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초록
Consider a nonlinear transform Φ(x) of x in Rp to Hilbert space H and assume that the dot product betweenΦ(x) and Φ(x′) in H is given by < Φ(x);Φ(x′) >= K(x; x′). The aim of this paper is to propose a mathematicaltechnique to take screen shots of the multivariate dataset mapped to Hilbert space H, particularly suited to Gaussiankernel K(· ; ·), which is defined by K(x; x′) = exp(− ∥ x − x′∥2); > 0. Several numerical examples are given.
키워드
Data visualization; Hilbert space; Gaussian kernel; principal component analysis
- 제목
- Global and Local Views of the Hilbert Space Associated to Gaussian Kernel
- 제목 (타언어)
- Global and Local Views of the Hilbert Space Associated to Gaussian Kernel
- 저자
- 허명회
- 발행일
- 2014
- 권
- 21
- 호
- 4
- 페이지
- 317 ~ 325