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Concentration of measure for the analysis of randomized algorithms
Authors: ---
ISBN: 9780511581274 9780521884273 9781107606609 9780511580956 0511580959 9780511579554 0511579551 0511581270 0521884276 1107200318 113963769X 1282302779 9786612302770 0511580630 0511578814 0511580290 1107606608 9781107200319 9781282302778 6612302771 9780511580635 9780511578816 9780511580291 Year: 2009 Publisher: New York : Cambridge University Press,

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Abstract

Randomized algorithms have become a central part of the algorithms curriculum, based on their increasingly widespread use in modern applications. This book presents a coherent and unified treatment of probabilistic techniques for obtaining high probability estimates on the performance of randomized algorithms. It covers the basic toolkit from the Chernoff-Hoeffding bounds to more sophisticated techniques like martingales and isoperimetric inequalities, as well as some recent developments like Talagrand's inequality, transportation cost inequalities and log-Sobolev inequalities. Along the way, variations on the basic theme are examined, such as Chernoff-Hoeffding bounds in dependent settings. The authors emphasise comparative study of the different methods, highlighting respective strengths and weaknesses in concrete example applications. The exposition is tailored to discrete settings sufficient for the analysis of algorithms, avoiding unnecessary measure-theoretic details, thus making the book accessible to computer scientists as well as probabilists and discrete mathematicians.

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