Bridging signals
Time Limit: 5000/1000 MS (Java/Others) Memory Limit: 65536/32768 K (Java/Others)
Total Submission(s): 667 Accepted Submission(s): 443
Problem Description
'Oh
no, they've done it again', cries the chief designer at the Waferland
chip factory. Once more the routing designers have screwed up
completely, making the signals on the chip connecting the ports of two
functional blocks cross each other all over the place. At this late
stage of the process, it is too
expensive to redo the routing. Instead, the engineers have to bridge the signals, using the third dimension, so that no two signals cross. However, bridging is a complicated operation, and thus it is desirable to bridge as few signals as possible. The call for a computer program that finds the maximum number of signals which may be connected on the silicon surface without rossing each other, is imminent. Bearing in mind that there may be housands of signal ports at the boundary of a functional block, the problem asks quite a lot of the programmer. Are you up to the task?
Figure 1. To the left: The two blocks' ports and their signal mapping (4,2,6,3,1,5). To the right: At most three signals may be routed on the silicon surface without crossing each other. The dashed signals must be bridged.
A typical situation is schematically depicted in figure 1. The ports of the two functional blocks are numbered from 1 to p, from top to bottom. The signal mapping is described by a permutation of the numbers 1 to p in the form of a list of p unique numbers in the range 1 to p, in which the i:th number pecifies which port on the right side should be connected to the i:th port on the left side.
Two signals cross if and only if the straight lines connecting the two ports of each pair do.
expensive to redo the routing. Instead, the engineers have to bridge the signals, using the third dimension, so that no two signals cross. However, bridging is a complicated operation, and thus it is desirable to bridge as few signals as possible. The call for a computer program that finds the maximum number of signals which may be connected on the silicon surface without rossing each other, is imminent. Bearing in mind that there may be housands of signal ports at the boundary of a functional block, the problem asks quite a lot of the programmer. Are you up to the task?
Figure 1. To the left: The two blocks' ports and their signal mapping (4,2,6,3,1,5). To the right: At most three signals may be routed on the silicon surface without crossing each other. The dashed signals must be bridged.
A typical situation is schematically depicted in figure 1. The ports of the two functional blocks are numbered from 1 to p, from top to bottom. The signal mapping is described by a permutation of the numbers 1 to p in the form of a list of p unique numbers in the range 1 to p, in which the i:th number pecifies which port on the right side should be connected to the i:th port on the left side.
Two signals cross if and only if the straight lines connecting the two ports of each pair do.
Input
On
the first line of the input, there is a single positive integer n,
telling the number of test scenarios to follow. Each test scenario
begins with a line containing a single positive integer p<40000, the
number of ports on the two functional blocks. Then follow p lines,
describing the signal mapping: On the i:th line is the port number of
the block on the right side which should be connected to the i:th port
of the block on the left side.
Output
For
each test scenario, output one line containing the maximum number of
signals which may be routed on the silicon surface without crossing each
other.
Sample Input
4
6
4
2
6
3
1
5
10
2
3
4
5
6
7
8
9
10
1
8
8
7
6
5
4
3
2
1
9
5
8
9
2
3
1
7
4
6
Sample Output
3
9
1
4
Source
简单的题目。几乎等于一个模板题..... ->_->
不过前提得失你理解还有这样一个算法,当然还有其他做法,比如用线段树+dp做法
代码:
View Code
1 //#define LOCAL 2 #include<cstdio> 3 #include<cstring> 4 #include<algorithm> 5 #include<iostream> 6 #define inf 0x3f3f3f3f 7 using namespace std; 8 const int maxn=40005; 9 10 int str[maxn],ans[maxn],dp[maxn]; 11 int n,dd; 12 13 int LIS(int a[], int n) 14 { 15 int i, j,res=0; 16 for(i=1;i<=n;i++) 17 ans[i]=inf; 18 memset(dp,0,sizeof(int)*(n+1)); 19 for(i=1;i<=n;++i) 20 { 21 22 dp[i]=lower_bound(ans+1,ans+n+1,a[i])-ans; 23 // j=bsearch(c, size, a[i]); //在已有的序列中进行替换 24 if(res<dp[i])res=dp[i]; 25 j=i; 26 if(j>0&&ans[dp[j]]>a[j]) 27 ans[dp[j]]=a[j]; 28 } 29 return res; 30 } 31 32 33 int main() 34 { 35 #ifdef LOCAL 36 freopen("test.in","r",stdin); 37 #endif 38 int cas; 39 scanf("%d",&cas); 40 while(cas--){ 41 42 scanf("%d",&n); 43 for(int i=1;i<=n;i++) 44 { 45 scanf("%d",str+i); 46 } 47 printf("%d ",LIS(str,n)); 48 } 49 return 0; 50 }