uva10344 23 out of 5
Your task is to write a program that can decide whether you can nd an arithmetic expression consisting
of ve given numbers ai (1 i 5) that will yield the value 23.
For this problem we will only consider arithmetic expressions of the following from:
(((a(1) o1 a(2)) o2 a(3)) o3 a(4)) o4 a(5)
where : f1;2;3;4;5g ! f1;2;3;4;5g is a bijective function and oi 2 f+; ;g(1 i 4)
Input
The Input consists of 5-Tupels of positive Integers, each between 1 and 50.
Input is terminated by a line containing ve zero's. This line should not be processed. Input le
will have no more than 25 lines.
Output
For each 5-Tupel print `Possible' (without quotes) if their exists an arithmetic expression (as described
above) that yields 23. Otherwise print `Impossible'.
Sample Input
1 1 1 1 1
1 2 3 4 5
2 3 5 7 11
0 0 0 0 0
Sample Output
Impossible
Possible
Possible
题目大意如下:给定5个正整数,和一个算术集合{+,-,*},求23点。
思路:因为24点或23点或n点的计算公式为(((a(1) o1 a(2)) o2 a(3)) o3 a(4)) o4 a(5),可知需要在5个正整数中选定一个初始的数来作为基础值,所以枚举此数,再进行回溯。
6748808 | 470 | 698 |
#include<cstdio> #include<cstring> #include<iostream> using namespace std; int a[6]; bool vis[6]; bool read() { bool useable=0; for(int i=0;i<5;i++){ scanf("%d",&a[i]); if(a[i])useable=1; } return useable; } bool dfs(int cur,int ans) { if(cur==4&&ans==23)return 1; for(int i=0;i<5;i++) if(!vis[i]){ vis[i]=1; if(dfs(cur+1,ans+a[i]))return 1; if(dfs(cur+1,ans*a[i]))return 1; if(dfs(cur+1,ans-a[i]))return 1; vis[i]=0; } return 0; } bool solve() { for(int i=0;i<5;i++){ memset(vis,0,sizeof(vis)); vis[i]=1; if(dfs(0,a[i]))return 1; vis[i]=0; } return 0; } int main() { while(read()){ if(solve())puts("Possible"); else puts("Impossible"); } return 0; }