Harmonic Equiangular Tight Frames Comprised of Regular Simplices

Abstract

An equiangular tight frame (ETF) is a sequence of equal-norm vectors in a Euclidean space whose coherence achieves equality in the Welch bound, and thus yields an optimal packing in a projective space. A regular simplex is a simple type of ETF in which the number of vectors is one more than the dimension of the underlying space. More sophisticated examples include harmonic ETFs, which are formed by restricting the characters of a finite abelian group to a difference set. Recently, it was shown that some harmonic ETFs are themselves comprised of regular simplices. In this thesis, we continue the investigation into these special harmonic ETFs. We begin by characterizing when the subspaces spanned by the ETF's regular simplices form an equi-isoclinic tight fusion frame, which is a type of optimal packing in a Grassmannian space. It turns out that such ETFs yield complex circulant conference matrices; this is remarkable since real examples of such matrices are known to not exist. We further show that some of these ETFs yield mutually unbiased simplices, which are a natural generalization of the quantum-information-theoretic concept of mutually unbiased bases. Finally, we provide infinite families of ETFs that have all of these properties.

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Document Details

Document Type
Technical Report
Publication Date
Mar 01, 2019
Accession Number
AD1073735

Entities

People

  • Courtney A. Schmitt

Organizations

  • Air Force Institute of Technology

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Communities of Interest

  • Energy and Power Technologies

DTIC Thesaurus Topics

  • Air Force
  • Algebra
  • Applied Mathematics
  • Composite Materials
  • Construction
  • Data Science
  • Geometry
  • Hilbert Space
  • Information Theory
  • Linear Algebra
  • Quantum Information
  • Quantum Information Science
  • Sequences
  • Theorems
  • Two Dimensional
  • United States
  • United States Government

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  • Graph Algorithms and Convex Optimization.
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Technology Areas

  • Quantum Computing
  • Quantum Science - Quantum Key Distribution
  • Space