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Most Influential CVPR 1989 Paper · 2026-03 edition

Parametrically Deformable Contour Models

L. H. Staib and J. S. Duncan

Venue
IEEE Conference on Computer Vision and Pattern Recognition (CVPR) 1989
Recognition
Most Influential CVPR 1989 Paper (Rank No. 13)
Edition
2026-03
Impact factor
4
Certificate ID
a9d31f37e2b501e4

Abstract

Segmentation using boundary finding is enhanced both by considering the boundary as a whole and by using model-based shape information. Flexible constraints, in the form of a probabilistic deformable model, are applied to the problem of segmenting natural objects whose diversity and irregularity of shape makes them poorly represented in terms of fixed features of forms. The parametric model is based on the elliptic Fourier decomposition of the boundary. The segmentation problem is solved as an optimization problem, where the best match between the boundary (as defined by the parameter vector) and the image data is found. Initial experimentation shows good results on a variety of images.<>

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