Experimental signatures of Hilbert-space ergodicity: Universal bitstring distributions and applications in noise learning
arXiv:2403.11971 · doi:10.1103/h6xy-zpx4
Abstract
Systems reaching thermal equilibrium are ubiquitous. For classical systems, this phenomenon is typically understood statistically through ergodicity in phase space, but translating this to quantum systems is a long-standing problem of interest. Recently a strong notion of quantum ergodicity has been proposed, namely that isolated, global quantum states uniformly explore their available state space, dubbed Hilbert-space ergodicity. Here we observe signatures of this process with an experimental Rydberg quantum simulator and various numerical models, before generalizing to the case of a local quantum system interacting with its environment. For a closed system, where the environment is a complementary subsystem, we predict and observe a smooth quantum-to-classical transition in that observables progress from large, quantum fluctuations to small, Gaussian fluctuations as the bath size grows. This transition exhibits universal properties on a quantitative level amongst a wide range of systems, including those at finite temperature, those with itinerant particles, and random circuits. For an open system, where the environment is uncontrolled, we predict the statistics of observables under largely arbitrary noise channels including those with correlated errors, allowing us to discriminate between candidate error models both for continuous Hamiltonian time evolution and for digital random circuits. This allows for computationally efficient experimental noise learning, and more broadly is a new avenue for quantitatively classifying the behavior of noisy quantum systems. Ultimately our results clarify the role of ergodicity in quantum dynamics, with fundamental and practical consequences.
ALS and DKM contributed equally
References in corpus (48)
- Quantum Computing in the NISQ era and beyond
- Supplementary information for "Quantum supremacy using a programmable superconducting processor"
- Thermalization and its mechanism for generic isolated quantum systems
- Probing many-body dynamics on a 51-atom quantum simulator
- Many body localization and thermalization in quantum statistical mechanics
- From Quantum Chaos and Eigenstate Thermalization to Statistical Mechanics and Thermodynamics
- Many-body localization, thermalization, and entanglement
- Quantum Error Correction for Quantum Memories
- Characterizing Quantum Supremacy in Near-Term Devices
- Many-Body Physics with Individually-Controlled Rydberg Atoms
- Quantum thermalization through entanglement in an isolated many-body system
- Quantum trajectories and open many-body quantum systems
- An atom-by-atom assembler of defect-free arbitrary 2d atomic arrays
- Quantum mechanical evolution towards thermal equilibrium
- 1/f noise: implications for solid-state quantum information
- Eigenstate Thermalization Hypothesis
- Foundation of Statistical Mechanics under experimentally realistic conditions
- Testing whether all eigenstates obey the Eigenstate Thermalization Hypothesis
- High-Fidelity Entanglement and Detection of Alkaline-Earth Rydberg Atoms
- Ergodic dynamics and thermalization in an isolated quantum system
- Bipartite Fluctuations as a Probe of Many-Body Entanglement
- Soundness and completeness of quantum root-mean-square errors
- Alkaline earth atoms in optical tweezers
- Efficient learning of quantum noise
- Microscopic control and detection of ultracold strontium in optical-tweezer arrays
- Equilibration of quantum systems and subsystems
- Estimating the Coherence of Noise
- Preparing random states and benchmarking with many-body quantum chaos
- 2000-times repeated imaging of strontium atoms in clock-magic tweezer arrays
- Erasure conversion in a high-fidelity Rydberg quantum simulator
- Time-resolved observation of thermalization in an isolated quantum system
- Detailed Balance of Thermalization dynamics in Rydberg atom quantum simulators
- Eigenstate thermalization hypothesis and its deviations from random-matrix theory beyond the thermalization time
- Entanglement of random vectors
- Benchmarking highly entangled states on a 60-atom analog quantum simulator
- Entanglement negativity spectrum of random mixed states: A diagrammatic approach
- Multi-ensemble metrology by programming local rotations with atom movements
- Quantum Stabilizer Codes for Correlated and Asymmetric Depolarizing Errors
- Experimental observation of thermalization with noncommuting charges
- Off-Diagonal Observable Elements from Random Matrix Theory: Distributions, Fluctuations, and Eigenstate Thermalization
- Benchmarking Quantum Simulators using Ergodic Quantum Dynamics
- Entanglement Spectroscopy using Quantum Monte Carlo
- Complete Hilbert-Space Ergodicity in Quantum Dynamics of Generalized Fibonacci Drives
- Many-particle dephasing after a quench
- Phase-random states: ensembles of states with fixed amplitudes and uniformly distributed phases in a fixed basis
- Impact of correlations and heavy-tails on quantum error correction
- Universal fluctuations around typicality for quantum ergodic systems
- Ergodicity probes: using time-fluctuations to measure the Hilbert space dimension
Cited by in corpus (7)
- Critically Slow Hilbert-Space Ergodicity in Quantum Morphic Drives
- Partial projected ensembles and spatiotemporal structure of information scrambling
- Estimating time in quantum chaotic systems and black holes
- Simulating dynamics of the two-dimensional transverse-field Ising model: a comparative study of large-scale classical numerics
- Observation of hierarchy of Hilbert space ergodicities in the quantum dynamics of a single spin
- Programmable Assembly of Ground State Fermionic Tweezer Arrays
- Do mixed states exhibit deep thermalisation?