Kernel density estimation based on Ripley's correction

Published: 01 Jan 2016, Last Modified: 28 Jul 2025GeoInformatica 2016EveryoneRevisionsBibTeXCC BY-SA 4.0
Abstract: In this paper, we investigate a technique inspired by Ripley’s circumference method to correct bias of density estimation of edges (or frontiers) of regions. The idea of the method was theoretical and difficult to implement. We provide a simple technique – based of properties of Gaussian kernels – to efficiently compute weights to correct border bias on frontiers of the region of interest, with an automatic selection of an optimal radius for the method. We illustrate the use of that technique to visualize hot spots of car accidents and campsite locations, as well as location of bike thefts.
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