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Finite-Horizon Quickest Change Detection Balancing Latency with False Alarm Probability

Information Theory 2025-11-18 v1 math.IT Machine Learning

Abstract

A finite-horizon variant of the quickest change detection (QCD) problem that is of relevance to learning in non-stationary environments is studied. The metric characterizing false alarms is the probability of a false alarm occurring before the horizon ends. The metric that characterizes the delay is \emph{latency}, which is the smallest value such that the probability that detection delay exceeds this value is upper bounded to a predetermined latency level. The objective is to minimize the latency (at a given latency level), while maintaining a low false alarm probability. Under the pre-specified latency and false alarm levels, a universal lower bound on the latency, which any change detection procedure needs to satisfy, is derived. Change detectors are then developed, which are order-optimal in terms of the horizon. The case where the pre- and post-change distributions are known is considered first, and then the results are generalized to the non-parametric case when they are unknown except that they are sub-Gaussian with different means. Simulations are provided to validate the theoretical results.

Keywords

Cite

@article{arxiv.2511.12803,
  title  = {Finite-Horizon Quickest Change Detection Balancing Latency with False Alarm Probability},
  author = {Yu-Han Huang and Venugopal V. Veeravalli},
  journal= {arXiv preprint arXiv:2511.12803},
  year   = {2025}
}

Comments

27 pages, 1 figure, submitted to Sequential Analysis

R2 v1 2026-07-01T07:40:09.958Z