Exercises in Applied Mathematics
With a View toward Information Theory, Machine Learning, Wavelets, and Statistical Physics
Springer Nature Switzerland
ISBN 978-3-031-51822-5
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eBook. PDF
2024
IX, 694 p. 5 illus..
In englischer Sprache
Umfang: 694 S.
Verlag: Springer Nature Switzerland
ISBN: 978-3-031-51822-5
Weiterführende bibliografische Daten
Das Werk ist Teil der Reihe: Chapman Mathematical Notes
Produktbeschreibung
This text presents a collection of mathematical exercises with the aim of guiding readers to study topics in statistical physics, equilibrium thermodynamics, information theory, and their various connections. It explores essential tools from linear algebra, elementary functional analysis, and probability theory in detail and demonstrates their applications in topics such as entropy, machine learning, error-correcting codes, and quantum channels. The theory of communication and signal theory are also in the background, and many exercises have been chosen from the theory of wavelets and machine learning. Exercises are selected from a number of different domains, both theoretical and more applied. Notes and other remarks provide motivation for the exercises, and hints and full solutions are given for many. For senior undergraduate and beginning graduate students majoring in mathematics, physics, or engineering, this text will serve as a valuable guide as they move on to more advanced work.
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