Cluster-Based Vector-Attribute Filtering for CT and MRI Enhancement

Fred N. Kiwanuka, Michael H. F. Wilkinson · University of Groningen research database (University of Groningen / Centre for Information Technology) · 2012

Morphological attribute filters modify images based on properties or attributes of connected components. Usually, attribute filtering is based on a scalar property which has relatively little discriminating power. Vector-attribute filtering allow better description of characteristic features for 2D images. In this paper, we extend vector attribute filtering by incorporating unsupervised pattern recognition, where connected components are clustered based on the similarity of feature vectors. We show that the performance of these new filters is better than those of scalar attribute filters in enhancement of objects in medical volumes.

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