This third edition expands on the original material. Large portions of the text have been reviewed and clarified. More emphasis is devoted to machine learning including more modern concepts and examples. This book provides the reader with the main concepts and tools needed to perform statistical analyses of experimental data, in particular in the field of high-energy physics (HEP).
It starts with an introduction to probability theory and basic statistics, mainly intended as a refresher from readersâ advanced undergraduate studies, but also to help them clearly distinguish between the Frequentist and Bayesian approaches and interpretations in subsequent applications. Following, the author discusses Monte Carlo methods with emphasis on techniques like Markov Chain Monte Carlo, and the combination of measurements, introducing the best linear unbiased estimator. More advanced concepts and applications are gradually presented, including unfolding and regularization procedures, culminating in the chapter devoted to discoveries and upper limits.
Product details
Publisher : Springer Nature; 3rd edition (27 April 2023)
Language : English
Paperback : 334 pages
ISBN-10 : 3031199332
ISBN-13 : 978-3031199332
Item Weight : 513 g
Dimensions : 15.5 x 2.11 x 23.5 cm
Country of Origin : India
Best Sellers Rank: #764,607 in Books (See Top 100 in Books)
#1,482 in Statistics
#4,359 in Physics (Books)
#7,331 in Computer Science Books
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