Bzoj 4582 [Usaco2016 Open] Diamond Collector 题解
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4582: [Usaco2016 Open]Diamond Collector
Time Limit: 10 Sec Memory Limit: 128 MBSubmit: 204 Solved: 136
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Description
Bessie the cow, always a fan of shiny objects, has taken up a hobby of mining diamonds in her spare
time! She has collected N diamonds (N≤50,000) of varying sizes, and she wants to arrange some of th
em in a pair of display cases in the barn.Since Bessie wants the diamonds in each of the two cases t
o be relatively similar in size, she decides that she will not include two diamonds in the same case
if their sizes differ by more than K (two diamonds can be displayed together in the same case if th
eir sizes differ by exactly K). Given K, please help Bessie determine the maximum number of diamonds
she can display in both cases together.
给定长度为N的数列a,要求选出两个互不相交的子序列(可以不连续),满足同一个子序列中任意两个元素差的绝
对值不超过K。最大化两个子序列长度的和并输出这个值。1 ≤ N ≤ 50000, 1 ≤ a_i ≤ 10 ^ 9, 0 ≤ K ≤ 10^ 9
Input
The first line of the input file contains N and K (0≤K≤1,000,000,000). The next NN lines each cont
ain an integer giving the size of one of the diamonds. All sizes will be positive and will not excee
d 1,000,000,000
Output
Output a single positive integer, telling the maximum number of diamonds that Bessie can showcase in
total in both the cases.
Sample Input
7 3
10
5
1
12
9
5
14
10
5
1
12
9
5
14
Sample Output
5
HINT
Source
这道题当时第一次打打的是一个贪心,先去找最大的满足条件的序列,然后再去找刨去该序列后的最大的序列,虽然可以证明不对,但当时没有多想,对了70%还算比较优秀吧……
我们可以对答案进行一下分析,首先既然对于顺序无限制我们可以将a排序,这样答案就变成了选择两个不相交的区间,将问题简化。对于答案来说,一定有两个点分别满足他是一个区间的右端点,另一个区间在他的右侧或他是一个区间的左端点,另一个区间在他右侧,所以,我们只需要把每个点向左和向右是否包含他的最大合法区间长度记录下来,然后去枚举每个点作为上述特殊点是答案是多少,直接输出最大值即可。
1 #include<iostream> 2 #include<cstdlib> 3 #include<cstdio> 4 #include<cstring> 5 #include<queue> 6 #include<algorithm> 7 #include<cmath> 8 #include<map> 9 #include<vector> 10 #define N 50005 11 using namespace std; 12 int n,l,a[N],f[2][N][2]; 13 int main() 14 { 15 scanf("%d%d",&n,&l); 16 for(int i=1;i<=n;i++) scanf("%d",&a[i]); 17 sort(a+1,a+n+1); 18 int la=0; 19 for(int i=1;i<=n;i++) 20 { 21 int t=la; 22 while(a[i]-a[i-t]>l) t--; 23 t++; 24 la=t; 25 f[0][i][0]=t; 26 f[0][i][1]=max(f[0][i-1][0],f[0][i-1][1]); 27 } 28 la=0; 29 for(int i=n;i>0;i--) 30 { 31 int t=la; 32 while(a[i+t]-a[i]>l) t--; 33 t++; 34 la=t; 35 f[1][i][0]=t; 36 f[1][i][1]=max(f[1][i+1][0],f[1][i+1][1]); 37 } 38 int ans=0; 39 for(int i=1;i<=n;i++) 40 { 41 ans=max(ans,max(f[1][i][0]+f[0][i][1],f[0][i][0]+f[1][i][1])); 42 } 43 printf("%d\n",ans); 44 return 0; 45 }
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