作者
T Tony Cai, Wenguang Sun
发表日期
2017/1
期刊
Journal of the Royal Statistical Society Series B: Statistical Methodology
卷号
79
期号
1
页码范围
197-223
出版商
Oxford University Press
简介
A common feature in large-scale scientific studies is that signals are sparse and it is desirable to narrow down significantly the focus to a much smaller subset in a sequential manner. We consider two related data screening problems: one is to find the smallest subset such that it virtually contains all signals and another is to find the largest subset such that it essentially contains only signals. These screening problems are closely connected to but distinct from the more conventional signal detection or multiple-testing problems. We develop phase transition diagrams to characterize the fundamental limits in simultaneous inference and derive data-driven screening procedures which control the error rates with near optimality properties. Applications in the context of multistage high throughput studies are discussed.
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