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Hallucinating face by position-patch

机译:幻觉脸按位置贴片

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摘要

A novel face hallucination method is proposed in this paper for the reconstruction of a high-resolution face image from a low-resolution observation based on a set of high- and low-resolution training image pairs. Different from most of the established methods based on probabilistic or manifold learning models, the proposed method hallucinates the high-resolution image patch using the same position image patches of each training image. The optimal weights of the training image position-patches are estimated and the hallucinated patches are reconstructed using the same weights. The final high-resolution facial image is formed by integrating the hallucinated patches. The necessity of two-step framework or residue compensation and the differences between hallucination based on patch and global image are discussed. Experiments show that the proposed method without residue compensation generates higher-quality images and costs less computational time than some recent face image super-resolution (hallucination) techniques.
机译:提出了一种新颖的人脸幻觉方法,该方法基于一组高分辨率和低分辨率训练图像对,从低分辨率观察中重建高分辨率面部图像。与大多数基于概率学习或流形学习模型的已建立方法不同,该方法使用每个训练图像的相同位置图像块使高分辨率图像块产生幻觉。估计训练图像位置补丁的最佳权重,并使用相同的权重重建幻觉的补丁。最终的高分辨率面部图像是通过整合幻觉的补丁而形成的。讨论了两步框架或残差补偿的必要性以及基于补丁和全局图像的幻觉之间的区别。实验表明,与一些最新的人脸图像超分辨率(hallucination)技术相比,所提出的无残差补偿的方法可以生成更高质量的图像,并且所需的计算时间更少。

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