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Solving multidimensional bioeconomic problems with singular-perturbation reduction methods: Application to managing pest resistance to pesticidal crops

机译:用减少奇摄动的方法解决多维生物经济问题:在管理害虫对农药作物的抗性中的应用

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We investigate the application of 'singular-perturbation' reduction methods from the dynamical-systems literature to solve continuous-time multidimensional bioeconomic models resulting from integrating economics with increasingly complex biological structures. These methods reduce multidimensional solution space to the lower-dimensional subspace confining long-term dynamics. They arise naturally in problems with state variables evolving on widely disparate time scales. In particular, we demonstrate how the methods reduce the solution space of a linear-control specification— characterized by two state variables adjusting at widely disparate rates—to a single differential equation in the slow variable. All other system variables are determined by algebraic equations. We apply singular-perturbation methods to investigate the optimal management of pest resistance to pesticidal crops. The pest population evolves on a fast-time scale, while the population's genetic composition evolves on a slow-time scale. In comparison with past work, we can more fully characterize the continuous-time dynamics associated with a complex genetic specification.
机译:我们研究动态系统文献中“奇摄动”减少方法的应用,以解决由于将经济学与日益复杂的生物结构相结合而产生的连续时间多维生物经济模型。这些方法将多维解空间缩减为低维子空间,从而限制了长期动力学。它们自然产生于状态变量在完全不同的时间尺度上演变的问题中。特别是,我们演示了这些方法如何将线性控制规范的求解空间(以两个状态变量以相差很大的速率进行调整)减少为慢变量中的单个微分方程。所有其他系统变量均由代数方程式确定。我们采用奇异摄动法来研究对农药作物的害虫抗性的最佳管理。有害生物种群的演化速度很快,而种群的遗传组成却演化的速度很慢。与过去的工作相比,我们可以更全面地描述与复杂遗传规范相关的连续时间动态。

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