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The Discrete Shearlet Transform: A New Directional Transform and Compactly Supported Shearlet Frames

机译:离散Shearlet变换:一种新的方向变换和紧凑支撑的Shearlet框架

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摘要

It is now widely acknowledged that analyzing the intrinsic geometrical features of the underlying image is essential in many applications including image processing. In order to achieve this, several directional image representation schemes have been proposed. In this paper, we develop the discrete shearlet transform (DST) which provides efficient multiscale directional representation and show that the implementation of the transform is built in the discrete framework based on a multiresolution analysis (MRA). We assess the performance of the DST in image denoising and approximation applications. In image approximations, our approximation scheme using the DST outperforms the discrete wavelet transform (DWT) while the computational cost of our scheme is comparable to the DWT. Also, in image denoising, the DST compares favorably with other existing transforms in the literature.
机译:现在已被广泛认可,分析底层图像的固有几何特征在包括图像处理在内的许多应用中至关重要。为了实现这一点,已经提出了几种定向图像表示方案。在本文中,我们开发了可提供有效多尺度方向表示的离散剪切波变换(DST),并表明该变换的实现是在基于多分辨率分析(MRA)的离散框架中构建的。我们评估DST在图像去噪和逼近应用中的性能。在图像逼近中,我们使用DST的逼近方案优于离散小波变换(DWT),而我们的方案的计算成本与DWT相当。同样,在图像去噪中,DST与文献中其他现有的转换相比具有优势。

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