基于期望最大化的非锐利掩蔽的超声b扫描图像去噪

Theerawit Wilaiprasitporn, C. Chinrungrueng, W. Asdornwised
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引用次数: 3

摘要

在本文中,我们提出了一种基于非尖锐掩蔽的方法,随后的双边滤波阶段对超声(US)图像进行噪声平滑。在我们的第一个处理阶段,我们提出通过EM图像分割来隔离两个像素种群,而不是将原始图像分为低频和高频组件。我们提出的方法然后通过移动两个像素人口的平均值彼此远离来增强边缘。这与传统的非尖锐掩蔽结构类似,只是概念被重新表述并在概率设置中工作。在第二阶段,我们使用双边滤波来衰减平坦区域中保留的噪声。基于几个主要的图像质量指标,如信噪比(SNR)和噪声对比比(CNR),对合成和真实临床b扫描图像的性能进行了评估。与传统的美国图像去斑方法相比,该方法的性能有所提高。CNR-SNR的性能权衡也在这里首次得到解决。
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Ultrasound b-scans image denoising via expectation maximization-based unsharp masking
In this paper, we present an unsharp masking-based approach with subsequent bilateral filtering stage to noise smoothing of ultrasound (US) image. At our first processing stage, we propose image segmentation via EM to segregate two pixels populations instead of separating original image into the low- and high-frequency components. Our proposed method then enhances the edge by shifting the mean of the two pixels populations away from each other. This is similar to the conventional unsharp masking structure, except that the concept is reformulated and worked in probabilistic setting. At our second stage, we use bilateral filtering to attenuate the retained noise in the flat areas. Performance of synthetic and real clinical B-scan US images based on several dominant image quality measures, e.g., signal-to-noise ratio (SNR) and contrast-to-noise-ratio (CNR), is evaluated. The performance is improved over the conventional US image despeckling methods. The CNR-SNR performance tradeoff is also addressed here for the first time.
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