Diagnosing chaos with projected ensembles of process tensors

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: O'Donovan, Peter, Dowling, Neil, Modi, Kavan, Mitchison, Mark T.
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866916014367703040
author O'Donovan, Peter
Dowling, Neil
Modi, Kavan
Mitchison, Mark T.
author_facet O'Donovan, Peter
Dowling, Neil
Modi, Kavan
Mitchison, Mark T.
contents The process tensor provides a general representation of a quantum system evolving under repeated interventions and is fundamental for numerical simulations of local many-body dynamics. In this work, we introduce the projected process ensemble, an ensemble of pure output states of a process tensor in a given basis of local interventions, and use it to define increasingly more fine-grained probes of quantum chaos. The first moment of this ensemble encapsulates numerous previously studied chaos quantifiers, including the Alicki-Fannes quantum dynamical entropy, butterfly flutter fidelity, and spatiotemporal entanglement. We discover characteristic entanglement structures within the ensemble's higher moments that can sharply distinguish chaotic from integrable dynamics, overcoming deficiencies of the quantum dynamical and spatiotemporal entropies. These conclusions are supported by extensive numerical simulations of many-body dynamics for a range of spin-chain models, including non-interacting, interacting-integrable, chaotic, and many-body localized regimes. Our work elucidates the fingerprints of chaos on spatiotemporal correlations in quantum stochastic processes, and provides a unified framework for analyzing the complexity of unitary and monitored many-body dynamics.
format Preprint
id arxiv_https___arxiv_org_abs_2502_13930
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Diagnosing chaos with projected ensembles of process tensors
O'Donovan, Peter
Dowling, Neil
Modi, Kavan
Mitchison, Mark T.
Quantum Physics
Statistical Mechanics
High Energy Physics - Theory
Chaotic Dynamics
The process tensor provides a general representation of a quantum system evolving under repeated interventions and is fundamental for numerical simulations of local many-body dynamics. In this work, we introduce the projected process ensemble, an ensemble of pure output states of a process tensor in a given basis of local interventions, and use it to define increasingly more fine-grained probes of quantum chaos. The first moment of this ensemble encapsulates numerous previously studied chaos quantifiers, including the Alicki-Fannes quantum dynamical entropy, butterfly flutter fidelity, and spatiotemporal entanglement. We discover characteristic entanglement structures within the ensemble's higher moments that can sharply distinguish chaotic from integrable dynamics, overcoming deficiencies of the quantum dynamical and spatiotemporal entropies. These conclusions are supported by extensive numerical simulations of many-body dynamics for a range of spin-chain models, including non-interacting, interacting-integrable, chaotic, and many-body localized regimes. Our work elucidates the fingerprints of chaos on spatiotemporal correlations in quantum stochastic processes, and provides a unified framework for analyzing the complexity of unitary and monitored many-body dynamics.
title Diagnosing chaos with projected ensembles of process tensors
topic Quantum Physics
Statistical Mechanics
High Energy Physics - Theory
Chaotic Dynamics
url https://arxiv.org/abs/2502.13930