Analyzing non-equilibrium quantum states through snapshots with
artificial neural networks
- URL: http://arxiv.org/abs/2012.11586v2
- Date: Fri, 20 May 2022 20:16:08 GMT
- Title: Analyzing non-equilibrium quantum states through snapshots with
artificial neural networks
- Authors: A. Bohrdt, S. Kim, A. Lukin, M. Rispoli, R. Schittko, M. Knap, M.
Greiner, J. L\'eonard
- Abstract summary: Current quantum simulation experiments are starting to explore non-equilibrium many-body dynamics in previously inaccessible regimes.
Using machine learning techniques, we investigate the dynamics and in particular the thermalization behavior of an interacting quantum system.
A neural network is trained to distinguish non-equilibrium from thermal equilibrium data, and the network performance serves as a probe for the thermalization behavior of the system.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Current quantum simulation experiments are starting to explore
non-equilibrium many-body dynamics in previously inaccessible regimes in terms
of system sizes and time scales. Therefore, the question emerges which
observables are best suited to study the dynamics in such quantum many-body
systems. Using machine learning techniques, we investigate the dynamics and in
particular the thermalization behavior of an interacting quantum system which
undergoes a dynamical phase transition from an ergodic to a many-body localized
phase. A neural network is trained to distinguish non-equilibrium from thermal
equilibrium data, and the network performance serves as a probe for the
thermalization behavior of the system. We test our methods with experimental
snapshots of ultracold atoms taken with a quantum gas microscope. Our results
provide a path to analyze highly-entangled large-scale quantum states for
system sizes where numerical calculations of conventional observables become
challenging.
Related papers
- Fourier Neural Operators for Learning Dynamics in Quantum Spin Systems [77.88054335119074]
We use FNOs to model the evolution of random quantum spin systems.
We apply FNOs to a compact set of Hamiltonian observables instead of the entire $2n$ quantum wavefunction.
arXiv Detail & Related papers (2024-09-05T07:18:09Z) - Thermalization and Criticality on an Analog-Digital Quantum Simulator [133.58336306417294]
We present a quantum simulator comprising 69 superconducting qubits which supports both universal quantum gates and high-fidelity analog evolution.
We observe signatures of the classical Kosterlitz-Thouless phase transition, as well as strong deviations from Kibble-Zurek scaling predictions.
We digitally prepare the system in pairwise-entangled dimer states and image the transport of energy and vorticity during thermalization.
arXiv Detail & Related papers (2024-05-27T17:40:39Z) - Universality of critical dynamics with finite entanglement [68.8204255655161]
We study how low-energy dynamics of quantum systems near criticality are modified by finite entanglement.
Our result establishes the precise role played by entanglement in time-dependent critical phenomena.
arXiv Detail & Related papers (2023-01-23T19:23:54Z) - Measuring Quantum Entanglement from Local Information by Machine
Learning [10.161394383081145]
Entanglement is a key property in the development of quantum technologies.
We present a neural network-assisted protocol for measuring entanglement in equilibrium and non-equilibrium states of local Hamiltonians.
arXiv Detail & Related papers (2022-09-18T08:15:49Z) - Variational Quantum Simulations of Finite-Temperature Dynamical
Properties via Thermofield Dynamics [19.738342279357845]
We present a variational quantum simulation protocol based on the thermofield dynamics formalism.
Our approach is capable of simulating non-equilibrium phenomena which have not been previously explored with quantum computers.
arXiv Detail & Related papers (2022-06-11T17:22:55Z) - Experimental Realization of a Measurement-Induced Entanglement Phase
Transition on a Superconducting Quantum Processor [0.0]
We report the realization of a measurement-induced entanglement transition on superconducting quantum processors with mid-circuit readout capability.
Our work paves the way for the use of mid-circuit measurement as an effective resource for quantum simulation on near-term quantum computers.
arXiv Detail & Related papers (2022-03-08T19:01:04Z) - Non-equilibrium quantum domain reconfiguration dynamics in a
two-dimensional electronic crystal: experiments and quantum simulations [0.0]
We study quantum domain reconfiguration dynamics in the electronic superlattice of a quantum material.
The crossover from temperature to quantum fluctuation dominated dynamics in the context of environmental noise is investigated.
The results are important for understanding the origin of the retention time in non-volatile memory devices.
arXiv Detail & Related papers (2021-03-12T15:22:10Z) - Quantum Markov Chain Monte Carlo with Digital Dissipative Dynamics on
Quantum Computers [52.77024349608834]
We develop a digital quantum algorithm that simulates interaction with an environment using a small number of ancilla qubits.
We evaluate the algorithm by simulating thermal states of the transverse Ising model.
arXiv Detail & Related papers (2021-03-04T18:21:00Z) - Information Scrambling in Computationally Complex Quantum Circuits [56.22772134614514]
We experimentally investigate the dynamics of quantum scrambling on a 53-qubit quantum processor.
We show that while operator spreading is captured by an efficient classical model, operator entanglement requires exponentially scaled computational resources to simulate.
arXiv Detail & Related papers (2021-01-21T22:18:49Z) - Quantum Non-equilibrium Many-Body Spin-Photon Systems [91.3755431537592]
dissertation concerns the quantum dynamics of strongly-correlated quantum systems in out-of-equilibrium states.
Our main results can be summarized in three parts: Signature of Critical Dynamics, Driven Dicke Model as a Test-bed of Ultra-Strong Coupling, and Beyond the Kibble-Zurek Mechanism.
arXiv Detail & Related papers (2020-07-23T19:05:56Z) - Quantum information scrambling in a trapped-ion quantum simulator with
tunable range interactions [0.0]
In ergodic many-body quantum systems, locally encoded quantum information becomes inaccessible to local measurements.
We present first experimental demonstrations of quantum information scrambling on a 10-qubit trapped-ion quantum simulator.
We also analyze the role of decoherence in our system by comparing our measurements to numerical simulations and by measuring R'enyi entanglement entropies.
arXiv Detail & Related papers (2020-01-07T17:04:16Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.