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Automatic boundary extraction and rectification of bony tissue in CT images using artificial intelligence techniques

机译:使用人工智能技术自动边界提取和CT图像中骨组织的整流

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A novel approach is presented for fully automated boundary extraction and rectification of bony tissue from planar CT data. The approach extracts and rectifies feature boundary in a hierarchical fashion. It consists of a fuzzy multilevel thresholding operation, followed by a small void cleanup procedure. Then a binary morphological boundary detector is applied to extract the boundary. However, defective boundaries and undesirable artifacts may still be present. Thus two innovative anatomical knowledge based algorithms are used to remove the undesired structures and refine the erroneous boundary. Results of applying the approach on lumbar CT images are presented, with a discussion of the potential for clinical application of the approach.
机译:提出了一种新的方法,用于从平面CT数据进行全自动边界提取和整流骨组织的整流。该方法以分层方式提取和整流特征边界。它由模糊多级阈值操作组成,然后是小型空转清理程序。然后应用二元形态边界检测器来提取边界。然而,仍然存在有缺陷的边界和不期望的伪影。因此,使用两种创新的解剖学知识的算法用于去除不期望的结构并细化错误的边界。展示了应用方法的方法,讨论了该方法的临床应用的潜力。

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