Causal Inference in Pharmaceutical Statistics: Chapman & Hall/CRC Biostatistics Series
Autor Yixin Fangen Limba Engleză Hardback – 24 iun 2024
Key Features:
- Causal inference book for clinical statisticians in the pharmaceutical industry
- Introductory level on the most important concepts and methods
- Align with FDA and ICH guidance documents
- Across different stages of clinical studies: plan, design, conduct, analysis, and interpretation
- Cover a variety of commonly used study designs
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Specificații
ISBN-13: 9781032560144
ISBN-10: 1032560142
Pagini: 246
Ilustrații: 56
Dimensiuni: 156 x 234 x 19 mm
Greutate: 0.52 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: 1032560142
Pagini: 246
Ilustrații: 56
Dimensiuni: 156 x 234 x 19 mm
Greutate: 0.52 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
Professional ReferenceCuprins
Preface
1. Introduction
2. Randomized Controlled Clinical Trials
3. Missing Data Handling
4. Intercurrent Events Handling
5. Longitudinal Studies
6. Real-World Evidence Studies
7. The Art of Estimation (I): M-estimation
8. The Art of Estimation (II): TMLE
9. The Art of Estimation (III): LTMLE
10. Sensitivity Analysis
11. A Roadmap for Causal Inference
12. Applications of the Roadmap
Bibliography
1. Introduction
2. Randomized Controlled Clinical Trials
3. Missing Data Handling
4. Intercurrent Events Handling
5. Longitudinal Studies
6. Real-World Evidence Studies
7. The Art of Estimation (I): M-estimation
8. The Art of Estimation (II): TMLE
9. The Art of Estimation (III): LTMLE
10. Sensitivity Analysis
11. A Roadmap for Causal Inference
12. Applications of the Roadmap
Bibliography
Notă biografică
Yixin Fang, Ph.D. is Director of Statistics and Research Fellow at AbbVie Inc. He obtained his Ph.D. in Statistics from Columbia University and is an experienced statistician and data scientist who has a history of working in both the biopharmaceutical industry and academia.
Recenzii
"This book can serve as a reference for experienced statisticians interested in extending their research to semiparametric efficiency theory and incorporating machine learning approaches into their causal methodology, as well as an introductory resource for graduate students in statistics, bio-statistics, or data science interested in causal inference and applications to pharmacy."
-Ashley L. Buchanan in the Journal of the American Statistical Association, July 2025.
-Ashley L. Buchanan in the Journal of the American Statistical Association, July 2025.
Descriere
Causal Inference in Pharmaceutical Statistics introduces the basic concepts and fundamental methods of causal inference relevant to pharmaceutical statistics. This book covers causal thinking for different types of commonly used study designs in the pharmaceutical industry.