输入
E R N
v1 v2 ... vn
有n个工作,没做一个消耗一定的能量,但可以得到R个能量(最多为E,多则去除),初始能量是E, 每件工作的收益是
v[i]*u[i], u[i] 做i使用的能量. u[i]>=0, u[i]<=E
解:
如果规定u[i]>=1,那么这个问题就很简单, find the max in V[ ], then use E energy to do it, the others use R to do them.
So max gain is Vmax*E+ sum(Vnon-max *R).
But u[i] can be zero.
that is for a position i, the energy before can be accumulated, if u[i] is much bigger then then all the j before i, but u[i] is not the maximum of V[].
Like
E =5 R=1
V[]= 1 1 1 99 1 1 100
1*1 + 1*1 +1*1 +1*99 + 1*1 +1*1 +5*100 < 1*1 + 1*1 + 1*1 +99*3 + 0*1 +0*1 +5*100
u[0]=E
for(i=1;i<N;i++){
u[i]=R;
for(j=i-1;j>=0;j--){
if(v[j]>=v[i]) break;
if(u[j]+u[i]<=E){ u[i]=u[i]+u[j]; u[j]=0; }
else {
u[j]=u[j]-(E-u[i]);
u[i]=E;
break;
}
}
sum=0;
for(i=0;i<N;i++) sum=sum+u[i]*V[i];