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Lecture
Multilinear Forms: Notation & Applications
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Related lectures (31)
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Covariant Derivatives and Christoffel Symbols
Covers accelerated and inertial coordinate systems, Jacobian, volume elements, covariant derivatives, Christoffel symbols, Lorentz case, and metric tensor properties.
Orthogonality and Projection
Covers orthogonality, scalar products, orthogonal bases, and vector projection in detail.
Elements of Lie Groups and Algebras
Explores the transformation of vectors and tensors in quantum physics, emphasizing Lie groups and algebras.
Postulates of Quantum Mechanics
Explores the postulates of Quantum Mechanics, focusing on states, time evolution, and measurement.
Vector Transformation and Tense
Explores the transformation of vectors and tensors, including rotations and representations in quantum physics.
Singular Vectors in Liouville CFT: Representation Theory Insights
Covers singular vectors in Liouville CFT, focusing on representation theory and their implications in mathematical physics.
Tensors and Lorentz Transformations
Covers tensors, Lorentz transformations, and electrodynamics in relativistic notation.
Spherical Tensors and Wigner-Eckart Theorem
Covers the transformation of vectors and tensors in quantum physics.
Coordinate Systems and Applications
Covers the definition and use of coordinate systems and applications in bases and linear equations.
Linear Algebra: Linear Dependence and Independence
Explores linear dependence and independence of vectors in geometric spaces.