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Fully Automatic Segmentation of Hip CT Images

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BORIS DOI
10.7892/boris.75229
Publisher DOI
10.1007/978-3-319-23482-3_5
Description
Automatic segmentation of the hip joint with pelvis and proximal femur surfaces from CT images is essential for orthopedic diagnosis and surgery. It remains challenging due to the narrowness of hip joint space, where the adjacent surfaces of acetabulum and femoral head are hardly distinguished from each other. This chapter presents a fully automatic method to segment pelvic and proximal femoral surfaces from hip CT images. A coarse-to-fine strategy was proposed to combine multi-atlas segmentation with graph-based surface detection. The multi-atlas segmentation step seeks to coarsely extract the entire hip joint region. It uses automatically detected anatomical landmarks to initialize and select the atlas and accelerate the segmentation. The graph based surface detection is to refine the coarsely segmented hip joint region. It aims at completely and efficiently separate the adjacent surfaces of the acetabulum and the femoral head while preserving the hip joint structure. The proposed strategy was evaluated on 30 hip CT images and provided an average accuracy of 0.55, 0.54, and 0.50 mm for segmenting the pelvis, the left and right proximal femurs, respectively.
Date of Publication
2016
Publication Type
Book Section
Subject(s)
500 Science > 570 Life sciences; biology
600 Technology > 610 Medicine & health
Language(s)
en
Contributor(s)
Chu, Chengwen
Bai, Junjie
Wu, Xiaodong
Zheng, Guoyanorcid-logo
Institut für chirurgische Technologien und Biomechanik (ISTB)
Editor(s)
Zheng, Guoyan
Li, Shuo
Additional Credits
Institut für chirurgische Technologien und Biomechanik (ISTB)
Publisher
Springer
ISSN
2212-9391
ISBN
978-3-319-23481-6
Book Title
Computational Radiology for Orthopaedic Interventions
Access(Rights)
restricted
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