AI Article Synopsis

  • The spatial scan statistic is an important tool for identifying geographical clusters of events, originally developed by Kulldorff using Bernoulli and Poisson models.
  • This paper introduces a new approach using the Hypergeometric probability model for likelihood functions, allowing for an alternative method to detect potential clusters.
  • Results from analyzing Japanese encephalitis clusters in Sichuan province showed that while both methods identified the same clusters, the Hypergeometric-based test performed better in areas with high population density or large cluster sizes compared to Kulldorff's original statistics.

Article Abstract

As a useful tool for geographical cluster detection of events, the spatial scan statistic is widely applied in many fields and plays an increasingly important role. The classic version of the spatial scan statistic for the binary outcome is developed by Kulldorff, based on the Bernoulli or the Poisson probability model. In this paper, we apply the Hypergeometric probability model to construct the likelihood function under the null hypothesis. Compared with existing methods, the likelihood function under the null hypothesis is an alternative and indirect method to identify the potential cluster, and the test statistic is the extreme value of the likelihood function. Similar with Kulldorff's methods, we adopt Monte Carlo test for the test of significance. Both methods are applied for detecting spatial clusters of Japanese encephalitis in Sichuan province, China, in 2009, and the detected clusters are identical. Through a simulation to independent benchmark data, it is indicated that the test statistic based on the Hypergeometric model outweighs Kulldorff's statistics for clusters of high population density or large size; otherwise Kulldorff's statistics are superior.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC3681795PMC
http://journals.plos.org/plosone/article?id=10.1371/journal.pone.0065419PLOS

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