首先按照一般方法,把数列往后复制,即a1a2,,,ana1a2,,,an,然后对其求前缀和。接下来就要求移动的区间内的最小值(这里很像POJ2823),看其是否大于等于零。那么就可用到单调队列来求了,队列里保存当前区间里的单调不递减的值,那么就可以在O(1)的复杂度内知道当前区间的最小值,即队首元素大于等于零,则ans+1。
My code:
[cpp]
//STATUS:C++_AC_703MS_198000KB
#include
#include
#include
#include
#include
#include
#include
#include
#include
#define LL __int64
#define Max(x,y) ((x)>(y) (x):(y))
#define Min(x,y) ((x)<(y) (x):(y))
#define lson l,mid,rt<<1
#define rson mid+1,r,rt<<1|1
#define mem(a,b) memset(a,b,sizeof(a))
const int MAX=1000010,INF=200000000,MOD=1000000007;
const double esp=1e-6;
int num[MAX*2],sum[MAX*2],q[MAX*2];
int n;
int main()
{
// freopen("in.txt","r",stdin);
int i,j,front,rear,ans,max;
while(~scanf("%d",&n) && n)
max=(n<<1);
ans=front=rear=0;
for(i=0;i
num[n+i]=num[i];
}
sum[0]=num[0];
for(i=1;i
for(i=0;i
rear--;
q[rear++]=sum[i];
}
if(q[0]>=0)ans++;
for(i=0;i
front++;
while(rear>front && q[rear-1]>sum[n+i])
rear--;
q[rear++]=sum[n+i];
if(q[front]-sum[i]>=0)ans++;
}
printf("%d\n",ans);
}
return 0;
}