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Texture analysis based on Gabor filters improves the estimate of bone fracture risk from DXA images

机译:基于Gabor滤波器的纹理分析可提高DXA图像对骨折风险的估计

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We investigated whether novel parameters derived from a Dual-energy X-ray absorptiometry (DXA) scan might improve fracture risk estimation. In this study, we analysed hip DXA scans from 29 older adults with a history of fragility fracture and 90 non-fractured controls. Active shape models and active appearance models were used to allow a quantitative characterisation of the shape and gross structure of the proximal femur. We also performed image texture analysis applied to various regions of interest. Feature selection was used to determine which method, or combination of methods, was best to discriminate between the fracture and control groups. Texture features derived from Gabor filters in combination with total T-score provided better estimates of risk (AUC = 0.787) than the standard measures of areal bone mineral density or total T-score alone (AUC = 0.699 and 0.692, respectively). Estimates of risk were more accurate when the texture was measured on the whole femoral neck compared to other regions.The features extracted from the active models were weaker with poor classification performance (AUC < 0.570). This study shows that image texture based on Gabor filters can complement the standard measures to improve fracture risk estimation.
机译:我们调查了从双能X射线吸收仪(DXA)扫描得出的新参数是否可以改善骨折风险估计。在这项研究中,我们分析了29位有脆性骨折病史的老年人和90名未骨折对照的髋部DXA扫描。使用活动形状模型和活动外观模型可以对股骨近端的形状和总体结构进行定量表征。我们还执行了应用于各个感兴趣区域的图像纹理分析。使用特征选择来确定哪种方法或方法的组合最能区分骨折组和对照组。从Gabor滤镜得出的纹理特征与总T分数相结合,可以提供比区域骨矿物质密度或单独的总T分数的标准度量更好的风险估计(AUC = 0.787)(分别为AUC = 0.699和0.692)。与其他区域相比,在整个股骨颈上测量纹理时风险估计更为准确,从活动模型中提取的特征较弱,分类性能较差(AUC <0.570)。这项研究表明,基于Gabor滤波器的图像纹理可以补充标准措施,以改善骨折风险估计。

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