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首页> 外文期刊>Statistics in medicine >All maps of parameter estimates are misleading.
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All maps of parameter estimates are misleading.

机译:所有参数估计图都具有误导性。

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摘要

Maps are frequently used to display spatial distributions of parameters of interest, such as cancer rates or average pollutant concentrations by county. It is well known that plotting observed rates can have serious drawbacks when sample sizes vary by area, since very high (and low) observed rates are found disproportionately in poorly-sampled areas. Unfortunately, adjusting the observed rates to account for the effects of small-sample noise can introduce an opposite effect, in which the highest adjusted rates tend to be found disproportionately in well-sampled areas. In either case, the maps can be difficult to interpret because the display of spatial variation in the underlying parameters of interest is confounded with spatial variation in sample sizes. As a result, spatial patterns occur in adjusted rates even if there is no spatial structure in the underlying parameters of interest, and adjusted rates tend to look too uniform in areas with little data. We introduce two models (normal and Poisson) in which parameters of interest have no spatial patterns, and demonstrate the existence of spatial artefacts in inference from these models. We also discuss spatial models and the extent to which they are subject to the same artefacts. We present examples from Bayesian modelling, but, as we explain, the artefacts occur generally. Copyright 1999 John Wiley & Sons, Ltd.
机译:地图经常用于显示感兴趣的参数的空间分布,例如各县的癌症发生率或平均污染物浓度。众所周知,当样本量随区域变化时,绘制观测速率可能会带来严重的缺陷,因为在采样较差的区域中,发现很高(和很低)的观测速率是不成比例的。不幸的是,调整观测到的速率以解决小样本噪声的影响可能会引入相反的效果,其中最高采样率往往会在采样良好的区域中不成比例地出现。在这两种情况下,地图都难以解释,因为感兴趣的基本参数中的空间变化显示与样本大小的空间变化混杂在一起。结果,即使所关注的基本参数中没有空间结构,空间模式也会以调整后的速率发生,并且调整后的速率在数据很少的区域中看起来过于均匀。我们介绍了两个模型(正态模型和泊松模型),其中感兴趣的参数没有空间模式,并通过这些模型论证了空间文物的存在。我们还将讨论空间模型以及它们受相同伪像影响的程度。我们提供了贝叶斯建模的示例,但是,正如我们所解释的,伪像通常会出现。版权所有1999 John Wiley&Sons,Ltd.

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