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Pointwise Shape-Adaptive DCT for High-Quality Denoising and Deblocking of Grayscale and Color Images

机译:点状形状自适应DCT用于灰度和彩色图像的高质量去噪和去块

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The shape-adaptive discrete cosine transform (SA-DCT) transform can be computed on a support of arbitrary shape, but retains a computational complexity comparable to that of the usual separable block-DCT (B-DCT). Despite the near-optimal decorrelation and energy compaction properties, application of the SA-DCT has been rather limited, targeted nearly exclusively to video compression. In this paper, we present a novel approach to image filtering based on the SA-DCT. We use the SA-DCT in conjunction with the Anisotropic Local Polynomial Approximation—Intersection of Confidence Intervals technique, which defines the shape of the transform's support in a pointwise adaptive manner. The thresholded or attenuated SA-DCT coefficients are used to reconstruct a local estimate of the signal within the adaptive-shape support. Since supports corresponding to different points are in general overlapping, the local estimates are averaged together using adaptive weights that depend on the region's statistics. This approach can be used for various image-processing tasks. In this paper, we consider, in particular, image denoising and image deblocking and deringing from block-DCT compression. A special structural constraint in luminance-chrominance space is also proposed to enable an accurate filtering of color images. Simulation experiments show a state-of-the-art quality of the final estimate, both in terms of objective criteria and visual appearance. Thanks to the adaptive support, reconstructed edges are clean, and no unpleasant ringing artifacts are introduced by the fitted transform.
机译:可以在任意形状的支持下计算形状自适应离散余弦变换(SA-DCT)变换,但保留的计算复杂性可与常规可分离块DCT(B-DCT)相比。尽管具有近乎最佳的去相关和能量压缩特性,但SA-DCT的应用仍然受到限制,几乎专门针对视频压缩。在本文中,我们提出了一种基于SA-DCT的新型图像滤波方法。我们将SA-DCT与各向异性局部多项式逼近-置信区间相交技术结合使用,该技术以点自适应的方式定义了变换的支持形状。阈值或衰减的SA-DCT系数用于在自适应形状支持内重建信号的局部估计。由于对应于不同点的支持通常重叠,因此使用取决于区域统计信息的自适应权重将局部估计值平均在一起。这种方法可以用于各种图像处理任务。在本文中,我们特别考虑了图像去噪,图像去块和块DCT压缩的去环。还提出了亮度-色度空间中的特殊结构约束,以实现对彩色图像的精确过滤。仿真实验在客观标准和视觉外观方面均显示了最终估算的最新质量。得益于自适应支持,重建的边缘很干净,并且拟合的变换不会引入令人不快的振铃伪影。

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