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Trabecular Bone Image Segmentation Using Wavelet and Marker-Controlled Watershed Transformation

机译:小波和标记控制的分水岭变换的骨小梁图像分割

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This paper presents a new strategy for the segmentation of trabecular bone image. This kind of image is acquired with microcomputed tomography (micro-CT) to assess bone microarchitecture based chiefly on bone mineral density (BMD) measurements to improve fracture risk prediction. Disease osteoporosis can be predicted from features of CT image where a bone region may consist of several disjoint pieces. It relies on a multiresolution representation of the image by the wavelet transform to compute the multiscale morphological gradient. The coefficients of detail found at the different scales are used to determine the markers and homogeneous regions that are extracted with the watershed algorithm. The method reduces the tendency of the watershed algorithm to oversegment and results in closed homogeneous regions. The performance of the proposed segmentation scheme is presented via experimental results obtained with a broad series of images.
机译:本文提出了一种新的骨小梁图像分割策略。这种图像是使用微计算机断层扫描(micro-CT)采集的,主要基于骨矿物质密度(BMD)测量来评估骨微结构,以改善骨折风险的预测。可以从CT图像的特征预测疾病骨质疏松症,其中骨骼区域可能由几个不连贯的部分组成。它依靠小波变换对图像的多分辨率表示来计算多尺度形态梯度。在不同尺度上找到的细节系数用于确定使用分水岭算法提取的标记和均质区域。该方法减少了分水岭算法过度分割的趋势,并导致封闭的均匀区域。通过使用一系列图像获得的实验结果,提出了建议的分割方案的性能。

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