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pubmed-article:18447951pubmed:abstractTextThe Baum-Welch learning procedure for Hidden Markov Models (HMMs) provides a powerful tool for tailoring HMM topologies to data for use in knowledge discovery and clustering. A linear memory procedure recently proposed by Miklós, I. and Meyer, I.M. describes a memory sparse version of the Baum-Welch algorithm with modifications to the original probabilistic table topologies to make memory use independent of sequence length (and linearly dependent on state number). The original description of the technique has some errors that we amend. We then compare the corrected implementation on a variety of data sets with conventional and checkpointing implementations.lld:pubmed
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pubmed-article:18447951pubmed:year2008lld:pubmed
pubmed-article:18447951pubmed:articleTitleImplementing EM and Viterbi algorithms for Hidden Markov Model in linear memory.lld:pubmed
pubmed-article:18447951pubmed:affiliationThe Research Institute for Children, 200 Henry Clay Ave, New Orleans, LA 70118, USA. achurbanov@yahoo.comlld:pubmed
pubmed-article:18447951pubmed:publicationTypeJournal Articlelld:pubmed
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