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Biomarker Analysis in Clinical Trials with R

List Price: $63.99
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9781032242453
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  • Product Details

    Author:
    Nusrat Rabbee
    Format:
    Paperback
    Pages:
    228
    Publisher:
    CRC Press (December 13, 2021)
    Language:
    English
    ISBN-13:
    9781032242453
    Weight:
    16oz
    Dimensions:
    6.125" x 9.1875"
    File:
    TAYLORFRANCIS-TayFran_260513043736269-20260513.xml
    Folder:
    TAYLORFRANCIS
    List Price:
    $63.99
    Series:
    Chapman & Hall/CRC Biostatistics Series
    As low as:
    $60.79
    Publisher Identifier:
    P-CRC
    Discount Code:
    H
    Country of Origin:
    United States
    Pub Discount:
    30
    Imprint:
    Chapman and Hall/CRC
    Case Pack:
    1
  • Overview

    The world is awash in data. This volume of data will continue to increase. In the pharmaceutical industry, much of this data explosion has happened around biomarker data. Great statisticians are needed to derive understanding from these data. This book will guide you as you begin the journey into communicating, understanding and synthesizing biomarker data. -From the Foreword, Jared Christensen, Vice President, Biostatistics Early Clinical Development, Pfizer, Inc.

    Biomarker Analysis in Clinical Trials with R offers practical guidance to statisticians in the pharmaceutical industry on how to incorporate biomarker data analysis in clinical trial studies. The book discusses the appropriate statistical methods for evaluating pharmacodynamic, predictive and surrogate biomarkers for delivering increased value in the drug development process. The topic of combining multiple biomarkers to predict drug response using machine learning is covered. Featuring copious reproducible code and examples in R, the book helps students, researchers and biostatisticians get started in tackling the hard problems of designing and analyzing trials with biomarkers.

    Features:

    • Analysis of pharmacodynamic biomarkers for lending evidence target modulation.

    • Design and analysis of trials with a predictive biomarker.

    • Framework for analyzing surrogate biomarkers.

    • Methods for combining multiple biomarkers to predict treatment response.

    • Offers a biomarker statistical analysis plan.

    • R code, data and models are given for each part: including regression models for survival and longitudinal data, as well as statistical learning models, such as graphical models and penalized regression models.