Simulation complexity of open quantum dynamics: Connection with tensor networks
arXiv:1812.00043 · doi:10.1103/PhysRevLett.122.160401
Abstract
The difficulty to simulate the dynamics of open quantum systems resides in their coupling to many-body reservoirs with exponentially large Hilbert space. Applying a tensor network approach in the time domain, we demonstrate that effective small reservoirs can be defined and used for modeling open quantum dynamics. The key element of our technique is the timeline reservoir network (TRN), which contains all the information on the reservoir's characteristics, in particular, the memory effects timescale. The TRN has a one-dimensional tensor network structure, which can be effectively approximated in full analogy with the matrix product approximation of spin-chain states. We derive the sufficient bond dimension in the approximated TRN with a reduced set of physical parameters: coupling strength, reservoir correlation time, minimal timescale, and the system's number of degrees of freedom interacting with the environment. The bond dimension can be viewed as a measure of the open dynamics complexity. Simulation is based on the semigroup dynamics of the system and effective reservoir of finite dimension. We provide an illustrative example showing scope for new numerical and machine learning-based methods for open quantum systems.
References in corpus (22)
- The density-matrix renormalization group in the age of matrix product states
- Matrix Product States, Projected Entangled Pair States, and variational renormalization group methods for quantum spin systems
- A class of quantum many-body states that can be efficiently simulated
- Matrix product states represent ground states faithfully
- Quantum Circuits Architecture
- Operational Markov condition for quantum processes
- Non-perturbative treatment of non-Markovian dynamics of open quantum systems
- Exploiting the causal tensor network structure of quantum processes to efficiently simulate non-Markovian path integrals
- Advances on Tensor Network Theory: Symmetries, Fermions, Entanglement, and Holography
- Is efficiency of classical simulations of quantum dynamics related to integrability?
- Composite quantum collision models
- Quantum revivals and many-body localization
- Divisibility of quantum dynamical maps and collision models
- An introduction to operational quantum dynamics
- Inchworm Monte Carlo for exact non-adiabatic dynamics II. Benchmarks and comparison with established methods
- Preservation of quantum correlation between separated nitrogen-vacancy centers embedded in photonic crystal cavities
- Fisher information approach to non-equilibrium phase transitions in quantum XXZ spin chain with boundary noise
- Thermal Instability of Protected End States in a 1-D Topological Insulator
- Non-Markovian dynamics of double quantum dot charge qubits due to acoustic phonons
- Spontaneous emission from a quantum dot in a structured photonic reservoir: phonon-mediated breakdown of Fermi's golden rule
- Quantum Markovianity as a supervised learning task
- Barnes slave boson approach to the two-site single impurity Anderson model with non-local interaction
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- Machine learning non-Markovian quantum dynamics
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- Constructing Tensor Network Influence Functionals for General Quantum Dynamics
- Riemannian geometry and automatic differentiation for optimization problems of quantum physics and quantum technologies
- Phase covariant qubit dynamics and divisibility
- Experimental characterisation of a non-Markovian quantum process
- Non-Markovian Stochastic Schrödinger Equation: Matrix Product State Approach to the Hierarchy of Pure States
- Resource theories of multi-time processes: A window into quantum non-Markovianity
- Randomized benchmarking for non-Markovian noise
- Rate operator unravelling for open quantum system dynamics
- Variational autoencoder reconstruction of complex many-body physics
- Hardware-efficient quantum algorithm for the simulation of open-system dynamics and thermalisation
- Non-perturbative effects in corrections to quantum master equation arising in Bogolubov-van Hove limit
- Probing non-Markovian quantum dynamics with data-driven analysis: Beyond "black-box" machine learning models
- Non-Markovian Memory Strength Bounds Quantum Process Recoverability
- Beating the House: Fast Simulation of Dissipative Quantum Systems with Ensemble Rank Truncation
- Spectral Density Classification For Environment Spectroscopy
- Characterising the Hierarchy of Multi-time Quantum Processes with Classical Memory
- Multipartite correlations in quantum collision models
- Reassessing thermodynamic advantage from indefinite causal order
- Quantum master equations for a system interacting with quantum gas in the low density limit and for the semiclassical collision model
- On the sampling complexity of open quantum systems
- Memory Effects in Quantum Processes
- Simulating open quantum systems with giant atoms
- Time-convolutionless master equations for composite open quantum systems
- Effect of incoherent pump on two-mode entanglement in optical parametric generation
- Exact Hidden Markovian Dynamics in Quantum Circuits
- Long-time Markovianity of multi-level systems in the rotating wave approximation
- Continuous and time-discrete non-Markovian system-reservoir interactions: Dissipative coherent quantum feedback in Liouville space
- Operational Markovianization in Randomized Benchmarking
- Randomised benchmarking for characterizing and forecasting correlated processes
- Hidden Quantum Memory: Is Memory There When Somebody Looks?
- Collisional open quantum dynamics with a generally correlated environment: Exact solvability in tensor networks
- Exact non-Markovian evolution with multiple reservoirs
- Nearly Markovian maps and entanglement-based bound on corresponding non-Markovianity
- Discrete-phase-space method for driven-dissipative dynamics of strongly interacting bosons in optical lattices
- Time-dependent variational principle for open quantum systems with artificial neural networks
- Integral representation of finite temperature non-Markovian evolution of some RWA systems
- Model-Independent Simulation Complexity of Complex Quantum Dynamics
- Understanding and utilizing the inner bonds of process tensors
- Hamiltonian characterisation of multi-time processes with classical memory
- Witnessing environment dimension through temporal correlations
- Eternally non-Markovian dynamics of a qubit interacting with a single-photon wavepacket
- A de Finetti theorem for quantum causal structures
- On quantum operations of photon subtraction and photon addition
- Equilibration and Typicality in Quantum Processes
- George Sudarshan and Quantum Dynamics
- Diagnosing chaos with projected ensembles of process tensors