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  3. Robust Proximal Femur Segmentation in Conventional X-Ray Images via Random Forest Regression on Multi-resolution Gradient Features
 

Robust Proximal Femur Segmentation in Conventional X-Ray Images via Random Forest Regression on Multi-resolution Gradient Features

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BORIS DOI
10.48350/46492
Publisher DOI
10.1007/978-3-642-39094-4_50
Description
In this paper, we propose a fully automatic, robust approach for segmenting proximal femur in conventional X-ray images. Our method is based on hierarchical landmark detection by random forest regression, where the detection results of 22 global landmarks are used to do the spatial normalization, and the detection results of the 59 local landmarks serve as the image cue for instantiation of a statistical shape model of the proximal femur. To detect landmarks in both levels, we use multi-resolution HoG (Histogram of Oriented Gradients) as features which can achieve better accuracy and robustness. The efficacy of the present method is demonstrated by experiments conducted on 150 clinical x-ray images. It was found that the present method could achieve an average point-to-curve error of 2.0 mm and that the present method was robust to low image contrast, noise and occlusions caused by implants.
Date of Publication
2013
Publication Type
Conference Item
Subject(s)
500 Science > 570 Life sciences; biology
600 Technology > 610 Medicine & health
Language(s)
en
Contributor(s)
Chen, Cheng
Institut für chirurgische Technologien und Biomechanik (ISTB)
Zheng, Guoyanorcid-logo
Institut für chirurgische Technologien und Biomechanik (ISTB)
Editor(s)
Kamel, Mohamed
Campilho, Aurelio
Additional Credits
Institut für chirurgische Technologien und Biomechanik (ISTB)
Publisher
Springer
ISBN
978-3-642-39093-7
Title of Event
10th International Conference, ICIAR 2013, Proceedings
Access(Rights)
restricted
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