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Combining spatial and scale-space techniques for edge detection to provide a spatially adaptive wavelet-based noise filtering algorithm

机译:结合空间和尺度空间技术进行边缘检测,以提供基于空间自适应小波的噪声滤波算法

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New methods for detecting edges in an image using spatial and scale-space domains are proposed. A priori knowledge about geometrical characteristics of edges is used to assign a probability factor to the chance of any pixel being on an edge. An improved double thresholding technique is introduced for spatial domain filtering. Probabilities that pixels belong to a given edge are assigned based on pixel similarity across gradient amplitudes, gradient phases and edge connectivity. The scale-space approach uses dynamic range compression to allow wavelet correlation over a wider range of scales. A probabilistic formulation is used to combine the results obtained from filtering in each domain to provide a final edge probability image which has the advantages of both spatial and scale-space domain methods. Decomposing this edge probability image with the same wavelet as the original image permits the generation of adaptive filters that can recognize the characteristics of the edges in all wavelet detail and approximation images regardless of scale. These matched filters permit significant reduction in image noise without contributing to edge distortion. The spatially adaptive wavelet noise-filtering algorithm is qualitatively and quantitatively compared to a frequency domain and two wavelet based noise suppression algorithms using both natural and computer generated noisy images.
机译:提出了使用空间域和尺度空间域检测图像边缘的新方法。关于边缘的几何特性的先验知识用于将概率因子分配给任何像素在边缘上的机会。引入了一种改进的双阈值技术来进行空间域滤波。基于跨梯度幅度,梯度相位和边缘连通性的像素相似度,分配像素属于给定边缘的概率。尺度空间方法使用动态范围压缩,以允许在更宽范围的尺度上进行小波相关。概率公式用于组合从每个域中的滤波获得的结果,以提供最终的边缘概率图像,该图像具有空间域和比例空间域方法的优点。用与原始图像相同的小波分解该边缘概率图像,可以生成自适应滤波器,该滤波器可以识别所有小波细节图像和近似图像中边缘的特征,而无需考虑比例。这些匹配的滤波器可以显着降低图像噪声,而不会造成边缘失真。将空间自适应小波噪声滤波算法与频域进行定性和定量比较,并使用自然噪声和计算机生成的噪声图像,对两种基于小波的噪声抑制算法进行比较。

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