Unsupervised multiscale color image segmentation based on MDL principle.
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Abstract
We present an unsupervised multiscale color image segmentation algorithm. The basic idea is to apply mean shift clustering to obtain an over-segmentation and then merge regions at multiple scales to minimize the minimum description length criterion. The performance on the Berkeley segmentation benchmark campares favorably with some existing approaches.
Medical subject headings
- Algorithms
- Artificial Intelligence
- Colorimetry
- Image Enhancement
- Image Interpretation, Computer-Assisted
- Information Storage and Retrieval
- Pattern Recognition, Automated