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    文档作者:CCChen
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    Introduction to Pattern Recognition
    The applications of Pattern Recognition can be found everywhere.
    Examples include disease categorization, prediction of survival rates for
    patients of specific disease, fingerprint verification, face recognition,
    iris discrimination, chromosome shape discrimination, optical character
    recognition, texture discrimination, speech recognition, and etc. The
    design of a pattern recognition system should consider the application
    domain. A universally best pattern recognition system has never existed.
    This course will introduce the general concepts of Pattern Recognition
    (Supervised Learning) and Cluster Analysis (Unsupervised Learning) with
    examples in texture and shape discrimination. A project of applying the
    strategies of Pattern Recognition and Cluster Analysis to do Data Mining
    for interesting data sets acquired from Taiwanese Health Insurance Database
    or face image databases may be considered. The goal of visualization,
    prediction, and policy making to improve the life quality and security of
    Taiwanese people may be pursued if the data are available.
    A Pattern Recognition Paradigm
    Texture Discrimination
    Shape Discrimination
    Optical Character Recognition
    Face Recognition & Discrimination
    Are They From the Same Person
    Foundation of Mathematics
    LLt decomposition and eigenvalues and eigenvectors of nonnegative matrices
    Random variables and random vectors
    Normal (Gaussian) Distributions
    Covariance matrix of a random vector
    Maximum Likelihood Estimation (MLE)
    Volumes of unit spheres
    Least squares problems
    Computing Covariance Matrix
    d=4; n=150;
    fin=fopen('datairis.txt');
    fgetl(fin); fgetl(fin); fgetl(fin);
    A=fscanf(fin,'%f',[d+1 n]);
    B=A';
    X=B(:,1:d);
    u=mean(X);
    C=cov(X);
    [V D]=eig(C);

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