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Multi-focus image fusion based on non-negative sparse representation and patch-level consistency rectification

机译:基于非负稀疏表示和补丁级一致性整流的多焦点图像融合

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摘要

Most existing sparse representation-based (SR) fusion methods consider the local information of each image patch independently during fusion. Some spatial artifacts are easily introduced to the fused image. A sliding window technology is often employed by these methods to overcome this issue. However, this comes at the cost of high computational complexity. Alternatively, we come up with a novel multi-focus image fusion method that takes full consideration of the strong correlations among spatially adjacent image patches with NO need for a sliding window. To this end, a non-negative SR model with local consistency constraint (CNNSR) on the representation coefficients is first constructed to encode each image patch. Then a patch-level consistency rectification strategy is presented to merge the input image patches, by which the spatial artifacts in the fused images are greatly reduced. As well, a compact non-negative dictionary is constructed for the CNNSR model. Experimental results demonstrate that the proposed fusion method outperforms some state-of-the art methods. Moreover, the proposed method is computationally efficient, thereby facilitating real-world applications. (C) 2020 Elsevier Ltd. All rights reserved.
机译:基于最现有的稀疏表示(SR)融合方法在融合期间独立地考虑每个图像修补程序的本地信息。一些空间伪影容易引入融合图像。这些方法通常采用滑动窗技术来克服这个问题。然而,这是以高计算复杂性的成本。或者,我们提出了一种新的多聚焦图像融合方法,可以充分考虑空间相邻的图像贴片之间的强相关性,不需要滑动窗口。为此,首先构造在表示系数上具有局部一致性约束(CNNSR)的非负SR模型以对每个图像修补程序进行编码。然后,提出了一种补丁级一致性整流策略以合并输入图像修补程序,通过该输入图像修补程序,融合图像中的空间伪像大大减少。此外,为CNNSR模型构建了紧凑的非负字典。实验结果表明,所提出的融合方法优于一些最先进的方法。此外,所提出的方法是计算效率的,从而促进真实的应用。 (c)2020 elestvier有限公司保留所有权利。

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