DocumentCode :
3001961
Title :
Continuously variable duration hidden Markov models for speech analysis
Author :
Levinson, Stephen E.
Author_Institution :
AT&T Bell Laboratories, Murray Hill, New Jersey, USA
Volume :
11
fYear :
1986
fDate :
31503
Firstpage :
1241
Lastpage :
1244
Abstract :
During the past decade, the applicability of hidden Markov models (HMM) to various facets of speech analysis had been demonstrated in several different experiments. These investigations all rest on the assumption that speech is a quasi-stationary process whose stationary intervals can be identified with the occupancy of a single state of an appropriate HMM. In the traditional form of the HMM, the probability of duration of a state decreases exponentially with time. This behavior does not provide an adequate representation of the temporal structure of speech. The solution proposed here is to replace the probability distributions of duration with continuous probability density functions to form a continuously variable duration hidden Markov model (CVDHMM). The gamma distribution is ideally suited to specification of the durational density since it is one-sided and has only two parameters which, together, define both mean and variance. The main result is a derivation and proof of convergence of reestimation formulae for all the parameters of the CVDHMM. It is interesting to note that if the state durations are gamma distributed, one of the formulae is nonalgebraic but, fortuitously, has properties such that it is easily and rapidly solved numerically to any desired degree of accuracy. Other results are presented including the performance of the formulae on simulated data.
Keywords :
Argon; Convergence; Hidden Markov models; Probability density function; Probability distribution; Speech analysis; Speech processing; Speech recognition; Stochastic processes; Training data;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Acoustics, Speech, and Signal Processing, IEEE International Conference on ICASSP '86.
Type :
conf
DOI :
10.1109/ICASSP.1986.1168801
Filename :
1168801
Link To Document :
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