Dynamics of discrete-time quantum walk with time-correlated unitary
noise
- URL: http://arxiv.org/abs/2011.10324v2
- Date: Tue, 24 Nov 2020 00:53:38 GMT
- Title: Dynamics of discrete-time quantum walk with time-correlated unitary
noise
- Authors: Y. F. Peng and X. X. Yi
- Abstract summary: We investigate the dynamics of discrete-time quantum walk subject to time correlated noise.
Two remarker behaviors of long time noisy dynamics are observed in numerical simulations.
In fast noise regime, the walker is confined into few lattice sites, and the width of wave packet is much narrower compared with that in slow noise regime.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We investigate the dynamics of discrete-time quantum walk subject to time
correlated noise. Noise is described as an unitary coin-type operator before
each step, and attention is focused on the noise generated by a Gaussian
Ornstein Uhlenbeck process, going beyond the usual telegraph noise, where the
random variables are consist of only -1 and 1. Under the first-order
approximation of BCH formula, the master equation of noisy discrete-time
quantum walk is derived. The dynamics given by the master equation are in good
agreement with those given by numerical simulations within a certain period of
steps, which is controlled by noise parameters. Two remarker behaviors of long
time noisy dynamics are observed in numerical simulations, corresponding to two
opposite noise regimes: in slow noise regime, with the increase of the noise
amplitude, the quantum coherence is suppressed, and the dynamics of noisy
discrete-time quantum walk gradually transits to that of classical random walk.
In fast noise regime, the walker is confined into few lattice sites, and the
width of wave packet is much narrower compared with that in slow noise regime.
Related papers
- Stochastic action for the entanglement of a noisy monitored two-qubit
system [55.2480439325792]
We study the effect of local unitary noise on the entanglement evolution of a two-qubit system subject to local monitoring and inter-qubit coupling.
We construct a Hamiltonian by incorporating the noise into the Chantasri-Dressel-Jordan path integral and use it to identify the optimal entanglement dynamics.
Numerical investigation of long-time steady-state entanglement reveals a non-monotonic relationship between concurrence and noise strength.
arXiv Detail & Related papers (2024-03-13T11:14:10Z) - Dynamical quantum phase transitions following a noisy quench [0.0]
We study how time-dependent energy fluctuations impact the quantum phase transitions following a noisy quench of the transverse magnetic field in a quantum Ising chain.
We trace the phenomenon to the interplay between noise-induced excitations which accumulate during the quench and the nearadiabatic dynamics of the system.
arXiv Detail & Related papers (2023-10-20T07:56:47Z) - Autonomous coherence protection of a two-level system in a fluctuating
environment [68.8204255655161]
We re-examine a scheme originally intended to remove the effects of static Doppler broadening from an ensemble of non-interacting two-level systems (qubits)
We demonstrate that this scheme is far more powerful and can also protect a single (or even an ensemble) qubit's energy levels from noise which depends on both time and space.
arXiv Detail & Related papers (2023-02-08T01:44:30Z) - Quantum simulation of dynamical phase transitions in noisy quantum
devices [0.0]
Zero-noise extrapolation provides an especially useful error mitigation method for noisy quantum devices.
Noise alters the behavior of the Loschmidt echo at the dynamical phase transition times.
Zero-noise extrapolation may be employed to recover quantum revivals of the Loschmidt echo.
arXiv Detail & Related papers (2022-11-15T17:22:20Z) - Noise correlations behind superdiffusive quantum walks [0.0]
We study how discrete-time quantum walks behave under short-range correlated noise.
For spatial inhomogeneities, we show noise correlations driving quantum walks from the well-known exponentially localized condition to superdiffusive spreading.
arXiv Detail & Related papers (2022-07-26T18:54:28Z) - Characterizing low-frequency qubit noise [55.41644538483948]
Fluctuations of the qubit frequencies are one of the major problems to overcome on the way to scalable quantum computers.
The statistics of the fluctuations can be characterized by measuring the correlators of the outcomes of periodically repeated Ramsey measurements.
This work suggests a method that allows describing qubit dynamics during repeated measurements in the presence of evolving noise.
arXiv Detail & Related papers (2022-07-04T22:48:43Z) - High-Order Qubit Dephasing at Sweet Spots by Non-Gaussian Fluctuators:
Symmetry Breaking and Floquet Protection [55.41644538483948]
We study the qubit dephasing caused by the non-Gaussian fluctuators.
We predict a symmetry-breaking effect that is unique to the non-Gaussian noise.
arXiv Detail & Related papers (2022-06-06T18:02:38Z) - Learning Noise via Dynamical Decoupling of Entangled Qubits [49.38020717064383]
Noise in entangled quantum systems is difficult to characterize due to many-body effects involving multiple degrees of freedom.
We develop and apply multi-qubit dynamical decoupling sequences that characterize noise that occurs during two-qubit gates.
arXiv Detail & Related papers (2022-01-26T20:22:38Z) - Simulability transitions in continuous-time dynamics of local open
quantum systems [0.913755431537592]
We prove that a time classical algorithm can be used to sample from the state of the spins when the rate of noise is higher than a threshold determined by the strength of the local interactions.
We show that for several noise channels, the problem of weakly simulating the output state of both purely Hamiltonian and purely dissipative dynamics is expected to be hard in the low-noise regime.
arXiv Detail & Related papers (2021-10-20T16:06:42Z) - Continuous-time dynamics and error scaling of noisy highly-entangling
quantum circuits [58.720142291102135]
We simulate a noisy quantum Fourier transform processor with up to 21 qubits.
We take into account microscopic dissipative processes rather than relying on digital error models.
We show that depending on the dissipative mechanisms at play, the choice of input state has a strong impact on the performance of the quantum algorithm.
arXiv Detail & Related papers (2021-02-08T14:55:44Z)
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.