• DocumentCode
    3483029
  • Title

    Design and stability of discrete-time quantum filters with measurement imperfections

  • Author

    Somaraju, A. ; Dotsenko, I. ; Sayrin, C. ; Rouchon, Pierre

  • Author_Institution
    Dept. of Appl. Phys. & Photonics, Vrije Univ. Brussel, Brussels, Belgium
  • fYear
    2012
  • fDate
    27-29 June 2012
  • Firstpage
    5084
  • Lastpage
    5089
  • Abstract
    This work considers the theory underlying a discrete-time quantum filter recently used in a quantum feedback experiment. It proves that this filter taking into account decoherence and measurement errors is optimal and stable. We present the general framework underlying the filter and show that it corresponds to a recursive expression of the least-square optimal estimation of the density operator in the presence of measurement imperfections. By measurement imperfections, we mean in a very general sense unread measurement performed by the environment (decoherence) and active measurement performed by non-ideal detectors. However, we assume to know precisely all the Kraus operators and also the detection error rates. Such recursive expressions combine well known methods from quantum filtering theory and classical probability theory (Bayes´ law). We then demonstrate that such a recursive filter is always stable with respect to its initial condition: the fidelity between the optimal filter state (when the initial filter state coincides with the real quantum state) and the filter state (when the initial filter state is arbitrary) is a sub-martingale.
  • Keywords
    Bayes methods; control system synthesis; discrete time systems; feedback; filtering theory; least squares approximations; recursive filters; stability; Bayes law; Kraus operators; active measurement; classical probability theory; decoherence errors; density operator; detection error rates; discrete-time quantum filter design; discrete-time quantum filter stability; least-square optimal estimation; measurement errors; measurement imperfections; nonideal detectors; optimal filter state; quantum feedback experiment; quantum filtering theory; recursive filter; unread measurement; Atomic measurements; Cavity resonators; Equations; Error analysis; Mathematical model; Photonics; Quantum mechanics;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    American Control Conference (ACC), 2012
  • Conference_Location
    Montreal, QC
  • ISSN
    0743-1619
  • Print_ISBN
    978-1-4577-1095-7
  • Electronic_ISBN
    0743-1619
  • Type

    conf

  • DOI
    10.1109/ACC.2012.6315442
  • Filename
    6315442