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The neglected tool in the Bayesian ecologistapos;s shed: a case study testing informative priorsapos; effect on model accuracy

机译:贝叶斯生态学家中被忽视的工具'S Shed:一个案例研究,测试信息先验和 apos;对模型精度的影响

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摘要

AbstractDespite benefits for precision, ecologists rarely use informative priors. One reason that ecologists may prefer vague priors is the perception that informative priors reduce accuracy. To date, no ecological study has empirically evaluated data-derived informative priors' effects on precision and accuracy. To determine the impacts of priors, we evaluated mortality models for tree species using data from a forest dynamics plot in Thailand. Half the models used vague priors, and the remaining half had informative priors. We found precision was greater when using informative priors, but effects on accuracy were more variable. In some cases, prior information improved accuracy, while in others, it was reduced. On average, models with informative priors were no more or less accurate than models without. Our analyses provide a detailed case study on the simultaneous effect of prior information on precision and accuracy and demonstrate that when priors are specified appropriately, they lead to greater precision without systematically reducing model accuracy.
机译:摘要尽管对精确性有好处,但生态学家很少使用信息先验。生态学家可能更喜欢模糊的先验的一个原因是,他们认为信息先验会降低准确性。迄今为止,还没有生态学研究实证评估数据衍生的信息先验对精度和准确性的影响。为了确定先验的影响,我们使用来自泰国森林动态图的数据评估了树种的死亡率模型。一半的模型使用模糊的先验,其余一半具有信息先验。我们发现,当使用信息性先验时,精确度更高,但对准确性的影响变化更大。在某些情况下,先验信息提高了准确性,而在另一些情况下,准确性降低了。平均而言,具有信息先验的模型并不比没有信息先验的模型更准确或更差。我们的分析提供了一个详细的案例研究,说明先验信息对精度和准确性的同时影响,并证明当适当地指定先验时,它们会带来更高的精度,而不会系统地降低模型的准确性。

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