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首页> 外文期刊>Human-Machine Systems, IEEE Transactions on >Robust Framework of Single-Frame Face Superresolution Across Head Pose, Facial Expression, and Illumination Variations
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Robust Framework of Single-Frame Face Superresolution Across Head Pose, Facial Expression, and Illumination Variations

机译:跨头部姿势,面部表情和照明变化的单帧面部超分辨率的稳健框架

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摘要

This paper presents a robust framework to solve the face hallucination problem across multiple factors, i.e., different expressions, head poses, and illuminations. It proposes a redundant transformation with diagonal loading for modeling the mappings among different new face factors, and a local reconstruction with geometry and position constraints for incorporating image details in the new factor spaces. Our proposed redundant and sparse strategies are discussed, and the experiments indicate that it is not necessary to adopt sparse representation in the proposed framework. The experimental results demonstrate that the proposed framework offers robustness when dealing with the inputs that have different expressions, head poses, and illuminations compared with the state-of-the-art methods, can generate high-resolution face images with better image qualities than the hierarchical tensor-based method, and improves the state of the art from single one output to multiple outputs with new factors.
机译:本文提出了一个强大的框架,可以解决多种因素(即不同的表情,头部姿势和照明)中的幻觉问题。它提出了一个带有对角线加载的冗余变换,用于对不同的新面部因子之间的映射进行建模,并提出了一种具有几何形状和位置约束的局部重构,以将图像细节合并到新因子空间中。讨论了我们提出的冗余和稀疏策略,实验表明,在所提出的框架中不必采用稀疏表示。实验结果表明,与最先进的方法相比,所提出的框架在处理具有不同表情,头部姿势和照明的输入时具有鲁棒性,可以生成分辨率更高的高分辨率人脸图像。基于分层张量的方法,并通过新的因素将现有技术从单输出扩展到多输出。

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