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A simulation study on the hybrid nature of Tango's index

机译:Tango指数混合性质的模拟研究

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摘要

Since the early 1990s, there has been an increasing interest in statistical methods for detecting global spatial clustering in data sets. Tango's index is one of the most widely used spatial statistics for assessing whether spatially distributed disease rates are independent or clustered. Interestingly, this statistic can be partitioned into the sum of two terms: one term is similar to the usual chi-square statistic, being based on deviation patterns between the observed and expected values, and the other term, similar to Moran's I, is able to detect the proximity of similar values. In this paper, we examine this hybrid nature of Tango's index. The goal is to evaluate the possibility of distinguishing the spatial sources of clustering: lack of fit or spatial autocorrelation. To comply with the aims of the work, a simulation study is performed, by which examples of patterns driving the goodness-of-flt and spatial autocorrelation components of the statistic are provided. As for the latter aspect, it is worth noting that inducing spatial association among count data without adding lack of fit is not an easy task. In this respect, the overlapping sums method is adopted. The main findings of the simulation experiment are illustrated and a comparison with a previous research on this topic is also highlighted.
机译:自1990年代初以来,人们越来越关注用于检测数据集中全局空间聚类的统计方法。探戈指数是用于评估空间分布的疾病率是独立的还是聚类的,使用最广泛的空间统计之一。有趣的是,该统计信息可以分为两个项的总和:一个项与通常的卡方统计类似,基于观察值和期望值之间的偏差模式,而另一个项与Moran的I类似,能够以检测相似值的接近度。在本文中,我们研究了探戈指数的这种混合性质。目的是评估区分聚类的空间来源的可能性:缺乏拟合或空间自相关。为了符合工作的目的,进行了模拟研究,通过该研究提供了驱动统计优度和空间自相关成分的模式示例。对于后一个方面,值得注意的是,在不增加拟合度的情况下在计数数据之间诱导空间关联并不是一件容易的事。在这方面,采用重叠和方法。举例说明了模拟实验的主要发现,并强调了与该主题的先前研究的比较。

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