Empirical dynamic programming for model-free ecosystem-based management

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Abstract

Quantitative ecosystem-based management typically relies on hypothetical ecosystem models that are difficult to validate for all but the best-studied systems. Here, we develop a management scheme that is based on predictive models driven by the observed dynamics. We show that near-optimal management policies can be constructed from time-series data by merging empirical dynamic modelling and stochastic dynamic programming. The Empirical Dynamic Programming approach performs well in cases we examined and outperformed a commonly used single-species alternative. We expect model-free ecosystem-based management to be of use wherever ecosystem dynamics are uncertain or observations of the system do not cover all relevant species.

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Munch, S. B., & Brias, A. (2024). Empirical dynamic programming for model-free ecosystem-based management. Methods in Ecology and Evolution, 15(4), 769–778. https://doi.org/10.1111/2041-210X.14302

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