Volume 37, pp. 296-306, 2010.
A robust spectral method for finding lumpings and meta stable states of non-reversible Markov chains
Martin Nilsson Jacobi
Abstract
A spectral method for identifying lumping in large Markov chains is presented. The identification of meta stable states is treated as a special case. The method is based on the spectral analysis of a self-adjoint matrix that is a function of the original transition matrix. It is demonstrated that the technique is more robust than existing methods when applied to noisy non-reversible Markov chains.
Full Text (PDF) [542 KB], BibTeX
Key words
Markov chain, stochastic matrix, metastable states, lumping, aggregation, modularity, block diagonal dominance, block stochastic
AMS subject classifications
15A18, 15A51, 60J10, 65F15
Links to the cited ETNA articles
[7] | Vol. 29 (2007-2008), pp. 46-69 David Fritzsche, Volker Mehrmann, Daniel B. Szyld, and Elena Virnik: An SVD approach to identifying metastable states of Markov chains |
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