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Improving tibia and femur segmentation based on double labelling technique

机译:基于双标签技术改善胫骨和股骨分割

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X-Ray image contains very important information. The information is useful for medical field to diagnose or to analyze any disease or malfunctioned cell. In the analyzing of x-ray image based on computer aided application, object segmentation is very important first step, including tibia and femur segmentation which are part of knee segmentation. Segmentation based Active Shape Model (ASM) can not give perfect result for tibia and femur segmentation. Original version of ASM can not separate each object (tibia and femur) so it creates connection between two segmented object which is disturb the information for image analyzing. To solve this problem, a recovery method for segmentation result based on double labelling object is proposed. Different from other labelling techniques, double labelling technique is performed to achieve more reliable results. The proposed method is a simple to implement by using labeling each object and then removing unused object. To complete this proposed method, dilation is implemented to the two objects which is selected by certain criteria. Experimental results are performed on 10 different images. Based on experiment, it shows that the proposed method gives better result for regular form disturbing area and unused area.
机译:X射线图像包含非常重要的信息。该信息对于诊断或分析任何疾病或故障细胞的医疗领域是有用的。在基于计算机辅助应用的X射线图像的分析中,对象分割是非常重要的第一步,包括胫骨和股骨分段,这是膝部分割的一部分。基于分割的主动形状​​模型(ASM)不能为胫骨和股骨分割提供完美的结果。原始版本的ASM不能分隔每个对象(胫骨和股骨),因此它会在两个分段对象之间创建连接,这是干扰图像分析的信息。为了解决这个问题,提出了一种基于双标记对象的分割结果的恢复方法。与其他标记技术不同,执行双标签技术以实现更可靠的结果。通过使用标记每个对象然后删除未使用的对象,所提出的方法是一种简单的实现。为了完成这一提出的方法,扩张用于由某些标准选择的两个对象。实验结果在10种不同的图像上进行。基于实验,它表明,该方法为常规形式扰乱区域和未使用区域提供更好的结果。

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