Optimal filtering for a giant cavity in waveguide QED systems
Guangpu Wu, Shibei Xue, Yuting Zhu, Guofeng Zhang, Ian R. Petersen

TL;DR
This paper develops an optimal quantum filter for a giant cavity in waveguide QED systems with non-Markovian dynamics due to distant couplings and delays, enabling improved state estimation under continuous measurements.
Contribution
It introduces a novel filtering approach that accounts for delays and nonlocal couplings in giant cavity waveguide QED systems, extending existing quantum filtering methods.
Findings
The filter accurately tracks the cavity state evolution.
Numerical simulations validate the filter's effectiveness.
The approach handles noncommutativity caused by delays.
Abstract
In waveguide quantum electrodynamics (QED) systems, a giant cavity can be engineered to interact with quantum fields by multiple distant coupling points so that its non-Markovian dynamics are quite different from traditional quantum optical cavity systems. Towards feedback control this system, this paper designs an optimal filter for the giant cavity systems to estimate its state evolution under continuous quantum measurements. Firstly, the Langevin equation in the Heisenberg picture are derived, which is a linear continuous-time system with both states and inputs delays resulting from the unconventional distant couplings. Compared to existing modeling approaches, this formulation effectively preserves the nonlocal coupling and multiple delay dynamic characteristics inherent in the original system. In particular, the presence of coupling and propagation delays leads to noncommutativity…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum Mechanics and Applications · stochastic dynamics and bifurcation
