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Directional clustering tests based on nearest neighbour contingency tables

机译:基于最近邻居列联表的定向聚类测试

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Spatial interaction between two or more classes or species has important implications in various fields, and might cause multivariate patterns such as segregation or association. Segregation occurs when members of a class or species are more likely to be found near members of the same class or conspecifics; association occurs when members of a class or species are more likely to be found near members of another class or species. The null patterns considered are random labelling and complete spatial randomness (CSR) of points from two or more classes, which is henceforth called CSR independence. The clustering tests based on nearest neighbour contingency tables (NNCTs) that are in use in the literature are two-sided tests. In this article, we consider the directional (i.e. one-sided) versions of the cell-specific NNCT tests and introduce new directional NNCT tests for the two-class case. We analyse the distributional properties and compare the empirical significant levels and empirical power estimates of the tests using extensive Monte Carlo simulations. We demonstrate that the new directional tests have comparable performance with the currently available NNCT tests in terms of empirical size and power. We use an ecological data set for illustrative purposes and provide guidelines for using these NNCT tests.
机译:两个或多个类别或物种之间的空间相互作用在各个领域都具有重要意义,并且可能引起多元模式,例如隔离或关联。当某个类别或物种的成员更可能在同一类别或同种物种的成员附近找到时,就会发生隔离。当一个类别或物种的成员更有可能在另一个类别或物种的成员附近找到时,就会发生关联。所考虑的空模式是来自两个或多个类别的点的随机标记和完全空间随机性(CSR),此后称为CSR独立性。文献中使用的基于最近邻居列联表(NNCT)的聚类测试是双面测试。在本文中,我们考虑了特定于单元的NNCT测试的定向(即单面)版本,并针对两类情况引入了新的定向NNCT测试。我们分析分布特性,并使用广泛的蒙特卡洛模拟比较试验的经验显着性水平和经验能力估计。我们证明,根据经验的大小和功效,新的定向测试具有与当前可用的NNCT测试相当的性能。我们将生态数据集用于说明目的,并提供使用这些NNCT测试的指南。

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