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Ultrasound image denoising via maximum a posteriori estimation of wavelet coefficients

机译:超声图像通过最大的小波系数的后验估计去噪

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Speckle noise removal by means of digital image processors could improve the diagnostic potential of medical ultrasound. This paper addresses the speckle suppression issue within the framework of wavelet analysis. As a first step of our approach, the logarithm of the original image is decomposed into several scales through a multiresolution analysis employing the 2-D wavelet transform. Then, we design a maximum a posteriori (MAP) estimator, which relies on a recently introduced statistical representation for the wavelet coefficients of ultrasound images [1]. We use an alpha-stable model to develop a blind noise-removal processor that performs a non-linear operation on the data. Finally, we compare our technique to current state-of-the-art denoising methods applied on actual ultrasound Images and we find it more effective, both in terms of speckle reduction and signal detail preservation.
机译:通过数字图像处理器散斑噪声拆除可以提高医学超声的诊断潜力。本文在小波分析框架内解决了斑点抑制问题。作为我们方法的第一步,通过采用2-D小波变换的多分辨率分析,原始图像的对数分解成几种尺度。然后,我们设计最大的后验(MAP)估计器,其依赖于最近引入的超声图像的小波系数的统计表示[1]。我们使用alpha-stable模型来开发盲目噪声除载处理器,该处理器对数据执行非线性操作。最后,我们将我们的技术与当前应用于实际超声图像上的最先进的去噪方法,我们发现它更有效,无论是散斑还原和信号细节保存。

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