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Computational Epidemiology : Data-Driven Modeling of COVID-19

Computational Epidemiology : Data-Driven Modeling of COVID-19

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ISBN

9783030828899

Authors

Publisher

Springer

Published Date

2021

Language

‎English

Page Count

2100

Size

24 MB

by Ellen Kuhl (Author) This innovative textbook brings together modern concepts in mathematical epidemiology, computational modeling, physics-based simulation, data science, and machine learning to understand one of the most significant problems of our current time, the outbreak dynamics and outbreak control of COVID-19. It teaches the relevant tools to model and simulate nonlinear dynamic systems in view of a global pandemic that is acutely relevant to human health. If you are a student, educator, basic scientist, or medical researcher in the natural or social sciences, or someone passionate about big data and human health: This book is for you! It serves as a textbook for undergraduates and graduate students, and a monograph for researchers and scientists. It can be used in the mathematical life sciences suitable for courses in applied mathematics, biomedical engineering, biostatistics, computer science, data science, epidemiology, health sciences, machine learning, mathematical biology, numerical methods, and probabilistic programming. This book is a personal reflection on the role of data-driven modeling during the COVID-19 pandemic, motivated by the curiosity to understand it. Product Details Publisher: Springer International Publishing; September 22, 2021 Language: English ISBN: 978-3030828899 ISBN: 9783030828899 eText ISBN: 9783030828905

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