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New Orthogonal Multiwavelet Filters Derived by Matrix Spectral Factorization

Vasil Kolev, Todor Cooklev, Fritz Keinert

arXiv:2608.11518Published August 12, 20260 citations
  • cs.CV
  • cs.DB
  • math.NA
  • stat.AP

Abstract

The paper considers the construction of two new orthogonal multiwavelets with supercompact support by using the Fast Bauer's method for matrix spectral factorization on the matrix product filter of the orthogonal CL multiwavelet filter. The new multiwavelets possess orthogonality, symmetry/antisymmetry, and one of them provides better coding and smoothness than other supercompact multiwavelets. The performance of the new multiwavelet filters in subband-based edge detection, grayscale and color image compression and 1D and 2D signal denoising is compared with the GHM, SA4, CL, Integer Haar and Alpert multifilters. The comparative analysis shows that new multiwavelets can provides better human visual measures, SSIM and MS-SSIM in image compression and denoising applications.

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