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Modeling spatial patterns in fisheries bycatch: Improving bycatch maps to aid fisheries management

机译:对渔业兼捕的空间格局进行建模:改进兼捕地图以协助渔业管理

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Fisheries bycatch, or incidental take, of large vertebrates such as sea turtles, seabirds, and marine mammals, is a pressing conservation and fisheries management issue. Identifying spatial patterns of bycatch is an important element in managing and mitigating bycatch occurrences. Because bycatch of these taxa involves rare events and fishing effort is highly variable in space and time, maps of raw bycatch rates ( the ratio of bycatch to fishing effort) can be misleading. Here we show how mapping bycatch can be enhanced through the use of Bayesian hierarchical spatial models. We compare model-based estimates of bycatch rates to raw rates. The model-based estimates were more precise and fit the data well. Using these results, we demonstrate the utility of this approach for providing information to managers on bycatch probabilities and cross-taxa bycatch comparisons. To illustrate this approach, we present an analysis of bycatch data from the U. S. gill net fishery for ground fish in the northwest Atlantic. The goals of this analysis are to produce more reliable estimates of bycatch rates, assess similarity of spatial patterns between taxa, and identify areas of elevated risk of bycatch.
机译:大型脊椎动物(例如海龟,海鸟和海洋哺乳动物)的渔业兼捕或附带捕获是一个紧迫的保护和渔业管理问题。确定兼捕的空间格局是管理和缓解兼捕事件的重要因素。由于这些类群的兼捕涉及罕见事件,并且捕捞努力在时空上存在很大差异,因此原始的兼捕率(捕捞与捕捞努力之比)的图可能会产生误导。在这里,我们展示了如何通过使用贝叶斯分层空间模型来增强映射兼捕。我们将基于模型的兼捕率估算值与原始率进行比较。基于模型的估计更加精确,并且很好地拟合了数据。使用这些结果,我们演示了此方法的实用程序,可向管理人员提供有关兼捕概率和跨类群兼捕比较的信息。为了说明这种方法,我们对美国刺网捕捞的西北大西洋地面鱼的兼捕数据进行了分析。此分析的目的是对兼捕率进行更可靠的估计,评估类群之间空间格局的相似性,并确定兼捕风险较高的区域。

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