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Computing Valid p-value for Optimal Changepoint by Selective Inference using Dynamic Programming

21 Feb 2020NeurIPS 2020 12arXiv:2002.09132archive 2025-07-28

Vo Nguyen Le Duy, Hiroki Toda, Ryota Sugiyama, Ichiro Takeuchi

There is a vast body of literature related to methods for detecting changepoints (CP). However, less attention has been paid to assessing the statistical reliability of the detected CPs. In this paper, we introduce a novel method to perform statistical inference on the significance of the CPs, estimated by a Dynamic Programming (DP)-based optimal CP detection algorithm. Based on the selective inference (SI) framework, we propose an exact (non-asymptotic) approach to compute valid p-values for testing the significance of the CPs. Although it is well-known that SI has low statistical power because of over-conditioning, we address this disadvantage by introducing parametric programming techniques. Then, we propose an efficient method to conduct SI with the minimum amount of conditioning, leading to high statistical power. We conduct experiments on both synthetic and real-world datasets, through which we offer evidence that our proposed method is more powerful than existing methods, has decent performance in terms of computational efficiency, and provides good results in many practical applications.

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2ran · honoured contract
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fill_dp_matrix vonguyenleduy/parametric_si_optimal_cp_dp/core_parametric_si_k_fixed/dp_parametrized_x.py community (archive-listed) unverified licence not identified · pointer only · 18ebe02e340d2d46 · report
fill_row_k vonguyenleduy/parametric_si_optimal_cp_dp/core_parametric_si_k_fixed/dp_parametrized_x.py community (archive-listed) unverified licence not identified · pointer only · 8f2cd2e21a00ed7e · report
find_opt_funct_set vonguyenleduy/parametric_si_optimal_cp_dp/core_parametric_si_k_fixed/dp_parametrized_x.py community (archive-listed) unverified licence not identified · pointer only · 899c86d5b85a7eca · report

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