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Abstract #0822

k-Means Segmentation of Kidney Cortex & Medulla for BOLD Images

Yin Huang1, Nathan Hanson1, Elizabeth Sadowski2, David Niles1, Nathan Artz1, Arjang Djamali3, Thomas Grist1,2, Sean Fain1,2

1Medical Physics, University of Wisconsin Madison, Madison, WI, United States; 2Radiology, University of Wisconsin Madison, Madison, WI, United States; 3Nephrology, University of Wisconsin Madison, Madison, WI, United States


The k-means segmentation method was implemented to semi-automatically segment kidney cortex and medulla for MR BOLD images of 6 subjects. By acquiring an extra T1 weighted image, k-means segmentation was performed based on two kidney feature values -- T1 and T2* weighted signal intensities. Manual segmentation results on the same subjects were used as reference and sensitivity and specificity measures were calculated to evaluate the quality of the k-means segmentation.

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