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利用支持向量回归进行概率密度估计,从而计算信息熵-The use of support vector regression for probability density estimation, in order to estimate the information entropy
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该程序源码中包括了各种典型分布的二维数据的自动生成,二维概率密度函数的极大似然估计和窗函数估计,bayes分类器的设计和分类器错误率的多种方法估计-The program includes a variety of typical source distribution of the automatic generation of two-dimensional data, two-dimensional probability density function of the maximum l
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K近邻(KNN):分类算法KNN是non-parametric分类器(不做分布形式的假设,直接从数据估计概率密度),是memory-based learning KNN不适用于高维数据(curse of dimension)-K-Nearest Neighbor (KNN): Classification Algorithm. KNN is a non-parametric classifiers (not to assume that the distribution of forms, fr
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FFT 概率密度函数估计 概率论与数理统计-FFT probability density function estimation
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给定若干三维数据,建立训练概率模型,并对新数据进行估计。包括高斯模型、Parzen窗和K近邻密度估计-Given a number of three-dimensional data, the establishment of training probability model, and the new data is estimated. Including the Gaussian model, Parzen windows and K nearest neighbor density e
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聚类算法之高斯混合模型,GMM 和 k-means 很像,不过 GMM 是学习出一些概率密度函数来(所以 GMM 除了用在 clustering 上之外,还经常被用于 density estimation )。-Gaussian mixture model of clustering algorithm, GMM and k-means like, but GMM is learning some probability density function (so GMM except on cl
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