A Toolbox for Digital Twins: From Model-Based to Data-Driven brings together the mathematical and numerical frameworks needed for developing digital twins (DTs). Starting from the basics―probability, statistics, numerical methods, optimization, and machine learning―and moving on to data assimilation, inverse problems, and Bayesian uncertainty quantification, the book provides a comprehensive toolbox for DTs.
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Mark Asch is full professor of applied mathematics at Université de Picardie Jules Verne. His research deals with data assimilation, inverse problems, and their coupling with machine learning methods. Recent research includes acoustic monitoring of endangered whale species and optimal design of greener Li-ion batteries. For more than 30 years, he has taught applied statistics, machine learning, data assimilation, and numerical analysis, as well as consulted for industry. He has occupied posts at the Ministry of Research and Innovation, the ANR, and the CNRS, and recently spent two years on secondment in a very large multinational.
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