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Sparse overcomplete Gabor wavelet representation based on local competitions

机译:基于局部竞争的稀疏超完备Gabor小波表示

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Gabor representations present a number of interesting properties despite the fact that the basis functions are nonorthogonal and provide an overcomplete representation or a nonexact reconstruction. Overcompleteness involves an expansion of the number of coefficients in the transform domain and induces a redundancy that can be further reduced through computational costly iterative algorithms like Matching Pursuit. Here, a biologically plausible algorithm based on competitions between neighboring coefficients is employed for adaptively representing any source image by a selected subset of Gabor functions. This scheme involves a sharper edge localization and a significant reduction of the information redundancy, while, at the same time, the reconstruction quality is preserved. The method is characterized by its biological plausibility and promising results, but it still requires a more in depth theoretical analysis for completing its validation.
机译:尽管基函数是非正交的,并且提供了不完全的表示或非精确的重构,但Gabor表示仍具有许多有趣的特性。超完备性会导致变换域中的系数数量增加,并导致冗余,而冗余度可以通过像Matching Pursuit这样的计算成本高的迭代算法来进一步减少。这里,基于相邻系数之间的竞争的生物学上合理的算法被用于通过Gabor函数的选定子集自适应地表示任何源图像。该方案涉及更尖锐的边缘定位和显着减少的信息冗余,同时,保留了重建质量。该方法的特点是其生物学合理性和令人鼓舞的结果,但仍需要更深入的理论分析以完成其验证。

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