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Automated Characterization of Atheromatous Plaque in Intravascular Ultrasound Images Using Neuro Fuzzy Classifier

机译:使用神经模糊分类器自动表征血管内超声图像中的动脉粥样硬化斑块

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摘要

The medical imaging field has grown significantly in recent years and demands high accuracy since it deals with human life. The idea is to reduce human error as much as possible by assisting physicians and radiologists with some automatic techniques. The use of artificial intelligent techniques has shown great potential in this field. Hence, in this paper the neuro fuzzy classifier is applied for the automated characterization of atheromatous plaque to identify the fibrotic, lipidic and calcified tissues in Intravascular Ultrasound images (IVUS) which is designed using sixteen inputs, corresponds to sixteen pixels of instantaneous scanning matrix, one output that tells whether the pixel under consideration is Fibrotic, Lipidic, Calcified or Normal pixel. The classification performance was evaluated in terms of sensitivity, specificity and accuracy and the results confirmed that the proposed system has potential in detecting the respective plaque with the average accuracy of 98.9%.
机译:近年来,医学成像领域取得了长足的发展,因为它涉及人类生活,因此要求高精度。这个想法是通过协助医师和放射科医生使用一些自动技术来尽可能减少人为错误。人工智能技术的使用在该领域显示出巨大的潜力。因此,在本文中,将神经模糊分类器用于动脉粥样斑块的自动表征,以识别使用16个输入设计的血管内超声图像(IVUS)中的纤维化,脂质和钙化组织,对应于瞬时扫描矩阵的16个像素,一种输出,它指示所考虑的像素是纤维变性,脂质,钙化还是正常像素。根据敏感性,特异性和准确性对分类性能进行了评估,结果证实了所提出的系统有潜力以98.9%的平均准确度检测相应的噬菌斑。

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