Introduction to Tensor Network Methods
From Many-Body Quantum Systems to Machine Learning
2., Second Edition 2026
Springer
ISBN 978-3-032-17634-9
Standardpreis
Bibliografische Daten
Fachbuch
Buch. Hardcover
2., Second Edition 2026. 2026
65 Farbabbildungen.
Umfang: xx, 330 S.
Format (B x L): 15,5 x 23,5 cm
Verlag: Springer
ISBN: 978-3-032-17634-9
Weiterführende bibliografische Daten
Das Werk ist Teil der Reihe: Graduate Texts in Physics
Produktbeschreibung
This textbook gives an in-depth overview on the numerical simulation technique of tensor networks (TNs) with hands-on technical descriptions, work exercises and computation results. TNs have originally been developed for solving the quantum many-body problem and simulating quantum systems on a classical computer. However, as a mathematical tool, TNs have emerged as powerful theoretical and numerical versatile tools to attack more generally hard mathematical problems. In particular, their range application has expanded to combinatorial optimization and even as an alternative tool for machine learning in the field of artificial intelligence. This textbook introduces the reader to the field, describing the main principles and core mathematical concepts in the light of its application in quantum physics and, along the way, touches on the application of TNs to problems from various fields, ranging from low-energy to high-energy physics up to medical physics and machine learning.
It is designed for graduate courses in computational physics, where a student learns how to write a tensor network program and can begin to explore the physics of many-body quantum systems.
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