

Softcover ISBN: | 978-1-4704-7552-9 |
Product Code: | SURV/288 |
List Price: | $135.00 |
MAA Member Price: | $121.50 |
AMS Member Price: | $108.00 |
eBook ISBN: | 978-1-4704-8080-6 |
Product Code: | SURV/288.E |
List Price: | $125.00 |
MAA Member Price: | $112.50 |
AMS Member Price: | $100.00 |
Softcover ISBN: | 978-1-4704-7552-9 |
eBook: ISBN: | 978-1-4704-8080-6 |
Product Code: | SURV/288.B |
List Price: | $260.00 $197.50 |
MAA Member Price: | $234.00 $177.75 |
AMS Member Price: | $208.00 $158.00 |


Softcover ISBN: | 978-1-4704-7552-9 |
Product Code: | SURV/288 |
List Price: | $135.00 |
MAA Member Price: | $121.50 |
AMS Member Price: | $108.00 |
eBook ISBN: | 978-1-4704-8080-6 |
Product Code: | SURV/288.E |
List Price: | $125.00 |
MAA Member Price: | $112.50 |
AMS Member Price: | $100.00 |
Softcover ISBN: | 978-1-4704-7552-9 |
eBook ISBN: | 978-1-4704-8080-6 |
Product Code: | SURV/288.B |
List Price: | $260.00 $197.50 |
MAA Member Price: | $234.00 $177.75 |
AMS Member Price: | $208.00 $158.00 |
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Book DetailsMathematical Surveys and MonographsVolume: 288; 2025; Estimated: 380 ppMSC: Primary 37; 35
This monograph offers a comprehensive and accessible treatment of both classical and modern approaches to the stability analysis of nonlinear waves in Hamiltonian systems. Starting with a review of stability of equilibrium points and periodic orbits in finite-dimensional systems, it advances to the infinite-dimensional setting, addressing orbital stability and linearization techniques for spatially decaying and spatially periodic solutions of nonlinear dispersive wave equations, such as the nonlinear Schrödinger, Korteweg–de Vries, and Camassa–Holm equations. The book rigorously develops foundational tools, such as the Vakhitov–Kolokolov slope criterion, the Grillakis–Shatah–Strauss approach, and the integrability methods, but it also introduces innovative adaptations of the stability analysis in problems where conventional methods fall short, including instability of peaked traveling waves and stability of solitary waves over nonzero backgrounds. Aimed at graduate students and researchers, this monograph consolidates decades of research and presents recent advancements in the field, making it an indispensable resource for those studying the stability of nonlinear waves in Hamiltonian systems.
ReadershipGraduate students and researchers interested in teaching the theory of nonlinear waves, in particular, their stability.
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Table of Contents
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Stability in finite-dimensional systems
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Stability of solitary waves
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Stability of periodic waves
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Orbital stability in integrable Hamiltonian systems
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Spectral stability in integrable Hamiltonian systems
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Stability of peaked waves
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Stability of domain walls and black solitons
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Jacobi elliptic functions and integrals
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Spectral theory for linear operators
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Bibliography
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Index
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This monograph offers a comprehensive and accessible treatment of both classical and modern approaches to the stability analysis of nonlinear waves in Hamiltonian systems. Starting with a review of stability of equilibrium points and periodic orbits in finite-dimensional systems, it advances to the infinite-dimensional setting, addressing orbital stability and linearization techniques for spatially decaying and spatially periodic solutions of nonlinear dispersive wave equations, such as the nonlinear Schrödinger, Korteweg–de Vries, and Camassa–Holm equations. The book rigorously develops foundational tools, such as the Vakhitov–Kolokolov slope criterion, the Grillakis–Shatah–Strauss approach, and the integrability methods, but it also introduces innovative adaptations of the stability analysis in problems where conventional methods fall short, including instability of peaked traveling waves and stability of solitary waves over nonzero backgrounds. Aimed at graduate students and researchers, this monograph consolidates decades of research and presents recent advancements in the field, making it an indispensable resource for those studying the stability of nonlinear waves in Hamiltonian systems.
Graduate students and researchers interested in teaching the theory of nonlinear waves, in particular, their stability.
-
Stability in finite-dimensional systems
-
Stability of solitary waves
-
Stability of periodic waves
-
Orbital stability in integrable Hamiltonian systems
-
Spectral stability in integrable Hamiltonian systems
-
Stability of peaked waves
-
Stability of domain walls and black solitons
-
Jacobi elliptic functions and integrals
-
Spectral theory for linear operators
-
Bibliography
-
Index