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Directionlets: anisotropic multidirectional representation with separable filtering

机译:Directionlets:具有可分离滤波的各向异性多向表示

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In spite of the success of the standard wavelet transform (WT) in image processing in recent years, the efficiency of its representation is limited by the spatial isotropy of its basis functions built in the horizontal and vertical directions. One-dimensional (1-D) discontinuities in images (edges and contours) that are very important elements in visual perception, intersect too many wavelet basis functions and lead to a nonsparse representation. To efficiently capture these anisotropic geometrical structures characterized by many more than the horizontal and vertical directions, a more complex multidirectional (M-DIR) and anisotropic transform is required. We present a new lattice-based perfect reconstruction and critically sampled anisotropic M-DIR WT. The transform retains the separable filtering and subsampling and the simplicity of computations and filter design from the standard two-dimensional WT, unlike in the case of some other directional transform constructions (e.g., curvelets, contourlets, or edgelets). The corresponding anisotropic basis functions (directionlets) have directional vanishing moments along any two directions with rational slopes. Furthermore, we show that this novel transform provides an efficient tool for nonlinear approximation of images, achieving the approximation power O(N/sup -1.55/), which, while slower than the optimal rate O(N/sup -2/), is much better than O(N/sup -1/) achieved with wavelets, but at similar complexity.
机译:尽管近年来标准小波变换(WT)在图像处理中取得了成功,但其表示效率却受到其在水平和垂直方向上建立的基本函数的空间各向同性的限制。图像(边缘和轮廓)中的一维(1-D)不连续性是视觉感知中非常重要的元素,与太多的小波基函数相交并导致显示不稀疏。为了有效地捕获这些具有比水平和垂直方向更多的特征的各向异性几何结构,需要更复杂的多向(M-DIR)和各向异性变换。我们提出了一种新的基于晶格的完美重建和临界采样各向异性M-DIR WT。与某些其他方向变换构造(例如Curvelet,Contourlet或Edgelets)不同的是,该变换保留了可分离的滤波和子采样以及标准二维WT的计算和滤波器设计的简单性。相应的各向异性基函数(方向波)沿任意两个方向具有有理斜率的方向消失力矩。此外,我们证明了这种新颖的变换为图像的非线性逼近提供了一种有效的工具,可实现逼近度O(N / sup -1.55 /),该速度比最佳速率O(N / sup -2 /)慢,比用小波获得的O(N / sup -1 /)好得多,但是复杂度相似。

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