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Probabilistic Methods for Algorithmic Discrete MathematicsProbabilistic Methods for Algorithmic Discrete Mathematics

Probabilistic Methods for Algorithmic Discrete Mathematics

Michel Habib

About this book

The book gives an accessible account of modern pro- babilistic methods for analyzing combinatorial structures and algorithms. Each topic is approached in a didactic manner but the most recent developments are linked to the basic ma- terial. Extensive lists of references and a detailed index will make this a useful guide for graduate students and researchers. Special features included: - a simple treatment of Talagrand inequalities and their applications - an overview and many carefully worked out examples of the probabilistic analysis of combinatorial algorithms - a discussion of the "exact simulation" algorithm (in the context of Markov Chain Monte Carlo Methods) - a general method for finding asymptotically optimal or near optimal graph colouring, showing how the probabilistic method may be fine-tuned to explit the structure of the underlying graph - a succinct treatment of randomized algorithms and derandomization techniques.

Details

ISBN-13
9783662127889
OL Work ID
OL19896709W

Subjects

Computer scienceData processingAlgebraCombinatoricsMathematicsDistribution (Probability theory)Combinatorial analysisAlgorithmsComputation by Abstract DevicesSymbolic and Algebraic ManipulationProbability Theory and Stochastic Processes

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Book data from Open Library. Cover images courtesy of Open Library.