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Michael Seifert

Hidden Markov Models with Applications in Computational Biology

Model Extensions and Advanced Analysis of DNA Microarray Data

Buch

Standard first-order Hidden Markov Models (HMMs) are very popular tools for the analysis of sequential data in applied sciences. HMMs are versatile and structurally simple models enabling probabilistic modeling based on a sound theoretical grounding. In contrast to the broad usage of first-order HMMs, applications of higher-order HMMs are very rare, but they have been proven to be powerful extensions of first-order HMMs including applications in speech recognition, image segmentation or computational biology. This book provides the first easily accessible and comprehensive extension of the algorithmic basics of first-order HMMs to higher-orde… Mehr

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Produktdetails


  • ISBN: 978-3-8381-3604-2
  • EAN: 9783838136042
  • Produktnummer: 37602209
  • Verlag: Südwestdeutscher Verlag für Hochschulschriften
  • Sprache: Englisch
  • Erscheinungsjahr: 2013
  • Seitenangabe: 184 S.
  • Masse: H22.0 cm x B15.0 cm x D1.1 cm 292 g
  • Abbildungen: Paperback
  • Gewicht: 292

Über den Autor


studied bioinformatics and received his doctoral degree from the Martin Luther University Halle-Wittenberg in 2010. He worked on plant computational biology and machine learning at the IPK Gatersleben and the IBENS Paris. Since May 2012, Michael Seifert is developing computational methods for cancer genomics at the BIOTEC TU Dresden.

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