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Adaptive Missing Texture Reconstruction Method Based on Kernel Canonical Correlation Analysis with a New Clustering Scheme

机译:新的聚类方案基于核典范相关分析的自适应缺失纹理重构方法

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摘要

In this paper, a method for adaptive reconstruction of missing textures based on kernel canonical correlation analysis (CCA) with a new clustering scheme is presented. The proposed method estimates the correlation between two areas, which respectively correspond to a missing area and its neighboring area, from known parts within the target image and realizes reconstruction of the missing texture. In order to obtain this correlation, the kernel CCA is applied to each cluster containing the same kind of textures, and the optimal result is selected for the target missing area. Specifically, a new approach monitoring errors caused in the above kernel CCA-based reconstruction process enables selection of the optimal result. This approach provides a solution to the problem in traditional methods of not being able to perform adaptive reconstruction of the target textures due to missing intensities. Consequently, all of the missing textures are successfully estimated by the optimal cluster's correlation, which provides accurate reconstruction of the same kinds of textures. In addition, the proposed method can obtain the correlation more accurately than our previous works, and more successful reconstruction performance can be expected. Experimental results show impressive improvement of the proposed reconstruction technique over previously reported reconstruction techniques.
机译:本文提出了一种基于核规范相关分析(CCA)和新聚类方案的自适应纹理缺失重建方法。所提出的方法从目标图像内的已知部分估计分别对应于缺失区域和其邻近区域的两个区域之间的相关性,并实现缺失纹理的重建。为了获得这种相关性,将内核CCA应用于包含相同类型纹理的每个聚类,然后为目标缺失区域选择最佳结果。具体地说,一种新的方法可监视上述基于内核CCA的重建过程中引起的错误,从而可以选择最佳结果。这种方法为传统方法中由于缺少强度而无法执行目标纹理的自适应重建提供了解决方案。因此,所有缺失的纹理都可以通过最佳聚类的相关性成功估算出来,从而可以准确地重建相同种类的纹理。另外,与我们以前的工作相比,所提出的方法可以更准确地获得相关性,并且可以期望更成功的重建性能。实验结果表明,与先前报道的重建技术相比,所提出的重建技术有了令人印象深刻的改进。

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