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2002 | OriginalPaper | Chapter

Class-Specific, Top-Down Segmentation

Authors : Eran Borenstein, Shimon Ullman

Published in: Computer Vision — ECCV 2002

Publisher: Springer Berlin Heidelberg

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In this paper we present a novel class-based segmentation method, which is guided by a stored representation of the shape of objects within a general class (such as horse images). The approach is different from bottom-up segmentation methods that primarily use the continuity of grey-level, texture, and bounding contours. We show that the method leads to markedly improved segmentation results and can deal with significant variation in shape and varying backgrounds. We discuss the relative merits of class-specific and general image-based segmentation methods and suggest how they can be usefully combined.

Metadata
Title
Class-Specific, Top-Down Segmentation
Authors
Eran Borenstein
Shimon Ullman
Copyright Year
2002
Publisher
Springer Berlin Heidelberg
DOI
https://doi.org/10.1007/3-540-47967-8_8

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