DocumentCode :
1894911
Title :
Recursive computation of the score and observed information matrix in hidden markov models
Author :
Cappé, Olivier ; Moulines, Eric
Author_Institution :
Centre Nat. de la Recherche Scientifique, Ecole Nat. Superieure des Telecommun., Paris
fYear :
2005
fDate :
17-20 July 2005
Firstpage :
703
Lastpage :
708
Abstract :
Hidden Markov models (henceforth abbreviated to HMMs), taken in their most general acception, that is, including models in which the state space of the hidden chain is continuous, have become a widely used class of statistical models with applications in diverse areas such as communications, engineering, bioinformatics, econometrics and many more. This contribution focus on the computation of derivatives of the log-likelihood and proposes a (comparatively!) simple and general framework, based on the use of Fisher and Louis identities, to obtain recursive equations for computing the score and observed information matrix. This approach is thought to be simpler than (although equivalent to) the solution provided by the so-called sensitivity equations. It is based on the original remark that recursive smoothers for HMMs are also available for some functional of the hidden states which do not reduce to sum functionals. This view of the problem also suggests ways in which these exact equations could be approximated using sequential Monte Carlo methods
Keywords :
Monte Carlo methods; approximation theory; hidden Markov models; matrix algebra; recursive functions; signal processing; smoothing methods; Fisher identity; HMM; Louis identity; approximation; hidden Markov model; information matrix; recursive equation; recursive smoother; sensitivity equation; sequential Monte Carlo method; statistical model; Bioinformatics; Digital communication; Econometrics; Equations; Hidden Markov models; Signal processing algorithms; Smoothing methods; Solid modeling; Speech recognition; State-space methods;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Statistical Signal Processing, 2005 IEEE/SP 13th Workshop on
Conference_Location :
Novosibirsk
Print_ISBN :
0-7803-9403-8
Type :
conf
DOI :
10.1109/SSP.2005.1628685
Filename :
1628685
Link To Document :
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