Modeling Change and Uncertainty: Machine Learning and Other Techniques

Modeling Change and Uncertainty: Machine Learning and Other Techniques

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Jul 20, 2022 · Englisch · Gebundene Ausgabe (446 Seiten)
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Buchdetails

Format Gebundene Ausgabe
Seiten 446
Sprache Englisch
Veröffentlicht Jul 20, 2022
Verlag Chapman & Hall/CRC
Ausgabe 1
ISBN-10 1032062371
ISBN-13 9781032062372

Beschreibung

This engaging textbook offers a comprehensive exploration of modeling change and uncertainty through advanced mathematical techniques. It skillfully balances theoretical concepts with practical applications, making it accessible for both students and professionals who seek to understand the intricacies of machine learning and its role in modern mathematics.

The authors delve into various methods, highlighting how machine learning can be leveraged to analyze and predict complex systems. Through detailed examples and exercises, readers are encouraged to develop their analytical skills and apply these techniques to real-world scenarios, fostering a deeper understanding of uncertainty in mathematical modeling.

Furthermore, the book addresses important topics such as algorithms, statistical analysis, and their implications in diverse fields. By emphasizing a hands-on approach, it invites readers to engage actively with the content, sharpening their ability to solve problems that arise from unpredictable variables.

With its clear explanations and structured layout, this textbook serves as an invaluable resource for those aiming to enhance their knowledge in mathematics and its applications, ultimately equipping them to tackle the challenges of an ever-changing world.
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