383]
PROBLEMS AND SOLUTIONS.
577
Solution by the Proposer.
Let 12, 45, meet in 0, and through 0 draw at pleasure a line meeting 14 in P,
and 25 in Q; let P2, Q4 meet in 3, and P5, Q1 in 6; then the line 36 will pass
through 0, and this being so, the hexagon 123456 satisfies the required conditions.
We have to show that 36 passes through 0. Let Q4 meet 012 in A, and P2
meet 045 in B; then the points 6, 3, 0, are the intersections of corresponding sides
of the triangles A1Q, BoP; and in order that these points may lie in a line, the
lines joining the corresponding vertices must meet in a point, that is, we have to show
that the lines 15, AB, PQ meet in a point. The property is in fact as follows; viz.,
given the points 2, 4; and also the points Q, 0, P lying in a line; then constructing
the points 1, 5, A, B, which are the respective intersections of P4, 02; Q2, 04;
Q4, 02; P2, 04; the lines 15, AB, PQ will meet in a point. Take x = 0, y — 0,
z = 0 for the respective equations of P‘2, Q4, PQ; then 0 is an arbitrary point in the
line PQ, say that for the point 0 we have z = 0, ax + by = 0; also 02, 04 are
arbitrary lines through 0 : say that their equations are ax + by + Xz = 0; ax+by + yz = 0;
then we have for the points A and B, respectively, ax + by + yz = 0, y = 0; ax + by + yz = 0,
x = 0; hence the equation of AB is yax + Xby+ \fiz = 0. The equation of P4 is
ax + yz — 0, and that of Q2 is by + Xz = 0; the point 1 is therefore given by
ax-\- yz = 0, ax + by + Xz = 0; and 5 by by 4- Xz = 0, ax+by + yz = 0; hence the equation
of 15 is yax + Xby + (/A — + A, 2 ) z = 0 ; and the equation of PQ being z = 0, it is
clear that the three lines AB, 15, PQ intersect in the point given by the equations
fiax + \by = 0, z — 0.
Obs. 1. By inspection of the figure we see that 3PQ is a triangle whereof the
sides 3P, 3 Q, PQ pass respectively through the fixed points 2, 4, 0; while the vertices
P and Q lie in the fixed lines 14, 25; the locus of the vertex 3 is consequently a
conic; and the like as regards the triangle QPQ.
Obs. 2. The regular hexagon projects into a hexagon inscribed in a conic and
circumscribed about another conic having double contact therewith; in the hexagon
so obtained (as appears at once by the consideration of the regular hexagon) the
c. y. 73
