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Most Influential CVPR 1997 Paper · 2026-03 edition

Robust Analysis Of Feature Spaces: Color Image Segmentation

D. Comaniciu and P. Meer

Venue
IEEE Conference on Computer Vision and Pattern Recognition (CVPR) 1997
Recognition
Most Influential CVPR 1997 Paper (Rank No. 11)
Edition
2026-03
Impact factor
8
Certificate ID
b0adfd2602a24e19

Abstract

A general technique for the recovery of significant image features is presented. The technique is based on the mean shift algorithm, a simple nonparametric procedure for estimating density gradients. Drawbacks of the current methods (including robust clustering) are avoided. Feature space of any nature can be processed, and as an example, color image segmentation is discussed. The segmentation is completely autonomous, only its class is chosen by the user. Thus, the same program can produce a high quality edge image, or provide, by extracting all the significant colors, a preprocessor for content-based query systems. A 512/spl times/512 color image is analyzed in less than 10 seconds on a standard workstation. Gray level images are handled as color images having only the lightness coordinate.

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