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QR Based De-Noising Scheme for Medical Ultrasound Images

机译:基于QR的医学超声图像降噪方案

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A novel scheme based on QR decomposition is proposed in this paper to remove multiplicative noise, speckle noise, from medical ultrasound images. A speckle noisy image is segmented into small overlapping blocks. A global covariance matrix for the whole image is obtained by calculating the average of covariances of the corresponding blocks. QR decomposition is then applied to the global covariance matrix. Based on the principle of orthogonality of signal and noise, it is found that the first subset of orthogonal vectors of the Q matrix resulted from the QR decomposition is sufficient to construct a projection matrix capable of filtering out speckle noise. When it is applied to simulated and real medical ultrasound images, and with reasonable performance in terms of resolution and edge detection, the proposed approach has outperformed benchmark filtering schemes such as Wavelets, Wiener and Lee. It has secured the highest Signal to Noise Ratio (SNR) and Peak Signal to Noise Ratio (PSNR).
机译:提出了一种基于QR分解的新方案,以从医学超声图像中去除乘法噪声,斑点噪声。斑点噪声图像被分割成小的重叠块。通过计算相应块的协方差的平均值,可以获得整个图像的全局协方差矩阵。然后将QR分解应用于全局协方差矩阵。基于信号与噪声正交性的原理,发现由QR分解得到的Q矩阵正交向量的第一子集足以构成能够滤除斑点噪声的投影矩阵。当将其应用于模拟和真实医学超声图像时,在分辨率和边缘检测方面具有合理的性能时,所提出的方法的性能优于Wavelets,Wiener和Lee等基准滤波方案。它确保了最高的信噪比(SNR)和峰值信噪比(PSNR)。

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