=wei_z['a'-'a'][i9])continue; for(i11=0;i11<wei_z['y'-'a'].size();i11++) { if(wei_z['y'-'a'][i11]<=wei_z['r'-'a'][i10])continue; weizhi.push_back(wei_z['a'-'a'][i1]); weizhi.push_back(wei_z['n'-'a'][i2]); weizhi.push_back(wei_z['n'-'a'][i3]); weizhi.push_back(wei_z['i'-'a'][i4]); weizhi.push_back(wei_z['v'-'a'][i5]); weizhi.push_back(wei_z['e'-'a'][i6]); weizhi.push_back(wei_z['r'-'a'][i7]); weizhi.push_back(wei_z['s'-'a'][i8]); weizhi.push_back(wei_z['a'-'a'][i9]); weizhi.push_back(wei_z['r'-'a'][i10]); weizhi.push_back(wei_z['y'-'a'][i11]); if(pend()==true) { flag=1; return; } weizhi.clear(); } } } } } } } } } } } } int main() { int Test1; cin>>Test1; while(Test1--) { cin>>test; for(i=0;i<=29;i++) wei_z[i].clear(); weizhi.clear(); flag=0; len=strlen(test); init(); solve(); if(flag) cout<<"YES"<<endl; else cout<<"NO"<<endl; } return 0; }
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