Paper
9 December 2022 Adaptive modulation attention-based face super-resolution reconstruction method
Author Affiliations +
Proceedings Volume 12492, International Workshop on Automation, Control, and Communication Engineering (IWACCE 2022); 124920U (2022) https://doi.org/10.1117/12.2661845
Event: International Workshop on Automation, Control, and Communication Engineering (IWACCE 2022), 2022, Wuhan, China
Abstract
In view of the large deviation of the pixel value of the generated image caused by the abandonment of the BN layer by the previous deep face super-resolution module, and the inaccuracy of the face prior alignment module, an adaptive modulation super-resolution neural network combining the attention mechanism and face alignment is proposed. Firstly, in order to solve the problem of inaccurate face alignment, a specific attention module is used to extract features with low resolution, and the output feature map is aligned with the key point feature map to increase the accuracy of positioning landmarks. Secondly, aiming at the problem that local pixels have maximum values, an adaptive modulation super-division module is proposed to make the reconstructed image more suitable for visual senses. The experimental results show that compared with face super-resolution algorithms such as end-to-end learning facial prior network (FSRNET), facial landmark attention network (PFSR) and deep iterative collaboration network (DIC), better visual effects and performance indicators are achieved.
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Zhenglei Xie, Fengsui Wang, Yunlong Wang, and Yue Xu "Adaptive modulation attention-based face super-resolution reconstruction method", Proc. SPIE 12492, International Workshop on Automation, Control, and Communication Engineering (IWACCE 2022), 124920U (9 December 2022); https://doi.org/10.1117/12.2661845
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KEYWORDS
Super resolution

Convolution

Image processing

Reconstruction algorithms

Feature extraction

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