首页> 外文期刊>Canadian Journal of Fisheries and Aquatic Sciences >Spatially varying catchability for integrating research survey data with other data sources: case studies involving observer samples, industry-cooperative surveys, and predators as samplers
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Spatially varying catchability for integrating research survey data with other data sources: case studies involving observer samples, industry-cooperative surveys, and predators as samplers

机译:将研究调查数据与其他数据源整合的空间变化可捕获性:涉及观察者样本、行业合作调查和捕食者作为样本的案例研究

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摘要

Spatio-temporal models are widely applied to standardise research survey data and are increasingly used to generate density maps and indices from other data sources. We developed a spatio-temporal modelling framework that integrates research survey data (treated as a "reference dataset") and other data sources ("non-reference datasets") while estimating spatially varying catchability for the non-reference datasets. We demonstrated it using two case studies. The first involved bottom trawl survey and observer data for spiny dogfish (Squalus acanthias) on the Chatham Rise, New Zealand. The second involved cod predators as samplers of juvenile snow crab (Chionoecetes opilio) abundance, integrated with industry-cooperative surveys and a bottom trawl research survey in the eastern Bering Sea. Our integrated models leveraged the strengths of individual data sources (the quality of the reference dataset and the quantity of non-reference data), while downweighting the influence of the non-reference datasets via the estimated spatially varying catchabilities. They allowed for the generation of annual density maps for a longer time-period and for the provision of one single index rather than multiple indices each covering a shorter time-period.
机译:时空模型被广泛用于标准化研究调查数据,并越来越多地用于从其他数据源生成密度图和指数。我们开发了一个时空建模框架,该框架整合了研究调查数据(被视为“参考数据集”)和其他数据源(“非参考数据集”),同时估计非参考数据集的空间变化可捕获性。我们通过两个案例研究来证明这一点。第一项涉及新西兰查塔姆高地的底拖网调查和多刺狗鱼(Squalus acanthias)的观察数据。第二项研究涉及鳕鱼捕食者作为幼年雪蟹(Chionoecetes opilio)丰度的采样者,并与行业合作调查和白令海东部的底拖网研究调查相结合。我们的集成模型利用了单个数据源的优势(参考数据集的质量和非参考数据的数量),同时通过估计的空间变化捕获性来降低非参考数据集的影响。它们允许生成较长时间的年度密度图,并允许提供单一指数,而不是提供多个指数,每个指数涵盖较短的时间期。

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