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Individual-based modelling of fishermen search behaviour with neural networks and reinforcement learning

机译:基于个体网络的渔民搜索行为建模与神经网络和强化学习

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摘要

A model to mimic the search behaviour of fishermen is built with two neural networks to cope with two separate decision-making processes in fishing activities. One neural network deals with decisions to stay or move to new fishing grounds and the other is constructed for the purpose of finding prey within the fishing areas. Some similarities with the behaviour of real fishermen are found: concentrated local search once a prey has been located to increase the probability of remaining near a prey patch and the straightforward movement to other fishing grounds. The artificial fisherman prefers areas near the port when conditions in different fishing grounds are similar or when there is high uncertainty in its world. In the latter case a reluctance to navigate to other areas is observed. The artificial fisherman selects areas with higher concentration of prey, even if they are far from the port of departure, unless a high uncertainty is related to the fishing ground. Connected areas are preferred and followed in orderly fashion if a higher catch is expected. The observed behaviour of the artificial fisherman in uncertain scenarios can be described as a risk-averse attitude. The approach seems appropriate for an individual-based modelling of fishery systems, focusing on the learning and adaptive characteristics of fishermen and on interactions that take place at a fine scale.
机译:利用两个神经网络建立一个模仿渔民搜索行为的模型,以应对钓鱼活动中两个独立的决策过程。一个神经网络处理有关停留或转移到新渔场的决策,而另一个神经网络则是为了在钓鱼区域内寻找猎物而构建的。发现与真实渔民的行为有一些相似之处:一旦找到了猎物,就可以集中进行局部搜索,以增加留在猎物斑块附近的可能性以及直接转移到其他渔场的可能性。当不同渔场的条件相似或世界不确定性较高时,人工渔民会偏爱港口附近的地区。在后一种情况下,观察到不愿意导航到其他区域。人工渔民会选择猎物集中度较高的区域,即使它们离出发港口很远,除非与捕鱼场有关的不确定性很高。首选连通区,如果预计会有更高的捕获量,则应有序地遵循。人工渔民在不确定情况下观察到的行为可以描述为一种规避风险的态度。该方法似乎适用于基于个体的渔业系统建模,重点是渔民的学习和适应性特征以及在精细规模上发生的相互作用。

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