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Nonlocal Means-Based Speckle Filtering for Ultrasound Images

机译:基于非局部均值的超声图像斑点滤波

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摘要

In image processing, restoration is expected to improve the qualitative inspection of the image and the performance of quantitative image analysis techniques. In this paper, an adaptation of the nonlocal (NL)-means filter is proposed for speckle reduction in ultrasound (US) images. Originally developed for additive white Gaussian noise, we propose to use a Bayesian framework to derive a NL-means filter adapted to a relevant ultrasound noise model. Quantitative results on synthetic data show the performances of the proposed method compared to well-established and state-of-the-art methods. Results on real images demonstrate that the proposed method is able to preserve accurately edges and structural details of the image.
机译:在图像处理中,修复有望改善图像的定性检查和定量图像分析技术的性能。在本文中,提出了一种非局部(NL)均值滤波器的自适应方法,用于减少超声(US)图像中的斑点。最初是针对加性高斯白噪声而开发的,我们建议使用贝叶斯框架来导出适合于相关超声噪声模型的NL-均值滤波器。综合数据的定量结果表明,与已建立的先进方法相比,该方法的性能更高。在真实图像上的结果表明,所提出的方法能够准确地保留图像的边缘和结构细节。

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