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Consistent and powerful graph-based change-point test for high-dimensional data

机译:一致且强大的基于图的高维数据更改点测试

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摘要

A change-point detection is proposed by using a Bayesian-type statistic based on the shortest Hamiltonian path, and the change-point is estimated by using ratio cut. A permutation procedure is applied to approximate the significance of Bayesian-type statistics. The change-point test is proven to be consistent, and an error probability in change-point estimation is provided. The test is very powerful against alternatives with a shift in variance and is accurate in change-point estimation, as shown in simulation studies. Its applicability in tracking cell division is illustrated.
机译:提出了基于最短哈密顿路径的贝叶斯型统计量进行变化点检测的方法,并采用比率削减法对变化点进行估算。应用置换过程来近似贝叶斯型统计量的重要性。变更点测试被证明是一致的,并且提供了变更点估计中的错误概率。如仿真研究所示,该测试对方差变化的替代方法非常有力,并且在更改点估计方面非常准确。说明了其在跟踪细胞分裂中的适用性。

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