superprismatic Posted August 30, 2010 Report Share Posted August 30, 2010 If we place N points, no three of which are collinear, in the box {(x,y)|0≤x≤1 & 0≤y≤1}, then we connect every pair of these points with straight line segments, there may be some segments which cross other segments. Let F(N) be the minimum number of crossings for N such points. It's pretty easy to see that F(N)=0 for 2≤N≤4, and F(5)=1. Find F(N) for N=6,7,8,9, and 10. By "crossing" I mean that two line segments have precisely one point in common which is not an endpoint of both segments. The problem, then, has to do with counting the number of distinct such points. Quote Link to comment Share on other sites More sharing options...
0 Guest Posted August 31, 2010 Report Share Posted August 31, 2010 If we place N points, no three of which are collinear, in the box {(x,y)|0≤x≤1 & 0≤y≤1}, then we connect every pair of these points with straight line segments, there may be some segments which cross other segments. Let F(N) be the minimum number of crossings for N such points. It's pretty easy to see that F(N)=0 for 2≤N≤4, and F(5)=1. Find F(N) for N=6,7,8,9, and 10. By "crossing" I mean that two line segments have precisely one point in common which is not an endpoint of both segments. The problem, then, has to do with counting the number of distinct such points. Surely, F(4)=1 and not 0 as mentioned. The two diagonals in a square will cross. Or the two lines from opposite points of any four sided shape. Maybe I am not understanding the puzzle correctly. Or am I? Quote Link to comment Share on other sites More sharing options...
0 Guest Posted August 31, 2010 Report Share Posted August 31, 2010 F(4) can be zero if three points form a triangle and the fourth is any point inside this triangle Quote Link to comment Share on other sites More sharing options...
0 Guest Posted August 31, 2010 Report Share Posted August 31, 2010 For 6 points the minimum crossings would be 3. You can have it by drawing an equilateral tirangle inside another equilateral triangle with the same centroid Quote Link to comment Share on other sites More sharing options...
0 Molly Mae Posted August 31, 2010 Report Share Posted August 31, 2010 (edited) 6. Adding an slightly off-centre point to Deegee's model for F(6). Just avoid making the centre point and the the top point of each triangle colinear. Edited August 31, 2010 by Molly Mae Quote Link to comment Share on other sites More sharing options...
0 Guest Posted August 31, 2010 Report Share Posted August 31, 2010 What is sought is known as the Rectilinear Crossing Number for a straight line drawing. Beginning at n=3, the terms for the sequence of F(n) are: 0, 0, 1, 3, 9, 19, 36, 62, 102, 153, 229, 324, 447, 603, 798, 1029, 1318, ... F(6) = 3 F(7) = 9 F(8) = 19 F(9) = 36 F(10) = 62 Quote Link to comment Share on other sites More sharing options...
Question
superprismatic
If we place N points, no three of which are
collinear, in the box {(x,y)|0≤x≤1 & 0≤y≤1},
then we connect every pair of these points
with straight line segments, there may be
some segments which cross other segments.
Let F(N) be the minimum number of crossings
for N such points. It's pretty easy to see
that F(N)=0 for 2≤N≤4, and F(5)=1.
Find F(N) for N=6,7,8,9, and 10.
By "crossing" I mean that two line
segments have precisely one point in
common which is not an endpoint of
both segments. The problem, then, has
to do with counting the number of
distinct such points.
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