光学
鬼影成像
计算机科学
数字光处理
失真(音乐)
投影机
单色
斑点图案
图像质量
散斑噪声
人工智能
计算机视觉
物理
图像(数学)
放大器
带宽(计算)
计算机网络
作者
Yang Ni,Dingfu Zhou,Sheng Yuan,Xing Bai,Xu Zhao,Jie Chen,Cong Li,Xin Zhou
出处
期刊:Optics Letters
[Optica Publishing Group]
日期:2021-03-16
卷期号:46 (8): 1840-1840
被引量:42
摘要
A novel, to the best of our knowledge, color computational ghost imaging scheme is presented for the reconstruction of a color object image, which greatly simplifies the experimental setup and shortens the acquisition time. Compared to conventional schemes, it only adopts one digital light projector to project color speckles and one single-pixel detector to receive the light intensity, instead of utilizing three monochromatic paths separately and synthesizing the three branch results. Severe noise and color distortion, which are common in ghost imaging, can be removed by the utilization of a generative adversarial network, because it has advantages in restoring the image’s texture details and generating the image’s match to a human’s subjective feelings over other generative models in deep learning. The final results can perform consistently better visual quality with more realistic and natural textures, even at the low sampling rate of 0.05.
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