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Travelling waves and paradoxical effects in a discrete-time growth-dispersal model

机译:离散时间增长-分散模型中的行波和悖论效应

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Integrodifference equations have been widely used to describe the spatiotemporal dynamics of a population. Here, we first extended the discrete Beverton–Holt model, to model the effects of an instantaneous control measure within each generation on a population’s growth. Then we investigated the effects of instantaneous killing rate and timing of pesticide application on a pest’s dynamics, together with the effects of a spatial factor on the existence of a travelling wave solution, its spreading speed and asymptotic stability, and the occurrence of paradoxical effects. The main results indicate that the instantaneous killing rate significantly influences the existence of a travelling wave and its speed of spread, while the timing of pesticide applications does not. In order to address how such dynamic complexities affect the above results, we included an interruption constant into the model which can generate chaotic dynamics. The results indicate that the pesticide efficacy not only affects the existence of a travelling wave and its speed of spread, but it can also produce paradoxical effects, i.e. low pesticide efficacy can result in an increase, not a decrease, of the stable population size, while high pesticide efficacy could inhibit the pests growth. Furthermore, different patterns of stable population sizes between odd and even generations can be produced. The results reveal that the pest control tactics should be designed according to the spatial characteristics and the pest generation.
机译:积分差异方程已被广泛用于描述人口的时空动态。在这里,我们首先扩展了离散的Beverton-Holt模型,以模拟每一代内的瞬时控制措施对人口增长的影响。然后,我们调查了瞬时杀虫率和施药时间对害虫动力学的影响,以及空间因素对行波解的存在,传播速度和渐近稳定性以及矛盾效应的发生的影响。主要结果表明,瞬时杀灭率显着影响行波的存在及其传播速度,而农药施用的时机却不受影响。为了解决这种动态复杂性如何影响上述结果,我们在模型中包括了一个可以产生混沌动力学的中断常数。结果表明,农药功效不仅影响行波的存在及其传播速度,而且还可能产生悖论效应,即农药功效低下会导致而不是减少稳定种群的数量,高效的农药可以抑制害虫的生长。此外,可以产生奇数代和偶数代之间稳定人口规模的不同模式。结果表明,应根据空间特征和害虫的产生来设计害虫防治策略。

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