Abstract
We study kernel estimation of highest-density regions (HDR). Our main contributions are two-fold. First, we derive a uniform-in-bandwidth asymptotic approximation to a risk that is appropriate for HDR estimation. This approximation is then used to derive a bandwidth selection rule for HDR estimation possessing attractive asymptotic properties.We also present the results of numerical studies that illustrate the benefits of our theory and methodology. © 2010 Institute of Mathematical Statistics.
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Samworth, R. J., & Wand, M. P. (2010). Asymptotics and optimal bandwidth selection for highest density region estimation. Annals of Statistics, 38(3), 1767–1792. https://doi.org/10.1214/09-AOS766
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