An Extension of Heron's Formula to Tetrahedra, and the Projective Nature of Its Zeros

Fuente: arXiv
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Autor principal: Havel, Timothy F.
Formato: Preprint
Publicado: 2022
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author Havel, Timothy F.
author_facet Havel, Timothy F.
contents A natural extension of Heron's 2000 year old formula for the area of a triangle to the volume of a tetrahedron is presented. This gives the fourth power of the volume as a polynomial in six simple rational functions of the areas of its four faces and of its three medial parallelograms, which are accordingly referred to herein as "interior faces." Geometrically, these rational functions are the areas of the triangles into which the exterior faces are divided by the points at which the tetrahedron's in-sphere touches those faces. Part I presents an overview of these results and some necessary but little-known background in areal geometry. Part II derives the promised extension, and ends with a conjecture as to how the formula extends to $n$-dimensional simplices for all $n > 3$. Part III explains how, for $n = 3$, the zeros of the polynomial constitute a five-dimensional semi-algebraic variety consisting almost entirely of collinear tetrahedra with vertices separated by infinite distances, but with generically well-defined distance ratios; it further proves that these unconventional Euclidean configurations can be identified with a quotient of the Klein quadric by an action of a group of reflections isomorphic to $\mathbb Z_2^4$, wherein four-point configurations in the affine plane constitute a distinguished three-dimensional subvariety. Part IV consists of five appendices which show, among other things, that the algebraic structure of the zeros in the affine plane naturally defines the associated four-element, rank $3$ chirotope, aka affine oriented matroid.
format Preprint
id arxiv_https___arxiv_org_abs_2204_08089
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle An Extension of Heron's Formula to Tetrahedra, and the Projective Nature of Its Zeros
Havel, Timothy F.
Metric Geometry
General Relativity and Quantum Cosmology
Combinatorics
51F99 (primary), 51K05, 51M04, 51M25, 51M35, 51N20, 51N35, 51P05, 52B10, 52B40, 83C27 (secondary)
A natural extension of Heron's 2000 year old formula for the area of a triangle to the volume of a tetrahedron is presented. This gives the fourth power of the volume as a polynomial in six simple rational functions of the areas of its four faces and of its three medial parallelograms, which are accordingly referred to herein as "interior faces." Geometrically, these rational functions are the areas of the triangles into which the exterior faces are divided by the points at which the tetrahedron's in-sphere touches those faces. Part I presents an overview of these results and some necessary but little-known background in areal geometry. Part II derives the promised extension, and ends with a conjecture as to how the formula extends to $n$-dimensional simplices for all $n > 3$. Part III explains how, for $n = 3$, the zeros of the polynomial constitute a five-dimensional semi-algebraic variety consisting almost entirely of collinear tetrahedra with vertices separated by infinite distances, but with generically well-defined distance ratios; it further proves that these unconventional Euclidean configurations can be identified with a quotient of the Klein quadric by an action of a group of reflections isomorphic to $\mathbb Z_2^4$, wherein four-point configurations in the affine plane constitute a distinguished three-dimensional subvariety. Part IV consists of five appendices which show, among other things, that the algebraic structure of the zeros in the affine plane naturally defines the associated four-element, rank $3$ chirotope, aka affine oriented matroid.
title An Extension of Heron's Formula to Tetrahedra, and the Projective Nature of Its Zeros
topic Metric Geometry
General Relativity and Quantum Cosmology
Combinatorics
51F99 (primary), 51K05, 51M04, 51M25, 51M35, 51N20, 51N35, 51P05, 52B10, 52B40, 83C27 (secondary)
url https://arxiv.org/abs/2204.08089