Quantum state smoothing when Alice assumes the wrong type of monitoring by Bob
arXiv:2506.15951 · doi:10.1088/1367-2630/ae17e3
Abstract
An open quantum system leaks information into its environment. In some circumstances it is possible for an observer, say Alice, to recover that information, as a classical measurement record, in a variety of different ways, using different experimental setups. The optimal way for Alice to estimate the quantum state at time from the record before is known as quantum filtering. Recently, a version of quantum smoothing, in which Alice estimates the state at time using her record on both sides of , has been developed. It requires Alice to make optimal inferences about the pre- record of a second observer, say Bob, who recovers whatever information Alice does not. But for Alice to make this inference, she needs to know Bob's setup. In this paper we consider what happens if Alice is mistaken in her assumption about Bob's setup. We show that the accuracy -- as measured by the Trace-Squared-Deviation, of Alice's estimate of the true state (i.e., the state conditioned on her and Bob's pre- records) -- depends strongly on her setup, Bob's actual setup, and the wrongly assumed setup. Using resonance fluorescence as a model system, we show numerically that in some cases the wrong smoothing is almost as accurate as the right smoothing, but in other cases much less accurate, even being less accurate than Alice's filtered estimate. Curiously, in some of the latter cases the fidelity of Alice's wrong estimate with the true state is actually higher than that of her right estimate. We explain this, and other features we observe numerically, by some simple analytical arguments.
24 pages, 4 figures
References in corpus (10)
- Quantum Decoherence
- Time-Symmetric Quantum Theory of Smoothing
- Quantum Theory of the Classical: Einselection, Envariance, Quantum Darwinism and Extantons
- Prediction and retrodiction with continuously monitored Gaussian states
- Unifying theory of quantum state estimation using past and future information
- Classicality with(out) decoherence: Concepts, relation to Markovianity, and a random matrix theory approach
- Quantum state smoothing as an optimal estimation problem with three different cost functions
- General criteria for quantum state smoothing with necessary and sufficient criteria for linear Gaussian quantum systems
- The Quantum Rauch-Tung-Striebel Smoothed State
- Quantum state smoothing cannot be assumed classical even when the filtering and retrofiltering are classical