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Bone texture characterization for osteoporosis diagnosis using digital radiography

机译:使用数字射线照相术对骨质疏松症进行骨质地表征

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We introduce texture classification techniques to effectively diagnose osteoporosis in bone radiography data. Osteoporosis is an age-related systemic bone skeletal disorder characterized by low bone mass and bone structure deterioriation that results in increased bone fragility and higher fracture risk. Therefore, early diagnosis can effectively predict fracture risk and prevent the disease. Automated diagnosis from digital radiographs is very challenging since the scans of healthy and osteoporotic subjects show little or no visual differences, and their density histograms mostly overlap. We designed a system to separate healthy from osteoporotic subjects using high-dimensional textural feature representations computed from radiographs. These features were then reduced using feature selection to obtain the more discriminant subset that was finally classified by our methods. The top performing approach yields 79.3% accuracy and 81% area under the ROC over 116 bone radiographs.
机译:我们介绍纹理分类技术,以有效地诊断骨X射线照片数据中的骨质疏松症。骨质疏松症是一种与年龄有关的全身性骨骨骼疾病,其特征是骨量低和骨骼结构恶化,导致骨骼脆弱性增加和骨折风险增加。因此,早期诊断可以有效地预测骨折风险并预防疾病。由于健康和骨质疏松受试者的扫描显示很少或没有视觉差异,并且它们的密度直方图大部分重叠,因此从数字X射线照片进行自动诊断非常困难。我们设计了一种系统,该系统使用根据X射线照片计算出的高维纹理特征表示,将健康人与骨质疏松症对象区分开。然后使用特征选择来减少这些特征,以获得更可判别的子集,该子集最终通过我们的方法进行分类。在116幅骨X线片上,性能最高的方法在ROC下的准确度为79.3%,面积为81%。

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