Gym - 100735H
2017-02-18 11:21
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Informikas was cleaning his drawers while he found a toy of his childhood. Well, it's not just a toy, it's a bunch of cubes with letters and digits written on them.
Informikas remembers that he could have make any word he could think of using these cubes. He is not sure about that now, because some of the cubes have been lost.
Informikas has already come up with a word he would like to make. Could you help him by saying if the word can be built from the cubes in the drawer?
Input
On the first line of input there is a string S, consisting of lowercase English letters, and an integer N (4 ≤ |S| ≤ 20, 1 ≤ N ≤ 100)
– the word Informikas want to build and the number of cubes. On the every of the following N lines there are 6 characters. Every of those characters is either a lowercase English letter or a
digit.
It is guaranteed that the string S consists only of lowercase English letters.
Output
Output one word, either "YES", if the word can be built using given cubes, or "NO" otherwise.
Example
Input
dogs 4d 1 w e 7 9o 2 h a v eg 3 c o o ks 3 i e s 5
Output
YES
Input
banana 6b a 7 8 9 1n 1 7 7 7 6a 9 6 3 7 8n 8 2 4 7 9a 7 8 9 1 3s 7 1 1 2 7
Output
NO
题意是:找一下是否能组成INPUT给的单词 由于是正方体 所以只能左右 上下找。
#include <bits/stdc++.h> using namespace std; #define LL long long #define INF 1E4 * 1E9 #define pi acos(-1) #define endl '\n' #define me(x) memset(x,0,sizeof(x)); const int maxn=1e3+5; const int maxx=1e6+5; /* dogs 4 d 1 w e 7 9 o 2 h a v e g 3 c o o k s 3 i e s 5 banana 6 b a 7 8 9 1 n 1 7 7 7 6 a 9 6 3 7 8 n 8 2 4 7 9 a 7 8 9 1 3 s 7 1 1 2 7 */ struct node { int x,y; }q[maxn]; char cnt[maxn],cnl[maxn][maxn]; int n,vis[maxn],ans,len; void dfs() { if(ans==len) return; for(int i=0;i<n;i++)//每一排 { if(vis[i]) continue; for(int j=0;j<6;j++)//每一排的字符数 { if(cnl[i][j]==cnt[ans]) { ans++;vis[i]=1; if(len==ans) return; dfs(); if(len==ans) return; ans--;vis[i]=0;break; } } } } int main() { cin>>cnt>>n; int num=0; for(int i=0;i<n;i++) { for(int j=0;j<6;j++) { cin>>cnl[i][j]; if(cnl[i][j]==cnt[0])//如果满足INPUT给的单词的第一个字母 则加入结构体中存起来 { q[num].x=i; q[num].y=j; num++; } } } me(vis); len=strlen(cnt); for(int i=0;i<num;i++) { vis[q[i].x]=1; ans=1; //ans的作用是已经符合了多少个单词 比如dogs 如果ans=4 则已经满足条件 dfs(); if(len==ans)//这里就是上面所说 { puts("YES"); return 0; } vis[q[i].x]=0; ans=0; } puts("NO"); }
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