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Erica E. M. Moodie | Akateeminen Kirjakauppa

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Statistical Methods for Dynamic Treatment Regimes : Reinforcement Learning, Causal Inference, and Personalized Medicine
Bibhas Chakraborty; Erica E.M. Moodie
Springer (2013)
Kovakantinen kirja
107,50
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Statistical Methods for Dynamic Treatment Regimes : Reinforcement Learning, Causal Inference, and Personalized Medicine
Bibhas Chakraborty; Erica E.M. Moodie
Springer (2015)
Pehmeäkantinen kirja
78,60
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ostoskoriin kpl
Siirry koriin
Adaptive Treatment Strategies in Practice - Planning Trials and Analyzing Data for Personalized Medicine
Michael R. Kosorok; Erica E. M. Moodie
Society for Industrial & Applied Mathematics,U.S. (2015)
Pehmeäkantinen kirja
96,50
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ostoskoriin kpl
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Handbook of Statistical Methods for Precision Medicine
Eric Laber; Bibhas Chakraborty; Erica E. M. Moodie; Tianxi Cai; Mark van der Laan
Taylor & Francis Ltd (2024)
Kovakantinen kirja
231,50
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ostoskoriin kpl
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Statistical Methods for Dynamic Treatment Regimes : Reinforcement Learning, Causal Inference, and Personalized Medicine
107,50 €
Springer
Sivumäärä: 204 sivua
Asu: Kovakantinen kirja
Painos: 2013
Julkaisuvuosi: 2013, 23.07.2013 (lisätietoa)
Kieli: Englanti
Tuotesarja: Statistics for Biology and Health 76

Statistical Methods for Dynamic Treatment Regimes shares state of the art of statistical methods developed to address questions of estimation and inference for dynamic treatment regimes, a branch of personalized medicine. This volume demonstrates these methods with their conceptual underpinnings and illustration through analysis of real and simulated data. These methods are immediately applicable to the practice of personalized medicine, which is a medical paradigm that emphasizes the systematic use of individual patient information to optimize patient health care. This is the first single source to provide an overview of methodology and results gathered from journals, proceedings, and technical reports with the goal of orienting researchers to the field. The first chapter establishes context for the statistical reader in the landscape of personalized medicine. Readers need only have familiarity with elementary calculus, linear algebra, and basic large-sample theory to use this text. Throughout the text, authors direct readers to available code or packages in different statistical languages to facilitate implementation. In cases where code does not already exist, the authors provide analytic approaches in sufficient detail that any researcher with knowledge of statistical programming could implement the methods from scratch. This will be an important volume for a wide range of researchers, including statisticians, epidemiologists, medical researchers, and machine learning researchers interested in medical applications. Advanced graduate students in statistics and biostatistics will also find material in Statistical Methods for Dynamic Treatment Regimes to be a critical part of their studies.



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Tilaustuote | Arvioimme, että tuote lähetetään meiltä noin 4-5 viikossa | Tilaa jouluksi viimeistään 27.11.2024
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Tampere
Statistical Methods for Dynamic Treatment Regimes : Reinforcement Learning, Causal Inference, and Personalized Medicine
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