CU-6P-cDe1 CU-inscribed Complete Decagon
In a similar way as the construction of the CU-inscribed Complete Hexagon it is possible to inscribe a Complete Decagon into a cubic using just six starting points.
Definitions
Definition 1: A decagon, or 10-gon, is a geometrical figure composed of 10 consecutive vertices, no three of them being collinear.
Definition 2: A complete decagon is a geometric figure formed by 10 consecutive vertices, no three of them being collinear and additionally including the intersection points of the 5 pairs of opposite sides.
In other words, a complete hexagon consists of 10 consecutive vertices and the points of intersection of the 5 pairs of opposite sides, creating a set of 15 points of the Reference Cubic.
Theorem: A complete decagon can be inscribed in a cubic curve using only six initial points.
CU-6P Cubic Decagon-02.fig
Construction
The procedure to construct the CU-inscribed Decagon (10-gon) using 6 random points on CU is:
- Start with 6 random points P1,P2,P3,P4,P5,P6 on a reference cubic CU.
- Draw line P1P2 intersecting CU again in S12.
- Draw line P2P3 intersecting CU again in S23,
- Draw line P3P4 intersecting CU again in S34,
- Draw line P4P5 intersecting CU again in S45,
- Draw line P5P6 intersecting CU again in S56,
- Draw line P6S12 intersecting CU again in P7,
- Draw line P7S23 intersecting CU again in P8.
- Draw line P8S34 intersecting CU again in P9,
- Draw line P9S45 intersecting CU again in P10.
- Draw line P10S56 intersecting CU again in P1 !
Last step easily can be proven using the CU Point Addition Method CU-4:
CU Point Validation
- Use the property that for 3 collinear points P, Q, and R, the sum P + Q + R = N.
- S12 = N β P1 β P2
- S23 = N β P2 β P3
- S34 = N β P3 β P4
- S45 = N β P4 β P5
- S56 = N β P5 β P6
- P7 = N β P6 β S12 = N β P6 β (N β P1 β P2) = P1 + P2 β P6
- P8 = N β P7 β S23 = N β P7 β (N β P2 β P3) = P2 + P3 β P7
- P9 = N β P8 β S34 = N β P8 β (N β P3 β P4) = P3 + P4 β P8
- P10 = N β P9 β S45 = N β P9 β (N β P4 β P5) = P4 + P5 β P9
- Px = N β P10 β S56 = N β P10 β (N β P5 β P6) = P5 + P6 β P10 = P5 + P6 β (P4 + P5 β P9) = P6 + P9 β P4 = P6 + (P3 + P4 β P8) β P4 = P3 + P6 β P8 = P3 + P6 β (P2 + P3 β P7) = P6 + P7 β P2 = P6 + (P1 + P2 β P6) β P2 = P1
Construction of 2-Gon/6-Gon/10-Gon/etc.
Extrapolating, it appears that there is a CU-inscribed 2P-2-gon, 4P-6-gon (Hexagon), 6P-10-gon (Decagon), 8P-14-gon, etc.
Construction of a CU-inscribed 4P-6-gon in a more general way:
- Start with 4 random points P(1),P(2),P(3),P(4) on the reference cubic CU.
- Draw lines P(i)P(i+1) intersecting CU in S(i,i+1) for i=1,2,3
- Draw lines P(i+3)S(i,i+1) intersecting CU in P(i+4) for i=1,2,3
Finally P(7) coincides with P(1).
Similar construction of a CU-inscribed (n+1)P-2n-gon, valid for n=3,5,7, etc.
- Start with n+1 random points P(1),β¦,P(n+1) on a cubic CU.
- Draw lines P(i)P(i+1) intersecting CU in S(i,i+1) for i=1,..,n
- Draw lines P(i+n)S(i,i+1) intersecting CU in P(i+n+1) for i=1,β¦,n
Finally P(2n+1) coincides with P(1).
This also can be proven using the CU Point Addition Method CU-4.
4-Gons/8-Gons/12-Gons/etc.
Note that using the same procedure for a CU-inscribed 3P-4-gon, 5P-8-gon, 7P-12-gon, etc. it doesnβt deliver the original starting point:
In the case of a 3P-4-gon, P5 doesn’t coincide with P1, like it does with the 4P-hexagon and 6P-decagon, etc.
However P1P5 is the Tangential of P3.
In the case of a 5P-8-gon, P9 doesn’t coincide with P1, like it does with the 4P-hexagon and 6P-decagon, etc.
However P1P9 is the Tangential of P5. This also can be proven using the CU Point Addition Method CU-4.
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