Paper
26 October 1999 Multiscale shape analysis: beyond the normality and independence of noise
Yun He, A. Hamid Krim
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Abstract
In this paper, we propose a new algorithm for extracting a non smooth shape from its noisy observation. The key ideal is to project the noisy shape onto a set of orthogonal subspaces at different resolutions, and construct scale space representation gleaned from the locally smoothed shape. Using the curvature we proceed to filter the high resolution scale subspace by projecting it onto the scale which is in turn used for the reconstruction. Inspired by the conjugate mirror filter and the wavelet decomposition synergy, we propose a curvature based filter operating at different scales and with minimal knowledge about the noise statistics.
© (1999) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Yun He and A. Hamid Krim "Multiscale shape analysis: beyond the normality and independence of noise", Proc. SPIE 3813, Wavelet Applications in Signal and Image Processing VII, (26 October 1999); https://doi.org/10.1117/12.366783
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Cited by 1 scholarly publication.
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KEYWORDS
Wavelets

Stars

Shape analysis

Image processing

Solids

Optical filters

Signal processing

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