Testing and estimation for clustered signals

IF 1.7 2区 数学 Q2 STATISTICS & PROBABILITY Bernoulli Pub Date : 2021-04-29 DOI:10.3150/21-bej1355
Hongyuan Cao, W. Wu
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引用次数: 2

Abstract

We propose a change-point detection method for large scale multiple testing problems with data having clustered signals. Unlike the classic change-point setup, the signals can vary in size within a cluster. The clustering structure on the signals enables us to effectively delineate the boundaries between signal and non-signal segments. New test statistics are proposed for observations from one and/or multiple realizations. Their asymptotic distributions are derived. We also study the associated variance estimation problem. We allow the variances to be heteroscedastic in the multiple realization case, which substantially expands the applicability of the proposed method. Simulation studies demonstrate that the proposed approach has a favorable performance. Our procedure is applied to {an array based Comparative Genomic Hybridization (aCGH)} dataset.
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聚类信号的测试与估计
针对具有聚类信号的大规模多重测试问题,提出了一种变化点检测方法。与传统的更改点设置不同,信号在集群中的大小可以变化。信号上的聚类结构使我们能够有效地描绘信号段和非信号段之间的边界。对于一个和/或多个实现的观察,提出了新的测试统计。导出了它们的渐近分布。我们还研究了相关方差估计问题。我们允许方差在多重实现情况下是异方差的,这大大扩展了所提出方法的适用性。仿真研究表明,该方法具有良好的性能。我们的程序应用于{一个基于阵列的比较基因组杂交(aCGH)}数据集。
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来源期刊
Bernoulli
Bernoulli 数学-统计学与概率论
CiteScore
3.40
自引率
0.00%
发文量
116
审稿时长
6-12 weeks
期刊介绍: BERNOULLI is the journal of the Bernoulli Society for Mathematical Statistics and Probability, issued four times per year. The journal provides a comprehensive account of important developments in the fields of statistics and probability, offering an international forum for both theoretical and applied work. BERNOULLI will publish: Papers containing original and significant research contributions: with background, mathematical derivation and discussion of the results in suitable detail and, where appropriate, with discussion of interesting applications in relation to the methodology proposed. Papers of the following two types will also be considered for publication, provided they are judged to enhance the dissemination of research: Review papers which provide an integrated critical survey of some area of probability and statistics and discuss important recent developments. Scholarly written papers on some historical significant aspect of statistics and probability.
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