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Non-parametric habitat models with automatic interactions.

机译:具有自动交互作用的非参数生境模型。

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Questions: Can a statistical model be designed to represent more directly the nature of organismal response to multiple interacting factors? Can multiplicative kernel smoothers be used for this purpose? What advantages does this approach have over more traditional habitat modelling methods? Methods: Non-parametric multiplicative regression (NPMR) was developed from the premises that: the response variable has a minimum of zero and a physiologically-determined maximum, species respond simultaneously to multiple ecological factors, the response to any one factor is conditioned by the values of other factors, and that if any of the factors is intolerable then the response is zero. Key features of NPMR are interactive effects of predictors, no need to specify an overall model form in advance, and built-in controls on overfitting. The effectiveness of the method is demonstrated with simulated and real data sets. Results: Empirical and theoretical relationships of species response to multiple interacting predictors can be represented effectively by multiplicative kernel smoothers. NPMR allows us to abandon simplistic assumptions about overall model form, while embracing the ecological truism that habitat factors interact..
机译:问题:是否可以设计一个统计模型来更直接地表示生物体对多种相互作用因素的反应的性质?可以使用乘法内核平滑器吗?与传统的栖息地建模方法相比,这种方法有什么优势?方法:非参数乘性回归(NPMR)的前提是:响应变量的最小值为零,生理上确定的最大值,物种同时对多个生态因子做出响应,对任何一个因子的响应都取决于其他因素的值,如果任何因素是无法忍受的,则响应为零。 NPMR的主要功能是预测变量的交互作用,无需事先指定整体模型形式,以及内置的过拟合控件。仿真和真实数据集证明了该方法的有效性。结果:乘数核平滑器可以有效地表示物种对多种相互作用的预测因子的反应的经验和理论关系。 NPMR使我们可以放弃关于整体模型形式的简单假设,而同时包含栖息地因素相互作用的生态真理。

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