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This paper is concerned with false discovery rate (FDR) control in large-scale multiple testing problems. We first propose a new data-driven testing procedure for controlling the FDR in large-scale t-tests for one-sample mean problem. The…

统计理论 · 数学 2020-03-02 Changliang Zou , Haojie Ren , Xu Guo , Runze Li

Multivariate statistics are often available as well as necessary in hypothesis tests. We study how to use such statistics to control not only false discovery rate (FDR) but also positive FDR (pFDR) with good power. We show that FDR can be…

统计理论 · 数学 2008-05-21 Zhiyi Chi

False discovery rate (FDR) has been widely used as an error measure in large scale multiple testing problems, but most research in the area has been focused on procedures for controlling the FDR based on independent test statistics or the…

统计方法学 · 统计学 2009-09-29 Weihua Tang , Cun-Hui Zhang

In this paper we consider online multiple testing with familywise error rate (FWER) control, where the probability of committing at least one type I error shall remain under control while testing a possibly infinite sequence of hypotheses…

统计方法学 · 统计学 2024-05-27 Lasse Fischer , Marta Bofill Roig , Werner Brannath

Most scientific disciplines use significance testing to draw conclusions about experimental or observational data. This classical approach provides a theoretical guarantee for controlling the number of false positives across a set of…

应用统计 · 统计学 2023-03-06 Stanley E. Lazic

This analysis report presents an in-depth exploration of multiple hypothesis testing in the context of Genomics RNA-seq differential expression (DE) analysis, with a primary focus on techniques designed to control the false discovery rate…

统计方法学 · 统计学 2025-07-01 Shyam Gupta

In many large multiple testing problems the hypotheses are divided into families. Given the data, families with evidence for true discoveries are selected, and hypotheses within them are tested. Neither controlling the error-rate in each…

统计理论 · 数学 2011-06-21 Yoav Benjamini , Marina Bogomolov

Identifying signals that replicate across multiple studies is essential for establishing robust scientific evidence, yet existing methods for high-dimensional replicability analysis either rely on restrictive modeling assumptions, are…

统计方法学 · 统计学 2026-03-05 Haochen Lei , Yan Li , Hongyuan Cao

Closed testing and partitioning are recognized as fundamental principles of familywise error control. In this paper, we argue that sequential rejection can be considered equally fundamental as a general principle of multiple testing. We…

统计理论 · 数学 2012-11-15 Jelle J. Goeman , Aldo Solari

Differential privacy provides a rigorous framework for privacy-preserving data analysis. This paper proposes the first differentially private procedure for controlling the false discovery rate (FDR) in multiple hypothesis testing. Inspired…

统计理论 · 数学 2021-07-06 Cynthia Dwork , Weijie J. Su , Li Zhang

Multiple hypothesis testing problems arise naturally in science. In this paper, we introduce the new Fast Closed Testing (FACT) method for multiple testing, controlling the family-wise error rate. This error rate is state of the art in many…

统计方法学 · 统计学 2020-01-22 Edgar Dobriban

Testing composite null hypotheses arises in various applications, such as mediation and replicability analyses. The problem becomes more challenging in high-throughput experiments where tens of thousands of features are examined…

统计方法学 · 统计学 2025-04-29 Pengfei Lyu , Xianyang Zhang , Hongyuan Cao

In online multiple testing, an a priori unknown number of hypotheses are tested sequentially, i.e. at each time point a test decision for the current hypothesis has to be made using only the data available so far. Although many powerful…

统计方法学 · 统计学 2025-03-11 Vincent Jankovic , Lasse Fischer , Werner Brannath

This paper studies the classical problem of estimating the locations of signal occurrences in a noisy measurement. Based on a multiple hypothesis testing scheme, we design a K-sample statistical test to control the false discovery rate…

信号处理 · 电气工程与系统科学 2022-09-26 Uriel Shiterburd , Tamir Bendory , Amichai Painsky

The highly influential two-group model in testing a large number of statistical hypotheses assumes that the test statistics are drawn independently from a mixture of a high probability null distribution and a low probability alternative.…

统计方法学 · 统计学 2020-12-08 Ruth Heller , Saharon Rosset

We propose sequential multiple testing procedures which control the false discover rate (FDR) or the positive false discovery rate (pFDR) under arbitrary dependence between the data streams. This is accomplished by "optimizing" an upper…

统计方法学 · 统计学 2024-11-27 Michael Hankin , Jay Bartroff

Several classical methods exist for controlling the false discovery exceedance (FDX) for large scale multiple testing problems, among them the Lehmann-Romano procedure ([LR] below) and the Guo-Romano procedure ([GR] below). While these two…

统计方法学 · 统计学 2019-12-11 Sebastian Döhler , Etienne Roquain

Modern applications of conformal inference to multiple testing problems, such as outlier detection and candidate selection, often involve selecting test samples whose conformal p-values fall below a threshold. The quality of such methods is…

统计方法学 · 统计学 2026-05-21 Ziang Song , Ying Jin , Emmanuel J. Candès

Controlling the false discovery rate (FDR) is a popular approach to multiple testing, variable selection, and related problems of simultaneous inference. In many contemporary applications, models are not specified by discrete variables,…

统计理论 · 数学 2024-04-16 Mateo Díaz , Venkat Chandrasekaran

In many statistical problems the hypotheses are naturally divided into groups, and the investigators are interested to perform group-level inference, possibly along with inference on individual hypotheses. We consider the goal of…

统计理论 · 数学 2021-05-20 Marina Bogomolov