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Texture-Driven Coronary Artery Plaque Characterization Using Wavelet Packet Signatures

机译:小波包签名的纹理驱动冠状动脉斑块表征。

摘要

High-frequency ultrasound transducers are being widely used to generate high resolution, real time, cross-sectional images of the coronary arteries. In this paper, we present a robust unsupervised texture-derived technique based on multi-channel wavelet frames to delineate atherosclerotic plaque compositions. The intravascular ultrasound (IVUS) signals were acquired from coronary arteries dissected from 32 diseased cadaver hearts employing 40 MHz mechanically rotating, single-element transducers. The wavelet packet representations were classified using a K- means clustering algorithm to generate IVUS-histology color maps (IV-HCMs) and categorize tissues in lipidic, fibrotic and calcified. Finally, two independent observers evaluated the results contrasting the histology images corresponding to the IV-HCMs. Our results show that the proposed algorithm may have great potential as an alternative to existing spectrum-based classification techniques.
机译:高频超声换能器被广泛用于生成高分辨率,实时的冠状动脉横截面图像。在本文中,我们提出了一种基于多通道小波框架的可靠无监督纹理衍生技术来描绘动脉粥样硬化斑块成分。血管内超声(IVUS)信号是使用40 MHz机械旋转单元素换能器从32个患病尸体心脏切开的冠状动脉获取的。使用K-均值聚类算法对小波包表示进行分类,以生成IVUS组织学彩色图(IV-HCM)并将脂质,纤维化和钙化的组织分类。最后,两名独立的观察者评估了与IV-HCM对应的组织学图像进行对比的结果。我们的结果表明,所提出的算法可能具有巨大的潜力,可以替代现有的基于频谱的分类技术。

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