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首页> 外文期刊>IEEE Transactions on Medical Imaging >A versatile wavelet domain noise filtration technique for medical imaging
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A versatile wavelet domain noise filtration technique for medical imaging

机译:一种用于医学成像的通用小波域噪声过滤技术

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摘要

We propose a robust wavelet domain method for noise filtering in medical images. The proposed method adapts itself to various types of image noise as well as to the preference of the medical expert; a single parameter can be used to balance the preservation of (expert-dependent) relevant details against the degree of noise reduction. The algorithm exploits generally valid knowledge about the correlation of significant image features across the resolution scales to perform a preliminary coefficient classification. This preliminary coefficient classification is used to empirically estimate the statistical distributions of the coefficients that represent useful image features on the one hand and mainly noise on the other. The adaptation to the spatial context in the image is achieved by using a wavelet domain indicator of the local spatial activity. The proposed method is of low complexity, both in its implementation and execution time. The results demonstrate its usefulness for noise suppression in medical ultrasound and magnetic resonance imaging. In these applications, the proposed method clearly outperforms single-resolution spatially adaptive algorithms, in terms of quantitative performance measures as well as in terms of visual quality of the images.
机译:我们提出了一种鲁棒的小波域方法,用于医学图像中的噪声过滤。所提出的方法适应各种类型的图像噪声以及医学专家的偏好。单个参数可用于平衡(专家相关)相关细节的保存与降噪程度之间的平衡。该算法利用有关分辨率范围内重要图像特征相关性的一般有效知识来执行初步系数分类。这种初步的系数分类用于根据经验估算系数的统计分布,这些系数一方面代表有用的图像特征,另一方面代表噪声。通过使用局部空间活动的小波域指示符,可以实现对图像中空间上下文的适应。所提出的方法在其实现和执​​行时间上都具有低复杂度。结果证明了其在医学超声和磁共振成像中抑制噪声的有用性。在这些应用中,就定量性能指标以及图像的视觉质量而言,所提出的方法明显优于单分辨率空间自适应算法。

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