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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part H. Journal of Engineering in Medicine >Automated classification of articular cartilage surfaces based on surface texture
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Automated classification of articular cartilage surfaces based on surface texture

机译:基于表面纹理自动对关节软骨表面进行分类

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摘要

In this study the automated classification system previously developed by the authors was used to classify articular cartilage surfaces with different degrees of wear. This automated system classifies surfaces based on their texture. Plug samples of sheep cartilage (pins) were run on stainless steel discs under various conditions using a pin-on-disc tribometer. Testing conditions were specifically designed to produce different severities of cartilage damage due to wear. Environmental scanning electron microscope (SEM) (ESEM) images of cartilage surfaces, that formed a database for pattern recognition analysis, were acquired. The ESEM images of cartilage were divided into five groups (classes), each class representing different wear conditions or wear severity. Each class was first examined and assessed visually. Next, the automated classification system (pattern recognition) was applied to all classes. The results of the automated surface texture classification were compared to those based on visual assessment of surface morphology. It was shown that the texture-based automated classification system was an efficient and accurate method of distinguishing between various cartilage surfaces generated under different wear conditions. It appears that the texture-based classification method has potential to become a useful tool in medical diagnostics.
机译:在这项研究中,作者先前开发的自动分类系统用于对磨损程度不同的关节软骨表面进行分类。该自动化系统根据表面纹理对表面进行分类。使用销盘式摩擦计在各种条件下在不锈钢圆盘上对绵羊软骨(销)的塞子样品进行分析。测试条件经过专门设计,可产生不同程度的磨损造成的软骨损伤。获取软骨表面的环境扫描电子显微镜(SEM)(ESEM)图像,该图像形成了用于模式识别分析的数据库。软骨的ESEM图像分为五个组(类别),每个类别代表不同的磨损状况或磨损严重程度。首先对每节课进行目视检查和评估。接下来,将自动分类系统(模式识别)应用于所有类别。自动表面纹理分类的结果与基于表面形态的视觉评估的结果进行了比较。结果表明,基于纹理的自动分类系统是一种区分不同磨损条件下产生的各种软骨表面的有效且准确的方法。似乎基于纹理的分类方法有可能成为医学诊断中的有用工具。

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