Does This Treatment Cause That Outcome? : The Science of Estimating a Treatment Effect and Why It Matters
Book Details
Format
Hardback or Cased Book
Book Series
Chapman & Hall/CRC Biostatistics Series
ISBN-10
1041049749
ISBN-13
9781041049746
Publisher
Taylor & Francis Ltd
Imprint
CRC Press
Country of Manufacture
GB
Country of Publication
GB
Publication Date
Jul 15th, 2026
Print length
260 Pages
Weight
680 grams
Ksh 27,000.00
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Does This Treatment Cause That Outcome?: The Science of Estimating a Treatment Effect and Why It Matters is an engaging and insightful exploration of cause-and-effect relationships in clinical research. It begins with the foundational principles of causal inference, traces the historical evolution of randomized controlled trials.
This book is an engaging and insightful exploration of cause-and-effect relationships in clinical research. It begins with the foundational principles of causal inference, traces the historical evolution of randomized controlled trials, and provides a clear, comprehensive explanation of the essential elements of ICH E9(R1). The central themes of ICH E9(R1) – defining the clinical question of primary importance and establishing the estimand to answer that question – are seamlessly integrated throughout the narrative. A standout feature is the introduction of the Tripartite Estimand Approach, a groundbreaking framework derived from patient and physician perspectives. This approach addresses the critical questions and answers needed for informed prescribing decisions. The book also outlines a stepwise, logical process for implementing the estimand framework, offering practical guidance for clinicians, statisticians, and other professionals involved in clinical drug development. By simplifying complex concepts, this book aims to make the estimand framework more accessible and actionable across disciplines. While aligned with the principles of ICH E9(R1), the book goes beyond the established guidelines, presenting bold new ideas and perspectives that enhance the understanding of estimands. Key Features:The importance of randomization and complete data for cause-and-effect inferenceA novel definition of incomplete dataA focus on the two fundamental clinical treatment effect questions underlying an estimandA comprehensive definition of treatment attributes, including a new attribute describing the treatment effectA simplified approach to intercurrent events (IEs)A systematic process for defining an estimand, building on estimand attributes and strategies for handling IEsNumerous examples spanning diverse disease states and study designsAnd much more!Written in a conversational style with minimal mathematical notation, Does This Treatment Cause That Outcome?: The Science of Estimating a Treatment Effect and Why It Matters is designed to be accessible to clinicians and non-statistical professionals, making it an invaluable resource for anyone involved in clinical drug development. Whether you are a seasoned statistician or new to the field, this book provides the tools and insights needed to navigate the estimand framework with confidence and clarity.
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