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Lecture
Factorisation QR: Gram-Schmidt Process
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Related lectures (44)
QR Factorization: Least Squares System Resolution
MOOC: Linear Algebra (Part 3)
Covers the QR factorization method applied to solving a system of linear equations in the least squares sense.
Linear Algebra: Orthogonal Projection and QR Factorization
Explores Gram-Schmidt process, orthogonal projection, QR factorization, and least squares solutions for linear systems.
Linear Algebra: Matrix Representation
Explores linear applications in R² and matrix representation, including basis, operations, and geometric interpretation of transformations.
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Singular Value Decomposition
Explores Singular Value Decomposition, low-rank approximation, fundamental subspaces, and matrix norms.
Singular Value Decomposition: Example
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Explains the step-by-step process of finding the singular value decomposition of a matrix.
Least Squares Solutions
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Explains the concept of least squares solutions and their application in finding the closest solution to a system of equations.
Singular Value Decomposition: Applications and Interpretation
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Explains the construction of U, verification of results, and interpretation of SVD in matrix decomposition.
Singular Value Decomposition: Orthogonal Vectors and Matrix Decomposition
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Explains Singular Value Decomposition, focusing on orthogonal vectors and matrix decomposition.
Gram-Schmidt Algorithm: Orthogonalization and QR Factorization
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Introduces the Gram-Schmidt algorithm, QR factorization, and the method of least squares.
Matrix Equivalence Theorems
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Explores matrix equivalence theorems for systems of equations and least squares solutions.
Orthogonal Families and Projections
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Introduces orthogonal families, orthonormal bases, and projections in linear algebra.
Singular Value Decomposition
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Covers the Singular Value Decomposition (SVD) of a matrix and its applications.
Orthogonality and Projection
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Covers orthogonality, scalar products, orthogonal bases, and vector projection in detail.
Singular Value Decomposition
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Covers the Singular Value Decomposition theorem and its applications in practice.
Orthogonal Projection Theorems
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Covers the theorems related to orthogonal projection and orthonormal bases.
Orthogonal Families and Projections
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Explains orthogonal families, bases, and projections in vector spaces.
Singular Value Decomposition
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Covers the Singular Value Decomposition theorem and its application in decomposing matrices.
Singular Value Decomposition (SVD)
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Covers the Singular Value Decomposition (SVD) in detail, including properties of matrices and system linearity.
Matrix Operations: LU Factorization & Linear Independence
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Covers LU factorization, linear independence, and matrix equations.
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