Likelihood and Bayesian Inference: With Applications in Biology and Medicine: Statistics for Biology and Health
Autor Leonhard Held, Daniel Sabanés Bovéen Limba Engleză Paperback – apr 2021
Toate formatele și edițiile | Preț | Express |
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Paperback (1) | 494.70 lei 6-8 săpt. | |
Springer Berlin, Heidelberg – apr 2021 | 494.70 lei 6-8 săpt. | |
Hardback (1) | 539.73 lei 6-8 săpt. | |
Springer Berlin, Heidelberg – apr 2020 | 539.73 lei 6-8 săpt. |
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Specificații
ISBN-13: 9783662607947
ISBN-10: 3662607948
Pagini: 402
Ilustrații: XIII, 402 p. 84 illus.
Dimensiuni: 155 x 235 x 26 mm
Greutate: 0.58 kg
Ediția:2nd ed. 2020
Editura: Springer Berlin, Heidelberg
Colecția Springer
Seria Statistics for Biology and Health
Locul publicării:Berlin, Heidelberg, Germany
ISBN-10: 3662607948
Pagini: 402
Ilustrații: XIII, 402 p. 84 illus.
Dimensiuni: 155 x 235 x 26 mm
Greutate: 0.58 kg
Ediția:2nd ed. 2020
Editura: Springer Berlin, Heidelberg
Colecția Springer
Seria Statistics for Biology and Health
Locul publicării:Berlin, Heidelberg, Germany
Cuprins
Recenzii
“If you need a guidebook to follow when you need to refresh past statistical concepts from your memory, or even learn the rationale behind a method you are not familiar with, this user-friendly book will give you a perfect starting point.” (Pablo Hernández-Alonso, ISCB News, iscb.info, June, 2022)
Notă biografică
Leonhard Held is a Full Professor of Biostatistics, Director of the Master’s Program in Biostatistics and Chair of the Center for Reproducible Science at the University of Zurich, Switzerland. He has published several books and numerous articles on statistical methodology, applied statistics and biomedical research and teaches undergraduate and graduate-level courses in Biostatistics and Medical Statistics.
Daniel Sabanés Bové completed his PhD in Statistics at the University of Zurich under the supervision of Leonhard Held. He started his career as a biostatistician in oncology drug development at Hoffmann-La Roche in 2013, and has been a data scientist at Google since 2018.
Daniel Sabanés Bové completed his PhD in Statistics at the University of Zurich under the supervision of Leonhard Held. He started his career as a biostatistician in oncology drug development at Hoffmann-La Roche in 2013, and has been a data scientist at Google since 2018.
Textul de pe ultima copertă
This richly illustrated textbook covers modern statistical methods with applications in medicine, epidemiology and biology. Firstly, it discusses the importance of statistical models in applied quantitative research and the central role of the likelihood function, describing likelihood-based inference from a frequentist viewpoint, and exploring the properties of the maximum likelihood estimate, the score function, the likelihood ratio and the Wald statistic. In the second part of the book, likelihood is combined with prior information to perform Bayesian inference. Topics include Bayesian updating, conjugate and reference priors, Bayesian point and interval estimates, Bayesian asymptotics and empirical Bayes methods. It includes a separate chapter on modern numerical techniques for Bayesian inference, and also addresses advanced topics, such as model choice and prediction from frequentist and Bayesian perspectives. This revised edition of the book “Applied Statistical Inference” has been expanded to include new material on Markov models for time series analysis. It also features a comprehensive appendix covering the prerequisites in probability theory, matrix algebra, mathematical calculus, and numerical analysis, and each chapter is complemented by exercises. The text is primarily intended for graduate statistics and biostatistics students with an interest in applications.
Caracteristici
Offers an easily accessible and comprehensive introduction to model-based statistical inference Provides real-world applications in biology, medicine and epidemiology with programming examples in the open-source software R Includes exercises at the end of each chapter, for which solutions are available on the website Includes a comprehensive appendix covering the necessary mathematical background and various R-programming tips