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A W-Shaped Self-Supervised Computational Ghost Imaging Restoration Method for Occluded Targets
Yu Wang1, Xiaoqian Wang1, Chao Gao1
1Department of Physics, Changchun University of Science and Technology, Changchun 130022, China.
Abstract:
We developed a novel method based on self-supervised learning to improve the ghost imaging of occluded objects. In particular, we introduced a W-shaped neural network to preprocess the input image and enhance the overall quality and efficiency of the reconstruction method. We verified the superiority of our W-shaped self-supervised computational ghost imaging (WSCGI) method through numerical simulations and experimental validations. Our results underscore the potential of self-supervised learning in advancing ghost imaging.

