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Markov Chains - From Theory to Implementation and Experimentation (Hardcover)
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Markov Chains - From Theory to Implementation and Experimentation (Hardcover)
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A fascinating and instructive guide to Markov chains for
experienced users and newcomers alike This unique guide to Markov
chains approaches the subject along the four convergent lines of
mathematics, implementation, simulation, and experimentation. It
introduces readers to the art of stochastic modeling, shows how to
design computer implementations, and provides extensive worked
examples with case studies. Markov Chains: From Theory to
Implementation and Experimentation begins with a general
introduction to the history of probability theory in which the
author uses quantifiable examples to illustrate how probability
theory arrived at the concept of discrete-time and the Markov model
from experiments involving independent variables. An introduction
to simple stochastic matrices and transition probabilities is
followed by a simulation of a two-state Markov chain. The notion of
steady state is explored in connection with the long-run
distribution behavior of the Markov chain. Predictions based on
Markov chains with more than two states are examined, followed by a
discussion of the notion of absorbing Markov chains. Also covered
in detail are topics relating to the average time spent in a state,
various chain configurations, and n-state Markov chain simulations
used for verifying experiments involving various diagram
configurations. Fascinating historical notes shed light on the key
ideas that led to the development of the Markov model and its
variants Various configurations of Markov Chains and their
limitations are explored at length Numerous examples from basic to
complex are presented in a comparative manner using a variety of
color graphics All algorithms presented can be analyzed in either
Visual Basic, Java Script, or PHP Designed to be useful to
professional statisticians as well as readers without extensive
knowledge of probability theory Covering both the theory underlying
the Markov model and an array of Markov chain implementations,
within a common conceptual framework, Markov Chains: From Theory to
Implementation and Experimentation is a stimulating introduction to
and a valuable reference for those wishing to deepen their
understanding of this extremely valuable statistical tool. Paul A.
Gagniuc, PhD, is Associate Professor at Polytechnic University of
Bucharest, Romania. He obtained his MS and his PhD in genetics at
the University of Bucharest. Dr. Ganiuc s work has been published
in numerous high profile scientific journals, ranging from the
Public Library of Science to BioMed Central and Nature journals. He
is the recipient of several awards for exceptional scientific
results and a highly active figure in the review process for
different scientific areas.
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