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Segmentation of Calcified Plaques in Intravascular Ultrasound Images

机译:血管内超声图像中钙化斑块的分割

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Intravascular ultrasound (IVUS) imaging is mostly used in the diagnosis and treatment of coronary artery diseases, especially in atherosclerosis, because it becomes very difficult to identify in the calcified regions manually. The IVUS images allow to visualize the inner portion of the coronary artery with enhanced resolution and also to acquire the cross-sectional images of arteries. Therefore, this paper presents a computational framework to identify the calcified region in IVUS images. In this paper, spatial fuzzy C-means approach is used to extract the exact boundary of the calcified plaque region in the IVUS images along with the wavelet transform decomposition. This clustering approach is capable of incorporating additional spatial information obtained from the neighboring pixels and also overcoming the limitations of noise and artifacts in IVUS coronary images. Several experiments have been performed on the different IVUS data and their experimental results are analyzed in terms of both quantitative and qualitative manner. The results revealed that the spatial fuzzy C-means provides better segmentation accuracy by extracting the calcified region as compared with other approaches.
机译:血管内超声(IVUS)成像大多用于冠状动脉疾病的诊断和治疗,特别是在动脉粥样硬化中,因为它变得非常难以手动鉴定在钙化区域中。 IVUS图像允许以增强的分辨率来可视化冠状动脉的内部,并且还可以获取动脉的横截面图像。因此,本文呈现了识别IVUS图像中的钙化区域的计算框架。在本文中,空间模糊C型方法用于提取IVUS图像中钙化斑块区域的精确边界以及小波变换分解。这种聚类方法能够结合从相邻像素获得的额外空间信息,并且还克服IVUS冠状动脉图像中的噪声和伪像的限制。已经对不同IVUS数据进行了几个实验,并且在定量和定性的方式方面分析了它们的实验结果。结果表明,与其他方法相比,空间模糊C型方法通过提取钙化区域提供更好的分割精度。

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