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Hidden Markov Processes Theory And Applications To Biology Course Book M Vidyasagar

  • SKU: BELL-51959250
Hidden Markov Processes Theory And Applications To Biology Course Book M Vidyasagar
$ 31.00 $ 45.00 (-31%)

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Hidden Markov Processes Theory And Applications To Biology Course Book M Vidyasagar instant download after payment.

Publisher: Princeton University Press
File Extension: PDF
File size: 2.01 MB
Pages: 312
Author: M. Vidyasagar
ISBN: 9781400850518, 1400850517
Language: English
Year: 2014
Edition: Course Book

Product desciption

Hidden Markov Processes Theory And Applications To Biology Course Book M Vidyasagar by M. Vidyasagar 9781400850518, 1400850517 instant download after payment.

This book explores important aspects of Markov and hidden Markov processes and the applications of these ideas to various problems in computational biology. The book starts from first principles, so that no previous knowledge of probability is necessary. However, the work is rigorous and mathematical, making it useful to engineers and mathematicians, even those not interested in biological applications. A range of exercises is provided, including drills to familiarize the reader with concepts and more advanced problems that require deep thinking about the theory. Biological applications are taken from post-genomic biology, especially genomics and proteomics.


The topics examined include standard material such as the Perron-Frobenius theorem, transient and recurrent states, hitting probabilities and hitting times, maximum likelihood estimation, the Viterbi algorithm, and the Baum-Welch algorithm. The book contains discussions of extremely useful topics not usually seen at the basic level, such as ergodicity of Markov processes, Markov Chain Monte Carlo (MCMC), information theory, and large deviation theory for both i.i.d and Markov processes. The book also presents state-of-the-art realization theory for hidden Markov models. Among biological applications, it offers an in-depth look at the BLAST (Basic Local Alignment Search Technique) algorithm, including a comprehensive explanation of the underlying theory. Other applications such as profile hidden Markov models are also explored.

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