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Estimating abundance of pelagic fishes using gillnet catch data in data-limited fisheries: a Bayesian approach

机译:在数据受限的渔业中使用刺网捕获数据估算远洋鱼类的数量:贝叶斯方法

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摘要

We describe a Bayesian modelling approach to estimate abundance and biomass of pelagic fishes from gillnet catches in data-limited situations. By making a number of simple assumptions, we use fish sustained swimming speed to calculate the effective area fished by a gillnet in a specified soak time to estimate abundance (fishDTkm super(-2)) from the number of fish caught. We used catch data from various sampling methods in northern Australia and elicited anecdotal information from experts to build a size distribution of the true population to compensate for size classes that were unlikely to be represented in the catch because of size selectivity of the gear. Our final abundance estimates for various-sized scombrids (0.04-4.17 fishDTkm super(-2)) and istiophorids (0.004-0.005 fishDTkm super(-2)) were similar to what has been estimated for similar species in more data-rich situations in tropical regions of the Pacific Ocean.
机译:我们描述了一种贝叶斯建模方法,用于在数据受限的情况下从刺网捕捞中估计远洋鱼类的丰度和生物量。通过做出一些简单的假设,我们使用鱼的持续游泳速度来计算在特定的浸泡时间内刺网捕捞的有效面积,从而根据捕获的鱼的数量来估计丰度(fishDTkm super(-2))。我们使用了来自澳大利亚北部各种采样方法的渔获数据,并从专家那里得到了轶事信息,以建立真实种群的大小分布,以补偿由于渔具的尺寸选择性而不太可能在渔获中体现的大小等级。我们对各种大小的混血种(0.04-4.17 fishDTkm super(-2))和组织虫类(0.004-0.005 fishDTkm super(-2))的最终丰度估计与在数据更丰富的情况下类似物种的估计丰度相似。太平洋的热带地区。

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