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A Discrete Measure for Debiased Feature Grouping: A Limit of Moreau-Enhanced OSCAR Regularizer and Its Proximity Operator

Research output: Chapter in Book/Report/Conference proceedingConference contribution

Abstract

Octagonal shrinkage and clustering algorithm for regression (OSCAR) is an effective method for feature grouping, which aims to select important highly-correlated groups of features relevant to the observations. Unfortunately, it is known that OSCAR may cause estimation bias, which is undesirable for many applications. Whereas the Moreau enhancement of convex regularizers promoting sparsity or low-rankness has been studied extensively to reduce the estimation bias, its use in the feature grouping task still remains unexplored. In this paper, we investigate the debiasing effect of the discrete measure defined by a limit of the Moreau-enhanced OSCAR regularizer, which is referred to as the LME-OSCAR regularizer. The proximity operator of the LME-OSCAR regularizer can be computed efficiently by using the dynamic programming. Numerical examples demonstrate the efficacy of the proposed discrete measure.

Original languageEnglish
Title of host publication2025 33rd European Signal Processing Conference, EUSIPCO 2025 - Proceedings
PublisherEuropean Signal Processing Conference, EUSIPCO
Pages2467-2471
Number of pages5
ISBN (Electronic)9789464593624
DOIs
Publication statusPublished - 2025
Event33rd European Signal Processing Conference, EUSIPCO 2025 - Palermo, Italy
Duration: 2025 Sept 82025 Sept 12

Publication series

NameEuropean Signal Processing Conference
ISSN (Print)2219-5491

Conference

Conference33rd European Signal Processing Conference, EUSIPCO 2025
Country/TerritoryItaly
CityPalermo
Period25/9/825/9/12

Keywords

  • feature grouping
  • Moreau enhancement
  • OSCAR
  • proximity operator

ASJC Scopus subject areas

  • Signal Processing
  • Electrical and Electronic Engineering

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