首页> 外文期刊>ICES Journal of Marine Science >Analysis of non-linear relationships between catch per unit effort and abundance in a tuna purse-seine fishery simulated with artificial neural networks
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Analysis of non-linear relationships between catch per unit effort and abundance in a tuna purse-seine fishery simulated with artificial neural networks

机译:用人工神经网络模拟金枪鱼围网渔业中单位捕捞量与丰度之间的非线性关系

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摘要

A simulation study, combining grid- and individual-based approaches, was conducted to analyse the shape of the relationship between catch per unit effort (cpue) and abundance in a tuna purse-seine fishery. To understand the effect of fleet dynamics on the interpretation of cpue, the decision-making process used by fishers while searching for the resource is modelled with artificial neural networks. The cpue of fishers operating independently (i.e. individuals) vs. fishers sharing information (i.e. a code-group) is compared, accounting for different environmental scenarios. The results show that a power curve non-proportional relationship between cpue and abundance performs better than a linear relationship. As the shape parameter of the power curve for the code-group fishers was lower in every scenario than that of individual fishers, we conclude that hyperstability, a phenomenon commonly observed in schooling fisheries, is mainly attributable to information exchange among vessels. Setting the individual-level state variables of the virtual system at a specific spatial and temporal scale may affect the results of the simulations.
机译:进行了模拟研究,结合了基于网格的方法和基于个体的方法,以分析金枪鱼围网渔业中单位捕捞量(cpue)与丰度之间关系的形状。为了了解船队动力学对cpue解释的影响,使用人工神经网络对渔民在搜索资源时使用的决策过程进行建模。比较了独立运作的渔民(即个人)与共享信息的渔民(即代码组)的情况,并考虑了不同的环境情景。结果表明,cpue和丰度之间的幂曲线非比例关系表现得比线性关系好。由于代码组渔民的功率曲线的形状参数在每种情况下都比单个渔民的低,因此我们得出结论,在学校化渔业中普遍观察到的超稳定现象主要归因于船只之间的信息交流。在特定的空间和时间范围内设置虚拟系统的各个级别状态变量可能会影响仿真结果。

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