cf864 E. Fire
作者:互联网
题意:
每个任务有所需时间、DDL、价值。最大化总价值
任务数 <= 100,所需时间 <=20,DDL <= 2000,价值 <= 20
思路:
按DDL从小到大排序,然后做一个正常的01背包
或许跟 gym103640 M. Most Ordered Way 有一点点相似?单线程做任务,都是先做ddl靠前的
const signed N = 103, M = 2003;
int n, f[N][M], pre[N][M];
struct node {
int t, d, p, id;
void rd(int i) { cin >> t >> d >> p, id = i; }
} a[N];
vector<int> ve;
void dfs(int n, int m) { //回溯路径
if(!n) return;
int pm = pre[n][m]; dfs(n-1, pm);
if(f[n][m] > f[n-1][pm]) ve.pb(a[n].id);
}
signed main() {
iofast;
cin >> n; for(int i = 1; i <= n; i++) a[i].rd(i);
sort(a + 1, a + 1 + n, [](const node &a, const node &b) {
return a.d < b.d;
});
memset(f, -1, sizeof f); f[0][0] = 0;
for(int i = 1; i <= n; i++)
for(int j = 0; j < a[i].d; j++) {
if(~f[i-1][j]) f[i][j] = f[i-1][j], pre[i][j] = j;
if(j >= a[i].t && f[i-1][j-a[i].t] + a[i].p > f[i][j])
if(~f[i-1][j-a[i].t]) //要来自合法的状态
f[i][j] = f[i-1][j-a[i].t] + a[i].p, pre[i][j] = j-a[i].t;
}
int p = max_element(f[n], f[n]+M) - f[n];
cout << f[n][p] << endl; dfs(n, p);
cout << ve.size() << endl; for(int i : ve) cout << i << ' ';
}
标签:pre,ve,Fire,cf864,dfs,int,id,pm 来源: https://www.cnblogs.com/wushansinger/p/16205212.html