University Sétif 1 FERHAT ABBAS Faculty of Sciences
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Auteur DITTRICH,Walter |
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Titre : Classical and quantum dynamics from classical paths to path integrals T.3 Type de document : texte imprimé Auteurs : DITTRICH,Walter ; REUTER,Martin Editeur : Berlin : Springer Année de publication : 2001 Importance : 1 vol. (385 p.) Format : 24 cm ISBN/ISSN/EAN : 978-3-540-42066-8 Catégories : Physique Mots-clés : Théorie quantique
Théories non linéaires
Systèmes hamiltoniens
Intégrales de cheminIndex. décimale : 530.12 Mécanique quantique Note de contenu : 1. Introduction
The Action Principles in Mechanics
The Action Principle in Classical Electrodynamics
Application of the Action Principles
Jacobi Fields, Conjugate Points
Canonical Transformations
The Hamilton—Jacobi Equation
Action-Angle Variables
The Adiabatic Invariance of the Action Variables
Time-Independent Canonical Perturbation Theory
Canonical Perturbation Theory with Several Degrees of Freedom
Canonical Adiabatic Theory
Removal of Resonances
Superconvergent Perturbation Theory, KAM Theorem (Introduction)
Poincaré Surface of Sections, Mappings
The KAM Theorem
Fundamental Principles of Quantum Mechanics
Functional Derivative Approach
Examples for Calculating Path Integrals
Direct Evaluation of Path Integrals
Linear Oscillator with Time-Dependent Frequency
Propagators for Particles in an External Magnetic Field
Simple Applications of Propagator Functions
The WKB Approximation
Computing the Trace
Partition Function for the Harmonic Oscillator
Introduction to Homotopy Theory
Classical Chern—Simons Mechanics
Semiclassical Quantization
The “Maslov Anomaly” for the Harmonic Oscillator
Maslov Anomaly and the Morse Index Theorem
Berry’s Phase
Classical Analogues to Berry’s Phase
Berry Phase and Parametric Harmonic Oscillator
Topological Phases in Planar Electrodynamics
Classical and quantum dynamics from classical paths to path integrals T.3 [texte imprimé] / DITTRICH,Walter ; REUTER,Martin . - Berlin : Springer, 2001 . - 1 vol. (385 p.) ; 24 cm.
ISBN : 978-3-540-42066-8
Catégories : Physique Mots-clés : Théorie quantique
Théories non linéaires
Systèmes hamiltoniens
Intégrales de cheminIndex. décimale : 530.12 Mécanique quantique Note de contenu : 1. Introduction
The Action Principles in Mechanics
The Action Principle in Classical Electrodynamics
Application of the Action Principles
Jacobi Fields, Conjugate Points
Canonical Transformations
The Hamilton—Jacobi Equation
Action-Angle Variables
The Adiabatic Invariance of the Action Variables
Time-Independent Canonical Perturbation Theory
Canonical Perturbation Theory with Several Degrees of Freedom
Canonical Adiabatic Theory
Removal of Resonances
Superconvergent Perturbation Theory, KAM Theorem (Introduction)
Poincaré Surface of Sections, Mappings
The KAM Theorem
Fundamental Principles of Quantum Mechanics
Functional Derivative Approach
Examples for Calculating Path Integrals
Direct Evaluation of Path Integrals
Linear Oscillator with Time-Dependent Frequency
Propagators for Particles in an External Magnetic Field
Simple Applications of Propagator Functions
The WKB Approximation
Computing the Trace
Partition Function for the Harmonic Oscillator
Introduction to Homotopy Theory
Classical Chern—Simons Mechanics
Semiclassical Quantization
The “Maslov Anomaly” for the Harmonic Oscillator
Maslov Anomaly and the Morse Index Theorem
Berry’s Phase
Classical Analogues to Berry’s Phase
Berry Phase and Parametric Harmonic Oscillator
Topological Phases in Planar Electrodynamics
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