Applied Mathematics for the Analysis of Biomedical Data
eBook - PDF

Applied Mathematics for the Analysis of Biomedical Data

Models, Methods, and MATLAB

  1. English
  2. PDF
  3. Available on iOS & Android
eBook - PDF

Applied Mathematics for the Analysis of Biomedical Data

Models, Methods, and MATLAB

About this book

Features a practical approach to the analysis of biomedical data via mathematical methods and provides a MATLABĀ® toolbox for the collection, visualization, and evaluation of experimental and real-life data

Applied Mathematics for the Analysis of Biomedical Data: Models, Methods, and MATLABĀ® presents a practical approach to the task that biological scientists face when analyzing data. The primary focus is on the application of mathematical models and scientific computing methods to provide insight into the behavior of biological systems. The author draws upon his experience in academia, industry, and government–sponsored research as well as his expertise in MATLAB to produce a suite of computer programs with applications in epidemiology, machine learning, and biostatistics. These models are derived from real–world data and concerns. Among the topics included are the spread of infectious disease (HIV/AIDS) through a population, statistical pattern recognition methods to determine the presence of disease in a diagnostic sample, and the fundamentals of hypothesis testing.

In addition, the author uses his professional experiences to present unique case studies whose analyses provide detailed insights into biological systems and the problems inherent in their examination. The book contains a well-developed and tested set of MATLAB functions that act as a general toolbox for practitioners of quantitative biology and biostatistics. This combination of MATLAB functions and practical tips amplifies the book's technical merit and value to industry professionals.

Through numerous examples and sample code blocks, the book provides readers with illustrations of MATLAB programming. Moreover, the associated toolbox permits readers to engage in the process of data analysis without needing to delve deeply into the mathematical theory. This gives an accessible view of the material for readers with varied backgrounds. As a result, the book provides a streamlined framework for the development of mathematical models, algorithms, and the corresponding computer code.

In addition, the book features:

  • Real–world computational procedures that can be readily applied to similar problems without the need for keen mathematical acumen
  • Clear delineation of topics to accelerate access to data analysis
  • Access to a book companion website containing the MATLAB toolbox created for this book, as well as a Solutions Manual with solutions to selected exercises

Applied Mathematics for the Analysis of Biomedical Data: Models, Methods, and MATLABĀ® is an excellent textbook for students in mathematics, biostatistics, the life and social sciences, and quantitative, computational, and mathematical biology. This book is also an ideal reference for industrial scientists, biostatisticians, product development scientists, and practitioners who use mathematical models of biological systems in biomedical research, medical device development, and pharmaceutical submissions.

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Yes, you can access Applied Mathematics for the Analysis of Biomedical Data by Peter J. Costa in PDF and/or ePUB format, as well as other popular books in Mathematics & Probability & Statistics. We have over one million books available in our catalogue for you to explore.

Information

Publisher
Wiley
Year
2017
Print ISBN
9781119269496
eBook ISBN
9781119269502

Table of contents

  1. Applied Mathematics for the Analysis of Biomedical Data
  2. In Dedication
  3. In Memoriam
  4. Contents
  5. Preface
  6. Acknowledgements
  7. About the companion website
  8. Introduction
  9. 1 Data
  10. 2 Some Examples
  11. 3 Seir Models
  12. 4 Statistical Pattern Recognition and Classification
  13. 5 Biostatistics and Hypothesis Testing
  14. 6 Clustered Data and Analysis of Variance
  15. Appendix: Mathematical Matters
  16. Glossary of MATLAB Functions
  17. Index
  18. EULA