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On the simplification of multi-focus image fusion using dictionary-based sparse representation

机译:基于字典的稀疏表示的多焦点图像融合的简化

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This paper proposes a fast implementation for multi-focus image fusion using dictionary-based sparse representation. The proposed method reduces the computation complexity of the method in [1] by synthesizing feature signals from the trained sparse coefficient feature vectors for classifying each pixel in a source image as focused or defocused, which help remove the computation of the OMP algorithm [3] in [1]. As a result, the complexity of the proposed method can be only 1/100 of [1]. Simulation results further demonstrate that the fused image of the proposed method has the same quality as that of [1].
机译:本文提出了使用基于字典的稀疏表示的多焦点图像融合的快速实现。该方法通过从训练稀疏系数特征向量合成特征信号来减少[1]中的方法的计算复杂性,用于将源图像中的源图像中的每个像素分类为聚焦或散焦,这有助于去除OMP算法的计算[3]在[1]中。结果,所提出的方法的复杂性只能是[1]的1/100。仿真结果进一步证明了所提出的方法的熔融图像具有与[1]相同的质量。

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