Detecting Abrupt Changes in Sequential Pairwise Comparison Data
Wanshan Li, Alessandro Rinaldo, Daren Wang
摘要
The Bradley-Terry-Luce (BTL) model is a classic and very popular statistical approach for eliciting a global ranking among a collection of items using pairwise comparison data. In applications in which the comparison outcomes are observed as a time series, it is often the case that data are non-stationary, in the sense that the true underlying ranking changes over time. In this paper we are concerned with localizing the change points in a high-dimensional BTL model with piecewise constant parameters. We propose novel and practicable algorithms based on dynamic programming that can consistently estimate the unknown locations of the change points. We provide consistency rates for our methodology that depend explicitly on the model parameters, the temporal spacing between two consecutive change points and the magnitude of the change. We corroborate our findings with extensive numerical experiments and a real-life example. 36th Conference on Neural Information Processing Systems (NeurIPS 2022).
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- Divide and Conquer Dynamic Programming: An Almost Linear Time Change Point Detection Methodology in High DimensionsWanshan Li, Daren Wang, Alessandro RinaldoICML 2023 · 被引用 3 次
- Preference-Based Dynamic Ranking Structure RecognitionNan Lu, Jian Shi, Xinyu TianNeurIPS 2025
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