Image Decomposition Model Using Curvelets and Wave Atoms

Guojun Liu
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Abstract

The aim of this paper is to combine curvelets with wave atoms by using the mixed constraints, namely smoothness of semi-norm of decomposition spaces and sparsity. It fully considers the sparse representation of curvelets and wave atoms. Curvelets are an essentially optimal representation of objects which is C^2 away from a C^2 edge, while wave atoms have a significantly sparser representation of the warped oscillatory functions or oriented textures than other fixed standard representations like wavelets, Gabor atoms, or curvelets. Moreover, the correlation of piecewise smooth component and textural component is employed as a stopping criterion to control the iterations. Experimental results and comparisons show the efficiency of the proposed models for image decomposition.
基于曲波和波原子的图像分解模型
本文的目的是利用分解空间半范数的光滑性和稀疏性的混合约束,将曲波与波原子结合起来。它充分考虑了曲线和波原子的稀疏表示。曲波本质上是距离C^2边缘C^2的物体的最佳表示,而波原子比其他固定的标准表示(如小波、Gabor原子或曲波)具有明显更稀疏的弯曲振荡函数或定向纹理表示。采用分段光滑分量和纹理分量的相关性作为停止准则来控制迭代。实验结果和比较表明了所提模型对图像分解的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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