Automatic atlas-based three-label cartilage segmentation from MR knee images | IEEE Conference Publication | IEEE Xplore

Automatic atlas-based three-label cartilage segmentation from MR knee images


Abstract:

This paper proposes a method to build a bone-cartilage atlas of the knee and to use it to automatically segment femoral and tibial cartilage from T1 weighted magnetic res...Show More

Abstract:

This paper proposes a method to build a bone-cartilage atlas of the knee and to use it to automatically segment femoral and tibial cartilage from T1 weighted magnetic resonance (MR) images. Anisotropic spatial regularization is incorporated into a three-label segmentation framework to improve segmentation results for the thin cartilage layers. We jointly use the atlas information and the output of a probabilistic k nearest neighbor classifier within the segmentation method. The resulting cartilage segmentation method is fully automatic. Validation results on 18 knee MR images against manual expert segmentations from a dataset acquired for osteoarthritis research show good performance for the segmentation of femoral and tibial cartilage (mean Dice similarity coefficient of 78.2% and 82.6% respectively).
Date of Conference: 09-10 January 2012
Date Added to IEEE Xplore: 09 March 2012
ISBN Information:
PubMed ID: 23685704
Conference Location: Breckenridge, CO, USA

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