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Rational Angle Bisection Problem in Higher Dimensional Spaces and Incenters of Simplices over Fields

Published 31 Dec 2025 in math.NT and math.MG | (2512.24660v1)

Abstract: In this article, we generalize the following problem, which is called the rational angle bisection problem, to the $n$-dimensional space $kn$ over a subfield $k$ of $\mathbb R$: on the coordinate plane, for which rational numbers $a$ and $b$ are the slopes of the angle bisectors between two lines with slopes $a$ and $b$ rational? First, we give a few characterizations of when the angle bisectors between two lines with direction vectors in $kn$ have direction vectors in $kn.$ To find solutions to the problem in the case when $k = \mathbb Q,$ we also give a formula for the integral solutions of $x_1{}2+\dots +x_n{}2 = dx_{n+1}{}2,$ which is a generalization of the negative Pell's equation $x2-dy2 = -1,$ where $d$ is a square-free positive integer. Second, by applying the above characterizations, we give a necessary and sufficient condition for the incenter of a given $n$-simplex with $k$-rational vertices to be $k$-rational. On the coordinate plane, we prove that every triangle with $k$-rational vertices and incenter can be obtained by scaling a triangle with $k$-rational side lengths and area, which is a generalization of a Heronian triangle. We also state certain fundamental properties of a few centers of a given triangle with $k$-rational vertices.

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