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联合特征推理和语义增强的渐进式壁画修复
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Progressive Mural Inpainting Method Based on Joint Feature Reasoning and Semantic Enhancement
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    针对现有深度学习算法修复壁画图像时,未充分考虑破损区域与完好区域信息的一致性,导致修复结果易出现边界效应和纹理模糊等问题,提出了一种联合特征推理和语义增强的渐进式壁画修复算法.首先,设计区域渐进结构,实现了待修复区域的渐进式收缩修复.然后,利用特征推理模块,对缺失像素的特征值进行迭代推理填充,减小壁画修复重构误差,增强壁画破损区域与完好区域之间的相关性.最后,将各层特征图自适应融合,并采用语义增强模块进行纹理细节迁移,提升壁画补全区域和整体的一致性.敦煌壁画数字化修复实验表明:所提方法修复结果具有更好的纹理细节一致性,在主客观评价指标上均优于比较算法.

    Abstract:

    To solve the problem that the existing deep learning algorithms do not fully consider the consistency of the information between the damaged area and the intact area when repairing mural images, which leads to boundary effects and texture blur in the repair results, we proposed a progressive mural inpainting algorithm combining feature reasoning and semantic enhancement. Firstly, the progressive structure of the region was designed to realize the progressive contraction of the region to be repaired. Then, the feature reasoning module was used to iteratively fill the feature values of the missing pixels, reduce the reconstruction error of the mural restoration, and enhance the correlation between the damaged area and the intact area of the mural. Finally, the feature maps of each layer were adaptively fused, and the semantic enhancement module was used to transfer the texture details, so as to improve the consistency of the mural completion area and the whole. The digital restoration experiments of Dunhuang murals show that the restored murals by the proposed method have better consistency of texture details, and are superior to the comparison algorithms in subjective and objective evaluation indicators.

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陈永 ?,赵梦雪 ,陶美风 .联合特征推理和语义增强的渐进式壁画修复[J].湖南大学学报:自然科学版,2023,(8):1~12

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  • 在线发布日期: 2023-08-29
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