Different Division
Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others)
Total Submission(s): 165 Accepted Submission(s): 75
Problem Description
Now
we will give you a graph, there are many points in the graph. We will
choose two different points arbitrarily, and connect them as a line.
Please tell us that whether these points (Include the two points
referred above) is on the left side of the line, or lying on the line.
or on the right side of the line. For example,
There are four points in the graph: A, B, C, D. we connect C and D. Now C and D form a new line “CD”. Obviously, C and D are lying on the line “CD”. A is on the right side of CD, and B is on the left side of CD. What’s more, A is on the left side of line DC, and B is on the right side of line DC. So line “CD” and “DC” are different in this problem;
There are four points in the graph: A, B, C, D. we connect C and D. Now C and D form a new line “CD”. Obviously, C and D are lying on the line “CD”. A is on the right side of CD, and B is on the left side of CD. What’s more, A is on the left side of line DC, and B is on the right side of line DC. So line “CD” and “DC” are different in this problem;
Input
The
first line of input is a single integer T, indicating the number of
test cases. Then exactly T test cases followed. In each case, the first
line contains one integer: N, the number of points. Then N lines
followed, each line contains two real numbers X, Y, indicating the
coordinates of points. Then one line follows, contains two integers P1
and P2 indicate the P1th point and the P2th point in this case.
1<= T <= 100
2 <= N <= 1000
1<= P1, P2 <= N, P1 != P2
-1000 < X, Y < 1000;
1<= T <= 100
2 <= N <= 1000
1<= P1, P2 <= N, P1 != P2
-1000 < X, Y < 1000;
Output
For
each case, print N lines. According to the order of input, for each
point print “Left” if this point is on the left side of line P1P2 , or
”On” if this point is lying on line P1P2 , or ”Right” if this is on the
right side of line P1P2.
Sample Input
1
4
1 1
1 2
3 3
2 1
1 3
Sample Output
On
Left
On
Right
该题用差乘来解决,这样就不会出现精度的问题了
代码:
1 #include <cstdio> 2 #include <iostream> 3 4 using namespace std; 5 6 #define N 1005 7 #define L 0.0000001 8 9 double a[N]; 10 double b[N]; 11 12 int main() 13 { 14 int t; 15 scanf("%d",&t); 16 while(t--) 17 { 18 int n; 19 scanf("%d",&n); 20 int i = 0; 21 for(i = 1; i <= n; i++) 22 scanf("%lf%lf",&a[i],&b[i]); 23 int p1,p2; 24 scanf("%d%d",&p1,&p2); 25 26 double x1 = a[p2] - a[p1]; 27 double y1 = b[p2] - b[p1]; 28 29 for(i = 1; i <= n; i++) 30 { 31 double x2 = a[i] - a[p1]; 32 double y2 = b[i] - b[p1]; 33 34 double sum = x1*y2 - x2*y1; 35 if(sum < -L) 36 printf("Right\n"); 37 else if(sum > L) 38 printf("Left\n"); 39 else printf("On\n"); 40 } 41 } 42 return 0; 43 }