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Theory of Time-Independent Perturbation: Part 3
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Related lectures (31)
Perturbation Theory: Time-Independent Part 1
Covers perturbation theory for time-independent cases, explaining non-degenerate scenarios and energy level perturbations.
Introduction to Convexity
Introduces the key concepts of convexity and its applications in different fields.
Hartree-Fock Equations for N Fermions
Discusses the minimization of the Hartree-Fock functional for N fermions and the variational principle in quantum physics.
The Role of Symmetries
Delves into symmetries in physics, covering group theory, perturbation, and quantification.
Hartree-Fock Equations for N Fermions
Explores Hartree-Fock equations, variational principles, excited states, and quantum physics concepts.
Variational Principle: Quantum Physics II
Covers the variational principle in quantum physics for approximating energy levels.
Curved Space-Time
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The Importance of Theory
Emphasizes the importance of theory in academic research and its impact on shaping research outcomes.
Conformal Field Theory: Generators and Commutation Relations
Covers the definition of generators of the conformal group and the application of Wick's theorem.
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Turbulence Theory
Explores turbulence theory, covering key hypotheses, challenges, and open questions in the field, including the famous analogy of turbulence research to an alpine expedition.
Natural Transformations: Functors and Categories
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Explores functors, natural transformations, and the theory of groups, emphasizing the importance of comparisons and structure preservation.
Active Learning Session: Group Theory
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Explores active learning in Group Theory, focusing on products, coproducts, adjunctions, and natural transformations.
Active Learning: Group Theory
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Explores adjoint functors, points fixes, orbits, and non-trivial actions in group theory.
Equivalences of Categories
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Explores examples of natural transformations, equivalence of categories, and adjunction with specific instances involving Un.
Homotopical Algebra
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Covers the theory of groups and homotopical algebra, emphasizing natural transformations, identities, and isomorphism of categories.
Covalent Bonding: Orbital Stability
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Explores covalent bonding stability and orbital properties in molecules like H₂ and He.
Group Theory: Adjoint Functors and G-sets
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Explores adjunction between functors, composition of applications, G-equivariance, and natural transformations in G-sets.
Linear Applications and Simple Objects
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Covers the bijection between linear applications from L(X) to V and applications from X to U(V).
Implicit Functions: Introduction and Examples
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Explores implicit functions through examples and applications, covering differentiation and functions defined implicitly.
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