Quantum tomography meets dynamical systems and bifurcations theory

Goyeneche, D; de la Torre, AC

Abstract

A powerful tool for studying geometrical problems in Hilbert spaces is developed. We demonstrate the convergence and robustness of our method in every dimension by considering dynamical systems theory. This method provides numerical solutions to hard problems involving many coupled nonlinear equations in low and high dimensions (e. g., quantum tomography problem, existence and classification of Pauli partners, mutually unbiased bases, complex Hadamard matrices, equiangular tight frames, etc.). Additionally, this tool can be used to find analytical solutions and also to implicitly prove the existence of solutions. Here, we develop the theory for the quantum pure state tomography problem in finite dimensions but this approach is straightforwardly extended to the rest of the problems. We prove that solutions are always attractive fixed points of a nonlinear operator explicitly given. As an application, we show that the statistics collected from three random orthonormal bases is enough to reconstruct pure states from experimental (noisy) data in every dimension d <= 32. (C) 2014 AIP Publishing LLC.

Más información

Título según WOS: Quantum tomography meets dynamical systems and bifurcations theory
Título según SCOPUS: Quantum tomography meets dynamical systems and bifurcations theory
Título de la Revista: JOURNAL OF MATHEMATICAL PHYSICS
Volumen: 55
Número: 6
Editorial: AIP Publishing
Fecha de publicación: 2014
Idioma: English
DOI:

10.1063/1.4881855

Notas: ISI, SCOPUS