This monograph presents some new concentration inequalities for Feynman-Kac particle processes. We analyze different types of stochastic particle models, including particle profile occupation measures, genealogical tree based evolution models, particle free energies, as well as backward Markov chain particle models. We illustrate these results with a series of topics related to computational physics and biology, stochastic optimization, signal processing and Bayesian statistics, and many other probabilistic machine learning algorithms. Special emphasis is given to the stochastic modeling, and to the quantitative performance analysis of a series of advanced Monte Carlo methods, including particle filters, genetic type island models, Markov bridge models, and interacting particle Markov chain Monte Carlo methodologies.
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26 January 2012
Research Article|
January 26 2012
On the Concentration Properties of Interacting Particle Processes
Pierre Del Moral;
Pierre Del Moral
INRIA, Bordeaux-Sud Ouest Center, INRIA, Bordeaux-Sud Ouest Center & Bordeaux Mathematical Institute
, Université Bordeaux 1, 351, Cours de la Libération, Talence, 33405, France
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Peng Hu;
Peng Hu
INRIA, Bordeaux-Sud Ouest Center, INRIA, Bordeaux-Sud Ouest Center & Bordeaux Mathematical Institute
, Université Bordeaux 1, 351, Cours de la Libération, Talence, 33405, France
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Liming Wu
Liming Wu
Academy of Mathematics and Systems Science & Laboratoire de Mathématiques, Université Blaise Pascal
, 63177 AUBIERE, France, Institute of Applied Mathematics, AMSS, CAS, Siyuan Building, Beijing, China, & Université Blaise Pascal, Aubiére 63177, France
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Online ISSN: 1935-8245
Print ISSN: 1935-8237
© 2012 P. Del Moral, P. Hu, and L. Wu
2012
P. Del Moral, P. Hu, and L. Wu
Licensed re-use rights only
Foundations and Trends in Machine Learning (2012) 3 (3-4): 225–389.
Citation
Del Moral P, Hu P, Wu L (2012), "On the Concentration Properties of Interacting Particle Processes". Foundations and Trends in Machine Learning, Vol. 3 No. 3-4 pp. 225–389, doi: https://doi.org/10.1561/2200000026
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