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Spectral transform-based nonlinear restoration of medical images: algorithms and comparative evaluation

机译:基于光谱变换的医学图像的非线性恢复:算法和比较评估

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In this paper, we derive algorithms for noise reduction and image enhancement using spectral amplitude estimation. The algorithms are based on a short space spectral analysis by either the DFT, the DCT or the Modulated Lapped Transform (MLT). We apply these algorithms to low-dose X-ray images acquired in a medical imaging modality called fluoroscopy. Giving moving images in real time, only low dose rates can be used to protect humans from extensive exposure. Low X-ray quantum counts associated with such low doses then result in considerable degradations of image quality through quantum noise (QN). Spectral-domain filtering allows specific tailoring of the algorithms to the two prominent properties of QN, viz. signal dependence and a lowpass shaped, nonwhite noise power spectrum. A comparison shows that the DFT performs best and even allows to detect orientation, while the DCT and MLT perform similarly to each other, with the MLT being least computationally demanding. The noise reduction achieved is about 5-6 dB.
机译:在本文中,我们使用光谱幅度估计来实现降噪和图像增强的算法。算法基于DFT,DCT或调制的叠加变换(MLT)的短空间谱分析。我们将这些算法应用于在称为荧光透视的医学成像模态中获取的低剂量X射线图像。实时提供运动图像,只能使用低剂量率来保护人类免受广泛的曝光。与诸如低剂量相关的低X射线量子计数,然后通过量子噪声(Qn)导致图像质量的相当大降低。光谱域滤波允许将算法的特定剪裁到QN,VIZ的两个突出特性。信号依赖性和低通形,非白噪声功率谱。比较表明DFT执行最佳且甚至允许检测方向,而DCT和MLT相对于彼此同样执行,则MLT是最小的计算所需的。实现的降噪约为5-6 dB。

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