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Knowledge-based femur detection in conventional radiographs of the pelvis
Authors:Pilgram Roland  Walch Claudia  Blauth Michael  Jaschke Werner  Schubert Rainer  Kuhn Volker
Affiliation:

aInstitute for Applied Systems Research and Development, Medical Informatics and Technology, University for Health Sciences, A-6060 Hall in Tyrol, Austria

bDepartment of Radiology, Medical University of Innsbruck, A-6020 Innsbruck, Austria

Abstract:In this paper we present a knowledge-based femur detection algorithm. The algorithm uses femur corpus constraints, Canny edge detection and Hough lines. For optimal femur template placement in the local area we use cross-correlation. The segmentation itself is done with an optimized active shape modeling technique. Using the knowledge-based technique we have located 95% of the femur shapes of N=117 X-rays. From those 83% of the target femur shapes have been segmented successfully (point-to-point error: approximately 14 pixels, point-to-boundary error = approximately 9 pixels).
Keywords:Femur detection   Hough lines   Template initialization   Femur segmentation   Active shape modeling
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