Quantifying the impact of a tsunami on data-driven earthquake relief zone planning in los angeles county via multivariate spatial optimization

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Abstract

Post-earthquake relief zone planning is a multidisciplinary optimization problem, which required delineating zones that seek to minimize the loss of life and property. In this study, we offer an end-to-end workflow to define relief zone suitability and equitable relief service zones for Los Angeles (LA) County. In particular, we address the impact of a tsunami in the study due to LA’s high spatial complexities in terms of clustering of population along the coastline, and a complicated inland fault system. We design data-driven earthquake relief zones with a wide variety of inputs, including geological features, population, and public safety. Data-driven zones were generated by solving the p-median problem with the Teitz–Bart algorithm without any a priori knowledge of optimal relief zones. We define the metrics to determine the optimal number of relief zones as a part of the proposed workflow. Finally, we measure the impacts of a tsunami in LA County by compar-ing data-driven relief zone maps for a case with a tsunami and a case without a tsunami. Our results show that the impact of the tsunami on the relief zones can extend up to 160 km inland from the study area.

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Gu, Y., Aydin, O., & Sosa, J. (2021). Quantifying the impact of a tsunami on data-driven earthquake relief zone planning in los angeles county via multivariate spatial optimization. Geosciences (Switzerland), 11(2), 1–15. https://doi.org/10.3390/geosciences11020099

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