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2019-12-21 18:57:29 977KB 电子书 ebook book 名著 小说
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这个是leetcode发布的ebook 包含有常见题目的解答以及讲解
2019-12-21 18:54:29 1.53MB leetcode ebook
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zynq 官方出版的电子书,详细介绍zynq7000的硬件和软件开发应用
2019-12-21 18:50:58 26.43MB zynq
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This book focuses on Least Squares Support Vector Machines (LS-SVMs) which are reformulations to standard SVMs. LS-SVMs are closely related to regularization networks and Gaussian processes but additionally emphasize and exploit primal-dual interpretations from optimization theory. The authors explain the natural links between LS-SVM classifiers and kernel Fisher discriminant analysis. Bayesian inference of LS-SVM models is discussed, together with methods for imposing sparseness and employing robust statistics. The framework is further extended towards unsupervised learning by considering PCA analysis and its kernel version as a one-class modelling problem. This leads to new primal-dual support vector machine formulations for kernel PCA and kernel CCA analysis. Furthermore, LS-SVM formulations are given for recurrent networks and control. In general, support vector machines may pose heavy computational challenges for large data sets. For this purpose, a method of fixed size LS-SVM is proposed where the estimation is done in the primal space in relation to a Nyström sampling with active selection of support vectors. The methods are illustrated with several examples.
2009-02-19 00:00:00 12.09MB ebook svm
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