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Optimal Viterbi Bayesian predictive classification for data from finite alphabets

Corander, Jukka (author)
Xiong, Jie (author)
Cui, Yaqiong (author)
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Koski, Timo (author)
KTH,Matematisk statistik
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 (creator_code:org_t)
Elsevier BV, 2013
2013
English.
In: Journal of Statistical Planning and Inference. - : Elsevier BV. - 0378-3758 .- 1873-1171. ; 143:2, s. 261-275
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • A family of Viterbi Bayesian predictive classifiers has been recently popularized for speech recognition applications with continuous acoustic signals modeled by finite mixture densities embedded in a hidden Markov framework. Here we generalize such classifiers to sequentially observed data from multiple finite alphabets and derive the optimal predictive classifier under exchangeability of the emitted symbols. We demonstrate that the optimal predictive classifier which learns from unlabelled test items improves considerably upon marginal maximum a posteriori rule in the presence of sparse training data. It is shown that the learning process saturates when the amount of test data tends to infinity, such that no further gain in classification accuracy is possible upon arrival of new test items in the long run.

Subject headings

NATURVETENSKAP  -- Matematik (hsv//swe)
NATURAL SCIENCES  -- Mathematics (hsv//eng)

Keyword

Bayesian learning
Hidden Markov models
Predictive classification

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Corander, Jukka
Xiong, Jie
Cui, Yaqiong
Koski, Timo
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NATURAL SCIENCES
NATURAL SCIENCES
and Mathematics
Articles in the publication
Journal of Stati ...
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Royal Institute of Technology

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