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A Tutorial on Hidden Markov Models and Selected Applications in Speech Recognition LAWRENCE R. RABINER, FELLOW, IEEE Presented by: Chi-Chun Hsia. Markov Chain. Markov Chain. Markov Chain. It results in a Geometric Distribution. And then, what does “hidden” means?.
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A Tutorial on Hidden Markov Models and Selected Applications in Speech Recognition LAWRENCE R. RABINER, FELLOW, IEEE Presented by: Chi-Chun Hsia 1
Markov Chain It results in a Geometric Distribution And then, what does “hidden” means? 4
EM Algorithm for HMM X.D. HUANG, Y. ARIKI, M.A. JACK HIDDEN MARKOV MODELS FOR SPEECH RECOGNITION EDINBURGH UNIVERSITY PRESS 21
Optimization Criterion Maximum Likelihood (ML) Maximum Mutual Information (MMI) Minimum Discrimination Information (MDI) Minimum Classification Error (MCE) Chang. 25
Implementation Issues for HMMs • Scaling • Multiple Observation Sequences • Initial Estimates of HMM Parameters • Effect of Insufficient Training Data • Choice of Model 26
Scaling 27
Scaling 28
Scaling And so on and on and on and on…………….. 29