A geometric approach to non-parametric density estimation |
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Authors: | Matthew Browne [Author Vitae] |
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Affiliation: | GCCM, Griffith University, PMB 50, Gold Coast Mail Centre, QLD 9726, Australia |
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Abstract: | A novel non-parametric density estimator is developed based on geometric principles. A penalised centroidal Voronoi tessellation forms the basis of the estimator, which allows the data to self-organise in order to minimise estimate bias and variance. This approach is a marked departure from usual methods based on local averaging, and has the advantage of being naturally adaptive to local sample density (scale-invariance). The estimator does not require the introduction of a plug-in kernel, thus avoiding assumptions of symmetricity and morphology. A numerical experiment is conducted to illustrate the behaviour of the estimator, and it's characteristics are discussed. |
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Keywords: | Centroidal Voronoi Tessellation Non-parametric Density estimation |
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