This book offers a holistic picture of rogue waves in integrable systems. Rogue waves are a rare but extreme phenomenon that occur most famously in water, but also in other diverse contexts such as plasmas, optical fibers and Bose-Einstein condensates where, despite the seemingly disparate settings, a common theoretical basis exists. This book presents the physical derivations of the underlying integrable nonlinear partial differential equations, derives the explicit and compact rogue wave solutions in these integrable systems, and analyzes rogue wave patterns that arise in these solutions, for many integrable systems and in multiple physical contexts. Striking a balance between theory and experiment, the book also surveys recent experimental insights into rogue waves in water, optical fibers, plasma, and Bose-Einstein condensates. In taking integrable nonlinear wave systems as a starting point, this book will be of interest to a broad cross section of researchers and graduate students in physics and applied mathematics who encounter nonlinear waves.

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This book presents the physical derivations of the underlying integrable nonlinear partial differential equations, derives the explicit and compact rogue wave solutions in these integrable systems, and analyzes rogue wave patterns that arise in these solutions, for many integrable systems and in multiple physical contexts.
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Chapter 1. Physical derivation of integrable nonlinear wave equations.- Chapter 2. Rogue waves in integrable systems.- Chapter 3. Rogue wave patterns.- Chapter 4. Experiments on rogue waves.- Chapter 5. Related topics.

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This book offers a holistic picture of rogue waves in integrable systems. Rogue waves are a rare but extreme phenomenon that occur most famously in water, but also in other diverse contexts such as plasmas, optical fibers and Bose-Einstein condensates where, despite the seemingly disparate settings, a common theoretical basis exists. This book presents the physical derivations of the underlying integrable nonlinear partial differential equations, derives the explicit and compact rogue wave solutions in these integrable systems, and analyzes rogue wave patterns that arise in these solutions, for many integrable systems and in multiple physical contexts. Striking a balance between theory and experiment, the book also surveys recent experimental insights into rogue waves in water, optical fibers, plasma, and Bose-Einstein condensates. In taking integrable nonlinear wave systems as a starting point, this book will be of interest to a broad cross section of researchers and graduate students in physics and applied mathematics who encounter nonlinear waves.

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Provides a comprehensive coverage of rogue waves Presents the bilinear method, the most explicit and compact method of deriving general rogue waves Derives and analyzes rogue waves arising from many integrable equations along with experimental contexts
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Produktdetaljer

ISBN
9783031667923
Publisert
2024-10-22
Utgiver
Springer International Publishing AG
Høyde
235 mm
Bredde
155 mm
Aldersnivå
Research, P, 06
Språk
Product language
Engelsk
Format
Product format
Innbundet

Forfatter

Biografisk notat

Jianke Yang is Williams Professor of Mathematics at University of Vermont, USA. He is a Fellow of the Optical Society of America (now Optica) and a member of the Society for Industrial and Applied Mathematics. 
 

Bo Yang is Associate Professor of Mathematics at Ningbo University, China. He is a member of the Chinese Mathematical Society and his research focuses on nonlinear waves in integrable systems and their physical applications.