Assessing the Significance of Model Selection in Ecology

Q3 Environmental Science European Journal of Ecology Pub Date : 2020-04-16 DOI:10.17161/EUROJECOL.V6I2.13747
E. Wheatcroft
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Abstract

Model Selection is a key part of many ecological studies, with Akaike’s Information Criterion (AIC) being by far the most commonly used technique for this purpose. Typically, a number of candidate models are defined a priori and ranked according to their expected out-of-sample performance. Model selection, however, only assesses the relative performance of the models and, as pointed out in a recent paper, a large proportion of ecology papers that use model selection do not assess the absolute fit of the ‘best’ model. In this paper, it is argued that assessing the absolute fit of the ‘best’ model alone does not go far enough. This is because a model that appears to perform well under model selection is also likely to appear to perform well under measures of absolute fit, even when there is no predictive value. A model selection permutation test is proposed that assesses the probability that the model selection statistic of the ‘best’ model could have occurred by chance alone, whilst taking account of dependencies between the models. It is argued that this test should always be performed as a part of formal model selection. The test is demonstrated on two real population modelling examples of ibex in northern Italy and wild reindeer in Norway.
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评价模式选择在生态学中的意义
模型选择是许多生态学研究的关键部分,Akaike的信息准则(AIC)是迄今为止最常用的技术。通常,许多候选模型是先验定义的,并根据其预期的样本外性能进行排序。然而,模型选择只评估模型的相对性能,正如最近的一篇论文所指出的,很大一部分使用模型选择的生态学论文并没有评估“最佳”模型的绝对适合性。在本文中,有人认为,仅评估“最佳”模型的绝对拟合度是不够的。这是因为,即使在没有预测值的情况下,在模型选择下表现良好的模型也可能在绝对拟合的测量下表现良好。提出了一种模型选择排列测试,该测试评估了“最佳”模型的模型选择统计可能仅偶然发生的概率,同时考虑了模型之间的相关性。有人认为,该测试应始终作为正式模型选择的一部分进行。该测试在意大利北部的野山羊和挪威的野生驯鹿的两个真实种群建模实例上进行了演示。
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来源期刊
European Journal of Ecology
European Journal of Ecology Environmental Science-Ecology
CiteScore
1.80
自引率
0.00%
发文量
6
审稿时长
11 weeks
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