Bayesian Adaptive Methods for Phase I Clinical Trials

Bayesian Adaptive Methods for Phase I Clinical Trials

Ruitao Lin , 林瑞涛
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2017 · 英語 · ペーパーバック
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説明

Ruitao Lin's dissertation delves into the innovative applications of Bayesian adaptive methods within the context of Phase I clinical trials. It provides a thorough exploration of how these statistical techniques can enhance the design and implementation of trials aimed at discovering optimal dosing strategies for new treatments. By integrating flexibility into the trial design, the work addresses the challenges of traditional methods, offering adaptive solutions that respond to real-time data.

Through meticulously crafted methodologies, Lin illustrates how Bayesian approaches can effectively balance patient safety with the need for expedited drug development. The research not only highlights the theoretical underpinnings of these adaptive methods but also presents practical frameworks for their application in clinical settings. This rigorous analysis positions the work as a significant contribution to the fields of biostatistics and clinical research.

With its focus on real-world implications and a commitment to advancing trial methodologies, this dissertation serves as an essential resource for researchers and practitioners striving to improve the efficiency and effectiveness of early-phase clinical trials. The insights provided within its pages reflect a deep understanding of both statistical principles and their application in the ever-evolving landscape of medical research.

本の詳細

形式 ペーパーバック
ページ数 166ページ
言語 英語
公開されました Jan 26, 2017
出版社 Open Dissertation Press
ISBN-10 1361043792
ISBN-13 9781361043790
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