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Generalized selection weighted vector filters

  • Rastislav Lukac
  • , Konstantinos N. Platanlotis
  • , Bogdan Smolka
  • , Anastasios N. Venetsanopoulos
  • University of Toronto

Research output: Contribution to journalArticlepeer-review

64 Citations (Scopus)

Abstract

This paper introduces a class of nonlinear multichannel filters capable of removing impulsive noise in color images. The here-proposed generalized selection weighted vector filter class constitutes a powerful filtering framework for multichannel signal processing, Previously denned multichannel filters such as vector median niter, basic vector directional filter, directional-distance filter, weighted vector median filters, and weighted vector directional filters are treated from a global viewpoint using the proposed framework. Robust order-statistic concepts and increased degree of freedom in filter design make the proposed method attractive for a variety of applications. Introduced multichannel sigmoidal adaptation of the filter parameters and its modifications allow to accommodate the filter parameters to varying signal and noise statistics. Simulation studies reported in this paper indicate that the proposed filter class is computationally attractive, yields excellent performance, and is able to preserve fine details and color information while efficiently suppressing impulsive noise. This paper is an extended version of the paper by Lukac et al. presented at the 2003 IEEE-EURASIP Workshop on Nonlinear Signal and Image Processing (NSIP '03) in Grado, Italy.

Original languageEnglish
Pages (from-to)1870-1885
Number of pages16
JournalEurasip Journal on Applied Signal Processing
Volume2004
Issue number12
DOIs
Publication statusPublished - 15 Sept 2004

Keywords

  • Adaptive filter design
  • Color image processing
  • Multichannel image processing
  • Noise removal
  • Nonlinear vector filtering
  • Order-statistic theory

ASJC Scopus subject areas

  • Signal Processing
  • Hardware and Architecture
  • Electrical and Electronic Engineering

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