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The application of genetic algorithms in behavioural ecology, illustrated with a model of anti-predator vigilance

机译:遗传算法在行为生态学中的应用,以反捕食者警惕模型为例

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摘要

We develop a genetic algorithm (GA) approach to a well-known model of vigilance behaviour in a group of animals. We first demonstrate that the GA approach can provide a good match to analytic solutions to the original model. We demonstrate that a GA can be used to find the evolutionarily stable strategies in a model relevant to behavioural ecology where the fitness of each strategy is determined by the frequencies of different strategies in the population. We argue that the GA implementation demonstrates the combination of assumptions used to generate analytic solution to the original model can only be simultaneously satisfied under relatively restrictive conditions on the ecology of the species involved; specifically that group membership is very fluid but group size is conserved over timescales of individual foraging bouts. We further explore the sensitivity of model predictions to alternative choices in the implementation of the GA, and present advice for implementation and presentation of similar models. In particular, we emphasise the need for care in measuring the predictions of such models, so as to capture the intrinsic behaviour of the system and not the remnant of often arbitrarily chosen initial conditions. We also emphasise the potential for GA models to be more transparent about model assumptions regarding underlying biology than analytic models. (c) 2007 Elsevier Ltd. All rights reserved.
机译:我们开发了一种遗传算法(GA)方法,用于对一组动物中的警惕行为进行熟知的模型。我们首先证明了遗传算法可以很好地匹配原始模型的解析解。我们证明了遗传算法可用于在与行为生态相关的模型中找到进化上稳定的策略,其中每种策略的适用性由人群中不同策略的频率决定。我们认为,遗传算法的实施证明了用于生成原始模型解析解的假设的组合只能在相对限制的条件下同时满足所涉及物种生态的条件;特别是,小组成员的流动性很强,但是小组规模在个体觅食争夺的时间尺度上得以保留。我们将进一步探讨模型预测对通用航空实施中替代选择的敏感性,并为类似模型的实施和展示提供建议。尤其是,我们强调在测量此类模型的预测时需要格外小心,以便捕获系统的固有行为,而不是经常任意选择的初始条件的残余。与分析模型相比,我们还强调了GA模型对于与基础生物学有关的模型假设更加透明的潜力。 (c)2007 Elsevier Ltd.保留所有权利。

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