Likelihood Methods in Survival Analysis: With R Examples: Chapman & Hall/CRC Biostatistics Series
Autor Jun Ma, Annabel Webb, Harold Malcolm Hudsonen Limba Engleză Hardback – oct 2024
Likelihood Methods in Survival Analysis: With R Examples explores these challenges and provides practical solutions. It not only covers conventional Cox models where survival times are subject to interval censoring, but also extends to more complicated models, such as stratified Cox models, extended Cox models where time-varying covariates are present, mixture cure Cox models, and Cox models with dependent right censoring. The book also discusses non-Cox models, particularly the additive hazards model and parametric log-linear models for bivariate survival times where there is dependence among competing outcomes.
Features
- Provides a broad and accessible overview of likelihood methods in survival analysis
- Covers a wide range of data types and models, from the semi-parametric Cox model with interval censoring through to parametric survival models for competing risks
- Includes many examples using real data to illustrate the methods
- Includes integrated R code for implementation of the methods
- Supplemented by a GitHub repository with datasets and R code
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Specificații
ISBN-13: 9780815362845
ISBN-10: 0815362846
Pagini: 400
Ilustrații: 76
Dimensiuni: 156 x 234 mm
Greutate: 0.9 kg
Ediția:1
Editura: CRC Press
Colecția Chapman and Hall/CRC
Seria Chapman & Hall/CRC Biostatistics Series
Locul publicării:Boca Raton, United States
ISBN-10: 0815362846
Pagini: 400
Ilustrații: 76
Dimensiuni: 156 x 234 mm
Greutate: 0.9 kg
Ediția:1
Editura: CRC Press
Colecția Chapman and Hall/CRC
Seria Chapman & Hall/CRC Biostatistics Series
Locul publicării:Boca Raton, United States
Public țintă
Academic and PostgraduateCuprins
1. Introduction. 2. Semi-parametric Cox Model with Interval Censoring. 3. Extension to Include Truncation. 4. Extension to Include A Cured Fraction. 5. Stratified Cox models under interval censoring. 6. Cox Models with Time-Varying Covariates under Right Censoring. 7. Copula Cox Models for Dependent Right Censoring. 8. Additive hazards model. 9. Parametric Survival Models for Competing Risks Data.
Notă biografică
Jun Ma, School of Mathematical and Physical Sciences, Macquarie University, North Ryde, Australia
Annabel Webb, School of Mathematical and Physical Sciences, Macquarie University, North Ryde, Australia
Malcolm Hudson, School of Mathematical and Physical Sciences, Macquarie University & NHMRC Clinical Trial Centre, University of Sydney, Sydney, Australia
Annabel Webb, School of Mathematical and Physical Sciences, Macquarie University, North Ryde, Australia
Malcolm Hudson, School of Mathematical and Physical Sciences, Macquarie University & NHMRC Clinical Trial Centre, University of Sydney, Sydney, Australia
Recenzii
“[This book] provides a valuable addition to the survival analysis literature…Each [method] is developed with sufficient methodological background and accompanied by examples, R code, and interpretive guidance…The balance between technical development and practical application is well maintained, with datasets and figures illustrating the methods in real-world analyses. Each chapter concludes with exercises and bibliographic notes that guide readers to further developments...As both a researcher and collaborator, I place high value on resources that balance methodology, computation, and application. This monograph strikes that balance. Its likelihood perspective sets it apart from standard texts, its integration of R code demystifies the methods, and its practical guidance equips readers to tackle real problems. For these reasons, I would use it as a reference in my own teaching and recommend it to colleagues and collaborators.”
~ Lu Mao, University of Wisconsin-Madison, in Journal of the American Statistical Association, January 2026
~ Lu Mao, University of Wisconsin-Madison, in Journal of the American Statistical Association, January 2026
Descriere
Provides an overview of the methodology and applications of likelihood methods in survival analysis. It covers all the important topics, including competing risks and joint models. It includes lots of examples to illustrate the methods, and R code for their implementation. A supplementary R package includes all code and data.