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Strong ghost removal in multi-exposure image fusion using hole-filling with exposure congruency

机译:使用孔填充具有曝光常量的孔填充的多曝光图像融合中的强烈幽灵移除

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摘要

It is the most crucial problem to remove ghost in the multi-exposure image fusion of dynamic scene. The traditional fusion methods have good effects to remove weak ghosts. However, they cannot effectively remove strong ghosts. This paper proposes a new strong ghost removal method in multi-exposure image fusion using hole-filling with exposure congruency. First, analyzing the characteristics of strong ghosts, a detection scheme for strong ghost regions is designed by combining histogram matching and exposure difference detection. Subsequently, to effectively extract image local features, a multi-scale fusion network for non-strong ghost regions is designed to obtain a pre-fused image. Further, based on the distribution characteristics of strong ghosts, a hole filling model with exposure congruency is designed to remove the strong ghosts. Experimental results show that compared with the state-of-the-art methods, the proposed method can obtain better performance in both of subjective and objective evaluation, particularly in terms of effectively removing strong ghosts.
机译:在动态场景的多曝光图像融合中删除幽灵最重要的问题。传统的融合方法具有良好的效果,无法去除弱鬼。但是,他们无法有效地去除强烈的鬼魂。本文提出了一种使用孔填充的多曝光图像融合中的一种新的强鬼拆除方法,填充曝光均匀。首先,通过组合直方图匹配和曝光差异检测来设计强鬼魂的特性,通过组合直方图匹配和曝光差异检测来设计强鬼区的检测方案。随后,为了有效地提取图像局部特征,设计用于非强鬼区域的多尺度融合网络,用于获得预熔合图像。此外,基于强鬼的分布特性,设计具有曝光常量的孔填充模型以消除强鬼。实验结果表明,与最先进的方法相比,所提出的方法可以在主观和客观评估中获得更好的性能,特别是在有效地去除强烈的鬼魂方面。

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