Data Modeling

From Physical Processes to Machine Learning

Paperback Engels 2026 9789819575916
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Samenvatting

This book presents the fundamental theories, concepts, and methods of data modeling, bridging physical processes with machine learning predictions. It covers topics such as data collection, storage, analysis, and practical applications of machine learning.

The textbook is designed for first-semester undergraduate students. The material introduces essential concepts in a clear and approachable way, offering a foundation in data-driven decision-making and predictive modeling.

The content is aligned with the lectures of Prof. Dr. Elmar Rueckert and will be expanded further during the lecture series, making it a comprehensive guide to understanding the world of data and its applications.

Structure of the Book: The chapters cover:

• Fundamentals of Data Modeling

• Processes and Data Granularity

• Sensors and Data

• Information Theory

• Data Analysis

• Machine Learning: Data Organization

• Machine Learning: Selected Applications

To support hands-on learning, the book also includes interactive Jupyter Notebooks that illustrate key concepts through practical exercises.

Specificaties

ISBN13:9789819575916
Taal:Engels
Bindwijze:Paperback
Aantal pagina's:114
Uitgever:Springer Nature Singapore

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Inhoudsopgave

"Chapter1.Introduction to Data Modeling".- "Chapter2.Processes and Data Granularity".- "Chapter3.Sensors".- "Chapter4.Data".- "Chapter5.Information Theory".- "Chapter6.Analyses".- "Chapter7.Data Organization".- "Chapter8.Selected Machine Learning Applications".

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€ 48,99
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