Analyzing Markov Chains using Kronecker Products

Theory and Applications

Specificaties
Paperback, 86 blz. | Engels
Springer New York | 2013e druk, 2012
ISBN13: 9781461441892
Rubricering
Springer New York 2013e druk, 2012 9781461441892
Onderdeel van serie SpringerBriefs in Mathematics
Verwachte levertijd ongeveer 9 werkdagen

Samenvatting

Kronecker products are used to define the underlying Markov chain (MC) in various modeling formalisms, including compositional Markovian models, hierarchical Markovian models, and stochastic process algebras. The motivation behind using a Kronecker structured representation rather than a flat one is to alleviate the storage requirements associated with the MC. With this approach, systems that are an order of magnitude larger can be analyzed on the same platform. The developments in the solution of such MCs are reviewed from an algebraic point of view and possible areas for further research are indicated with an emphasis on preprocessing using reordering, grouping, and lumping and numerical analysis using block iterative, preconditioned projection, multilevel, decompositional, and matrix analytic methods. Case studies from closed queueing networks and stochastic chemical kinetics are provided to motivate decompositional and matrix analytic methods, respectively.

Specificaties

ISBN13:9781461441892
Taal:Engels
Bindwijze:paperback
Aantal pagina's:86
Uitgever:Springer New York
Druk:2013

Inhoudsopgave

Introduction.- Background.- Kronecker representation.- Preprocessing.- Block iterative methods for Kronecker products.- Preconditioned projection methods.- Multilevel methods.- Decompositional methods.- Matrix analytic methods.

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        Analyzing Markov Chains using Kronecker Products