Page curves and typical entanglement in linear optics

Author:

Iosue Joseph T.12ORCID,Ehrenberg Adam12ORCID,Hangleiter Dominik21ORCID,Deshpande Abhinav3ORCID,Gorshkov Alexey V.12ORCID

Affiliation:

1. Joint Quantum Institute, NIST/University of Maryland, College Park, Maryland 20742, USA

2. Joint Center for Quantum Information and Computer Science, NIST/University of Maryland, College Park, Maryland 20742, USA

3. Institute for Quantum Information and Matter, California Institute of Technology, Pasadena, CA 91125, USA

Abstract

Bosonic Gaussian states are a special class of quantum states in an infinite dimensional Hilbert space that are relevant to universal continuous-variable quantum computation as well as to near-term quantum sampling tasks such as Gaussian Boson Sampling. In this work, we study entanglement within a set of squeezed modes that have been evolved by a random linear optical unitary. We first derive formulas that are asymptotically exact in the number of modes for the Rényi-2 Page curve (the average Rényi-2 entropy of a subsystem of a pure bosonic Gaussian state) and the corresponding Page correction (the average information of the subsystem) in certain squeezing regimes. We then prove various results on the typicality of entanglement as measured by the Rényi-2 entropy by studying its variance. Using the aforementioned results for the Rényi-2 entropy, we upper and lower bound the von Neumann entropy Page curve and prove certain regimes of entanglement typicality as measured by the von Neumann entropy. Our main proofs make use of a symmetry property obeyed by the average and the variance of the entropy that dramatically simplifies the averaging over unitaries. In this light, we propose future research directions where this symmetry might also be exploited. We conclude by discussing potential applications of our results and their generalizations to Gaussian Boson Sampling and to illuminating the relationship between entanglement and computational complexity.

Funder

DoE ASCR Accelerated Research in Quantum Computing program

DARPA SAVaNT ADVENT, AFOSR, DoE QSA, NSF QLCI

DoE ASCR Quantum Testbed Pathfinder program

NSF Physics Frontiers Center

National Science Foundation RAISE- TAQS

Publisher

Verein zur Forderung des Open Access Publizierens in den Quantenwissenschaften

Subject

Physics and Astronomy (miscellaneous),Atomic and Molecular Physics, and Optics

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