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      Comparisons Among Clustering Techniques for Electricity Customer Classification

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      IEEE Transactions on Power Systems
      Institute of Electrical and Electronics Engineers (IEEE)

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          Self-Organization and Associative Memory

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            Curvilinear component analysis: a self-organizing neural network for nonlinear mapping of data sets.

            We present a new strategy called "curvilinear component analysis" (CCA) for dimensionality reduction and representation of multidimensional data sets. The principle of CCA is a self-organized neural network performing two tasks: vector quantization (VQ) of the submanifold in the data set (input space); and nonlinear projection (P) of these quantizing vectors toward an output space, providing a revealing unfolding of the submanifold. After learning, the network has the ability to continuously map any new point from one space into another: forward mapping of new points in the input space, or backward mapping of an arbitrary position in the output space.
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              On the information-based measure of covariance complexity and its application to the evaluation of multivariate linear models

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                Author and article information

                Journal
                IEEE Transactions on Power Systems
                IEEE Trans. Power Syst.
                Institute of Electrical and Electronics Engineers (IEEE)
                0885-8950
                May 2006
                May 2006
                : 21
                : 2
                : 933-940
                Article
                10.1109/TPWRS.2006.873122
                242693e5-26bf-43c6-bd87-0c3f50abc6bd
                © 2006
                History

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