Automated surface feature selection using SALSA2D: Assessing distribution of Elephant carcasses in Etosha National Park
L.A.S Scott-Hayward, M.L. Mackenzie, C.G. Walker, G. Shatumbu, W., Kilian, P. du Preez

TL;DR
This paper introduces SALSA2D, an automated knot selection method for bivariate splines, applied to model elephant carcass distribution in Etosha National Park, revealing key environmental risk factors and spatial patterns.
Contribution
The paper presents a novel automated knot selection algorithm for bivariate splines (SALSA2D) and demonstrates its effectiveness in modeling spatial distribution of elephant carcasses.
Findings
High carcass intensity near water and roads
Identification of high-risk areas in the park
Risk of death not always aligned with elephant distribution
Abstract
This paper describes the development of an automated knot selection method (selecting number and location of knots) for bivariate splines in a pure regression framework (SALSA2D). To demonstrate this approach we use carcass location data from Etosha National Park (ENP), Namibia to assess the spatial distribution of elephant deaths. Elephant mortality is an important component of understanding population dynamics, the overall increase or decline in populations and for disease monitoring. The presence only carcass location data were modelled using a downweighted Poisson regression (equivalent to a point-process model) and using developed method, SALSA2D, for knot selection. The result was a more realistic local/clustered intensity surface compared with an existing model averaging approach. Using the new algorithm, the carcass location data were modelled using additional environmental…
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Taxonomy
TopicsAnimal Disease Management and Epidemiology · Wildlife Ecology and Conservation · Genetic and phenotypic traits in livestock
