WOJ

继续用DFS+记忆化剪枝来解决一般的dp

Description
Alex likes solving problems on WOJ (http://acm.whu.edu.cn/oak). As we all know, a beautiful balloon will appears when a 
problem is solved. Alex loves balloons, especially when they're in a consecutive column, from which he can get a sense of 
accomplishment. 

Problems on WOJ have a variety of difficulties. Hard problems cost more time, while easy ones may be "killed in 1 
second". Now we know that WOJ has N problems, numbered from 1 to N. Alex calls the solved problems in one 
consecutive column as a "successful string". The length of a successful string is the number of problems it contains. Also 
he defines the value of a successful string as the square of the string's length. Alex hopes to solve a certain number of 
problems in M time, so he can get some successful strings, now he wants to maximize the sum of all the strings' value. 

WOJ_第1张图片

Input
The input consists of multiple test cases. The first line of input contains an integer T, which is the number of test cases. 

The input consists of several test cases. Each test case starts with a line containing two integers N and M. 
Each of the following N lines contains a single integer Mi indicating the time cost on solving the i-th problem. 
(1<=N, M<=100) 

[Technical Specification] 
T is an integer, and T <= 15; 
N and M are integers, 1 <= N, M <= 100. 
Mi are integers and, 0 <= Mi <= 100 

Output
For each test case, print a single line containing a number indicating the maximum sum.

#include<stdio.h>
#include<string.h>
int visited[105][105][105];
int dfs(int ,int ,int );
int ques[105];
int n;
int main()
{
	int t,i,time;
	for(scanf("%d",&t);t;t--)
	{
		memset(visited,0,sizeof(visited));
		scanf("%d %d",&n,&time);
		for(i=0;i<n;i++)
			scanf("%d",&ques[i]);
		printf("%d\n",dfs(0,time,0));
	}
	return 0;
}
int dfs(int no,int rest,int cons)
{
	int k1,k2,max;
	k1=k2=max=0;
	if(visited[no][rest][cons]) return visited[no][rest][cons];
	if(no==n+1) return 0;
/*	printf("no:%d rest:%d cons:%d \n",no,rest,cons);*/
	if(rest>=ques[no])
		k1=dfs(no+1,rest-ques[no],cons+1);
	k2=dfs(no+1,rest,0);
	if(k1>=k2) max=k1;
	else max=k2;
	if(!cons) 
	{
		visited[no][rest][cons]=max;
	/*	printf("HHHH:%d\n",visited[no][rest][cons]);*/
	}
	else
		visited[no][rest][cons]=cons*2-1+max;
/*	printf("no:%d rest:%d cons:%d  result:%d\n",no,rest,cons,visited[no][rest][cons]);*/
	return visited[no][rest][cons];
}


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