Description
有一个a*b的整数组成的矩阵,现请你从中找出一个n*n的正方形区域,使得该区域所有数中的最大值和最小值的差最小。
Input
第一行为3个整数,分别表示a,b,n的值第二行至第a+1行每行为b个非负整数,表示矩阵中相应位置上的数。每行相邻两数之间用一空格分隔。
Output
仅一个整数,为a*b矩阵中所有“n*n正方形区域中的最大整数和最小整数的差值”的最小值。
Sample Input
5 4 2
1 2 5 6
0 17 16 0
16 17 2 1
2 10 2 1
1 2 2 2
Sample Output
1
问题规模
(1)矩阵中的所有数都不超过1,000,000,000
(2)20%的数据2<=a,b<=100,n<=a,n<=b,n<=10
(3)100%的数据2<=a,b<=1000,n<=a,n<=b,n<=100
看了题解,过了好几天又看这道题,感慨万分,好久不做RMQ果然什么都忘了
就是先做一遍右边的,把右边n格的最大值最小值存到最左边这一格
然后做一遍向下的,把下面n格的最值存到这一格,现在,每一个n*n的正方形的信息都存到左上角了,扫一遍就行了
const
maxn=;
var
a,b:array[..maxn,..maxn]of longint;
n,m,k:longint; procedure down(var x:longint;y:longint);
begin
if x>y then x:=y;
end; procedure up(var x,y:longint);
begin
if x<y then x:=y;
end; procedure main;
var
i,j,l,s,ans:longint;
begin
read(n,m,k);
for i:= to n do
for j:= to m do
begin
read(a[i,j]);
b[i,j]:=a[i,j];
end;
l:=;
while l<k do
begin
for i:= to n do
for j:= to m do
begin
s:=j+l;
down(s,m-l+);
down(s,j+k-l);
up(a[i,j],a[i,s]);
down(b[i,j],b[i,s]);
end;
l:=l<<;
end;
l:=;
while l<k do
begin
for i:= to n do
for j:= to m do
begin
s:=i+l;
down(s,n-l+);
down(s,i+k-l);
up(a[i,j],a[s,j]);
down(b[i,j],b[s,j]);
end;
l:=l<<;
end;
ans:=maxlongint;
for i:= to n-k+ do
for j:= to m-k+ do
down(ans,a[i,j]-b[i,j]);
write(ans);
end; begin
main;
end.
结果写完就被鄙视了,z55250825 ORZ,其实可以用单调队列
const
maxn=;
var
a,b:array[..maxn,..maxn]of longint;
n,m,k,ans:longint; function min(x,y:longint):longint;
begin
if x<y then exit(x);
exit(y);
end; procedure init;
var
i,j:longint;
begin
read(n,m,k);
for i:= to n do
for j:= to m do
begin
read(a[i,j]);
b[i,j]:=a[i,j];
end;
end; var
q:array[..maxn,..]of longint;
head,tail:longint; procedure work;
var
i,j:longint;
begin
for i:= to n do
begin
head:=;
tail:=;
for j:= to m do
begin
while (tail>=head) and (q[tail,]<=a[i,j]) do
dec(tail);
inc(tail);
q[tail,]:=j;
q[tail,]:=a[i,j];
while q[head,]<=j-k do
inc(head);
a[i,j]:=q[head,];
end;
end;
for j:= to m do
begin
head:=;
tail:=;
for i:= to n do
begin
while (tail>=head) and (q[tail,]<=a[i,j]) do
dec(tail);
inc(tail);
q[tail,]:=i;
q[tail,]:=a[i,j];
while q[head,]<=i-k do
inc(head);
a[i,j]:=q[head,];
end;
end;
for i:= to n do
begin
head:=;
tail:=;
for j:= to m do
begin
while (tail>=head) and (q[tail,]>=b[i,j]) do
dec(tail);
inc(tail);
q[tail,]:=j;
q[tail,]:=b[i,j];
while q[head,]<=j-k do
inc(head);
b[i,j]:=q[head,];
end;
end;
for j:= to m do
begin
head:=;
tail:=;
for i:= to n do
begin
while (tail>=head) and (q[tail,]>=b[i,j]) do
dec(tail);
inc(tail);
q[tail,]:=i;
q[tail,]:=b[i,j];
while q[head,]<=i-k do
inc(head);
b[i,j]:=q[head,];
end;
end;
ans:=maxlongint;
for i:=k to n do
for j:=k to m do
ans:=min(ans,a[i,j]-b[i,j]);
write(ans);
end; begin
init;
work;
end.
Wikioi上实在是过不了,然后写了一个C++的
#include<cstdio>
using namespace std; const int maxn=; int a[maxn][maxn],b[maxn][maxn],n,m,k,ans; int min(int x,int y)
{
return(x<y?x:y);
} void init()
{
int i,j;
scanf("%d%d%d",&n,&m,&k);
for(i=;i<=n;i++)
for(j=;j<=m;j++)
scanf("%d",&a[i][j]),b[i][j]=a[i][j];
} int q[maxn][],head,tail; void work()
{
int i,j;
for(i=;i<=n;i++)
{
head=;tail=;
for(j=;j<=m;j++)
{
while(tail>=head & q[tail][]<=a[i][j])--tail;
tail++;
q[tail][]=j;
q[tail][]=a[i][j];
while(q[head][]<=j-k)head++;
a[i][j]=q[head][];
}
}
for(j=;j<=m;j++)
{
head=;tail=;
for(i=;i<=n;i++)
{
while(tail>=head & q[tail][]<=a[i][j])tail--;
tail++;
q[tail][]=i;
q[tail][]=a[i][j];
while(q[head][]<=i-k)head++;
a[i][j]=q[head][];
}
}
for(i=;i<=n;i++)
{
head=;tail=;
for(j=;j<=m;j++)
{
while(tail>=head & q[tail][]>=b[i][j])tail--;
tail++;
q[tail][]=j;
q[tail][]=b[i][j];
while(q[head][]<=j-k)head++;
b[i][j]=q[head][];
}
}
for(j=;j<=m;j++)
{
head=;tail=;
for(i=;i<=n;i++)
{
while(tail>=head & q[tail][]>=b[i][j])tail--;
tail++;
q[tail][]=i;
q[tail][]=b[i][j];
while(q[head][]<=i-k)head++;
b[i][j]=q[head][];
}
}
ans=;
for(i=k;i<=n;i++)
for(j=k;j<=m;j++)
ans=min(ans,a[i][j]-b[i][j]);
printf("%d",ans);
} int main()
{
init();
work();
return ;
}