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Confronting Management Challenges in Highly Uncertain Natural Resource Systems: a Robustness-Vulnerability Trade-off Approach

机译:高度不确定的自然资源系统中面临的管理挑战:一种鲁棒性/脆弱性的权衡方法

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This paper presents a framework for the study of policy implementation in highly uncertain natural resource systems in which uncertainty cannot be characterized by probability distributions. We apply the framework to parametric uncertainty in the traditional Gordon-Schaefer model of a fishery to illustrate how performance can be sacrificed (traded-off) for reduced sensitivity and hence increased robustness, with respect to model parameter uncertainty. With sufficient data, our robustness-vulnerability analysis provides tools to discuss policy options. When less data are available, it can be used to inform the early stages of a learning process. Several key insights emerge from this analysis: (1) the classic optimal control policy can be very sensitive to parametric uncertainty, (2) even mild robustness properties are difficult to achieve for the simple Gordon-Schaefer model, and (3) achieving increased robustness with respect to some parameters (e.g., biological parameters) necessarily results in increased sensitivity (decreased robustness) with respect to other parameters (e.g., economic parameters). We thus illustrate fundamental robustness-vulnerability trade-offs and the limits to robust natural resource management. Finally, we use the framework to explore the effects of infrequent sampling and delays on policy performance.
机译:本文提出了一个研究框架,用于研究高度不确定的自然资源系统中的政策实施,在该系统中,不确定性不能用概率分布来表征。我们将框架应用于传统Gordon-Schaefer渔业模型中的参数不确定性,以说明如何牺牲(权衡)性能以降低模型参数不确定性的敏感性,从而提高鲁棒性。有了足够的数据,我们的健壮性/漏洞分析提供了讨论策略选项的工具。当可用数据较少时,可用于通知学习过程的早期阶段。该分析得出了一些关键的见解:(1)经典的最优控制策略可能对参数不确定性非常敏感;(2)对于简单的Gordon-Schaefer模型,甚至很难实现中等鲁棒性;以及(3)增强鲁棒性关于某些参数(例如,生物学参数),必然导致相对于其他参数(例如,经济参数)的敏感性增加(鲁棒性降低)。因此,我们说明了健壮性/脆弱性的基本取舍以及健壮自然资源管理的局限性。最后,我们使用该框架来探索不频繁采样和延迟对政策绩效的影响。

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