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Hierarchical models of animal abundance and occurrence

机译:动物丰度和发生的层次模型

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摘要

Much of animal ecology is devoted to studies of abundance and occurrence of species, based on surveys of spatially referenced sample units. These surveys frequently yield sparse counts that are contaminated by imperfect detection, making direct inference about abundance or occurrence based on observational data infeasible. This article describes a flexible hierarchical modeling framework for estimation and inference about animal abundance and occurrence from survey data that are subject to imperfect detection. Within this framework, we specify models of abundance and detectability of animals at the level of the local populations defined by the sample units. Information at the level of the local population is aggregated by specifying models that describe variation in abundance and detection among sites. We describe likelihood-based and Bayesian methods for estimation and inference under the resulting hierarchical model. We provide two examples of the application of hierarchical models to animal survey data, the first based on removal counts of stream fish and the second based on avian quadrat counts. For both examples, we provide a Bayesian analysis of the models using the software WinBUGS.
机译:许多动物生态学都基于对空间参考样本单位的调查,专门研究物种的丰度和发生。这些调查通常会产生稀疏计数,这些计数会因检测不完善而受到污染,因此无法根据观测数据直接推断丰度或发生率。本文介绍了一种灵活的分层建模框架,该框架可用于从不完善检测的调查数据中估计和推断有关动物的丰度和发生情况。在此框架内,我们在样本单位定义的本地人口级别上指定动物的丰度和可检测性模型。通过指定描述站点之间丰度和检测变化的模型,可以汇总本地人口级别的信息。我们描述了基于结果的分层模型下基于似然和贝叶斯估计和推断的方法。我们提供了两个将层次模型应用到动物调查数据中的示例,第一个基于溪流鱼类的去除计数,第二个基于禽类四方计数。对于这两个示例,我们都使用软件WinBUGS提供了模型的贝叶斯分析。

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