Consistent HMM parameter estimation using Kerridge inaccuracy rates
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Molloy, Timothy L.
Ford, Jason J.
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Abstract
In this paper, we propose a novel online hidden Markov model (HMM) parameter estimator based on Kerridge inaccuracy rate (KIR) concepts. Under mild identifiability conditions, we prove that our online KIR-based estimator is strongly consistent. In simulation studies, we illustrate the convergence behaviour of our proposed online KIR-based estimator and provide a counter-example illustrating the local convergence properties of the well known recursive maximum likelihood estimator (arguably the best existing solution).
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2013 3rd Australian Control Conference, AUCC 2013
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