HDU 3466 Dividing coins 01背包变形+技巧

HDU 3466 Dividing coins

Time Limit:1000MS    Memory Limit:65536KB    64bit IO Format:%I64d & %I64u

SubmitStatusPracticeHDU 3466

Appoint description:

Description

Recently, iSea went to an ancient country. For such a long time, it was the most wealthy and powerful kingdom in the world. As a result, the people in this country are still very proud even if their nation hasn’t been so wealthy any more.
The merchants were the most typical, each of them only sold exactly one item, the price was Pi, but they would refuse to make a trade with you if your money were less than Qi, and iSea evaluated every item a value Vi.
If he had M units of money, what’s the maximum value iSea could get?

Input

There are several test cases in the input.

Each test case begin with two integers N, M (1 ≤ N ≤ 500, 1 ≤ M ≤ 5000), indicating the items’ number and the initial money.
Then N lines follow, each line contains three numbers Pi, Qi and Vi (1 ≤ Pi ≤ Qi ≤ 100, 1 ≤ Vi ≤ 1000), their meaning is in the description.

The input terminates by end of file marker.

Output

For each test case, output one integer, indicating maximum value iSea could get.

Sample Input

2 1010 15 105 10 53 105 10 53 5 62 7 3

Sample Output

511解题思路：这题其实不简单，关键是不好想，不过做多了就好想了1，首先是01背包，但是要求买的时候要有q的钱才能买2，那么那我买的时候就得有max(p,q);的钱才能买3，然后状态转移方程就是dp[j] = max(dp[j],dp[j-arry[i].p]+arry[i].v);4，然后总觉得还缺些什么，这样写不是最优的5，还要根据q-p排序从小到大,这样才是最优的，要让q比p多的最小的先判断买或不买6，主要是考虑状态转移方程的无后效性吧
#include<bits/stdc++.h>using namespace std;const int maxn = 505 ;struct node{    int p,q,v;};node arry[maxn] ;int dp[5005] ;bool cmp(node x,node y){    return (x.q-x.p)<(y.q-y.p) ;}int main(){    int n,m;    while(~scanf("%d%d",&n,&m)){        for(int i=1;i<=n;i++){            scanf("%d%d%d",&arry[i].p,&arry[i].q,&arry[i].v);        }        sort(arry+1,arry+n+1,cmp) ;        memset(dp,0,sizeof(dp)) ;        for(int i=1;i<=n;i++){///按照q-p排序            for(int j=m;j>=max(arry[i].q,arry[i].p);j--){                dp[j] = max(dp[j],dp[j-arry[i].p]+arry[i].v);            }//            for(int k=1;k<=m;k++){//                printf("%d ",dp[k]);//            }printf("\n");        }        int ans = dp[m] ;        printf("%d\n",ans);    }    return 0;}