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kernlab - An S4 package for kernel methods in R

WU ResearchPublished 1 January 2004Open access
Karatzoglou, Alexandros, Smola, Alex, Hornik, Kurt, Zeileis, Achim
Citations79
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Abstract

kernlab is an extensible package for kernel-based machine learning methods in R. It takes advantage of R's new S4 object model and provides a framework for creating and using kernel-based algorithms. The package contains dot product primitives (kernels), implementations of support vector machines and the relevance vector machine, Gaussian processes, a ranking algorithm, kernel PCA, kernel CCA, and a spectral clustering algorithm. Moreover it provides a general purpose quadratic programming solver, and an incomplete Cholesky decomposition method. (author's abstract)

Keywords

Computer ScienceMathematics