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Linear Algebra and Its Applications ,5th GE Sungkyunkwan University 요약정보 및 구매

상품 선택옵션 0 개, 추가옵션 0 개

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지은이 Lay. David C.
발행년도 2019-02-19
판수 5판
페이지 559
ISBN 9789813135239
도서상태 구매가능
판매가격 49,000원
포인트 0점
배송비결제 주문시 결제

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  • Linear Algebra and Its Applications ,5th GE Sungkyunkwan University
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관련상품

  • 1. Linear Equations in Linear Algebra
    Introductory Example: Linear Models in Economics and Engineering
    1.1 Systems of Linear Equations
    1.2 Row Reduction and Echelon Forms
    1.3 Vector Equations
    1.4 The Matrix Equation Ax = b
    1.5 Solution Sets of Linear Systems
    1.6 Applications of Linear Systems
    1.7 Linear Independence
    1.8 Introduction to Linear Transformations
    1.9 The Matrix of a Linear Transformation
    1.10 Linear Models in Business, Science, and Engineering
    Supplementary Exercises

    2. Matrix Algebra
    Introductory Example: Computer Models in Aircraft Design
    2.1 Matrix Operations
    2.2 The Inverse of a Matrix
    2.3 Characterizations of Invertible Matrices
    2.4 Partitioned Matrices
    2.5 Matrix Factorizations
    2.6 The Leontief Input뻆utput Model
    2.7 Applications to Computer Graphics
    Supplementary Exercises

    3. Determinants
    Introductory Example: Random Paths and Distortion
    3.1 Introduction to Determinants
    3.2 Properties of Determinants
    3.3 Cramer뭩 Rule, Volume, and Linear Transformations
    Supplementary Exercises

    4. Vector Spaces
    Introductory Example: Space Flight and Control Systems
    4.1 Vector Spaces and Subspaces
    4.2 Null Spaces, Column Spaces, and Linear Transformations
    4.3 Linearly Independent Sets; Bases
    4.4 Coordinate Systems
    4.5 The Dimension of a Vector Space
    4.6 Rank
    4.7 Change of Basis
    4.8 Applications to Difference Equations
    4.9 Applications to Markov Chains
    Supplementary Exercises

    5. Eigenvalues and Eigenvectors
    Introductory Example: Dynamical Systems and Spotted Owls
    5.1 Eigenvectors and Eigenvalues
    5.2 The Characteristic Equation
    5.3 Diagonalization
    5.4 Eigenvectors and Linear Transformations
    5.5 Complex Eigenvalues
    5.6 Discrete Dynamical Systems
    5.7 Applications to Differential Equations
    Supplementary Exercises


    6. Orthogonality and Least Squares
    Introductory Example: The North American Datum and GPS Navigation
    6.1 Inner Product, Length, and Orthogonality
    6.2 Orthogonal Sets
    6.3 Orthogonal Projections
    6.4 The Gram뻊chmidt Process
    6.5 Least-Squares Problems
    6.6 Applications to Linear Models
    6.7 Inner Product Spaces
    6.8 Applications of Inner Product Spaces
    Supplementary Exercises


    7. Symmetric Matrices and Quadratic Forms
    Introductory Example: Multichannel Image Processing
    7.1 Diagonalization of Symmetric Matrices
    7.2 Quadratic Forms
    7.3 Constrained Optimization
    7.4 The Singular Value Decomposition
    7.5 Applications to Image Processing and Statistics
    Supplementary Exercises


    7. Numerical Linear Algebra
    7.1 Floationg-Point Numbers
    7.2 Gaussian Elimination
    7.3 Pivoting Strategies
    7.4 Matrix Norms and Condition Numbers
    7.5 Orthogonal Transformations
    7.6 The Eigenvalue Problem
    7.7 Least Squares problems
    Exercises

    Appendices
    A. Uniqueness of the Reduced Echelon Form
    B. Complex Numbers

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  • Linear Algebra and Its Applications ,5th GE Sungkyunkwan University
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