TY - JOUR
T1 - Loop differential ghost imaging based on line pattern
AU - Han, Yuyuan
AU - Zheng, Huaibin
AU - Li, Bin
AU - Li, Jingwei
AU - Qiu, Long
AU - Hao, Wenxuan
AU - Dang, Zheng
AU - Chen, Hui
AU - Liu, Jianbin
AU - He, Yuchen
AU - Liu, Yanyan
AU - Xu, Zhuo
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/5
Y1 - 2025/5
N2 - The pursuit of ghost imaging (GI) in high speed and miniaturization has led researchers to explore photonic integrated circuits (PICs). This study delves into the pattern characteristics of optical phased arrays (OPAs) based on PICs and identifies a limitation in traditional GI denoising algorithms when employing line pattern illumination field generated by one dimensional OPA (1D OPA) with grating waveguide (GW), attributed to noise symmetry disruption. To overcome this challenge, we introduce the symmetry of noise metric κs, tailored to evaluate noise symmetry across different field matrix. Subsequently, we propose the loop differential ghost imaging (LDGI) algorithm, demonstrating orders of magnitude improvement compared to traditional algorithms in GI. This research advances GI technology towards integrated miniaturization and achieving high speed imaging capabilities, with implications for fields such as virtual reality, LiDAR, and photomicrography.
AB - The pursuit of ghost imaging (GI) in high speed and miniaturization has led researchers to explore photonic integrated circuits (PICs). This study delves into the pattern characteristics of optical phased arrays (OPAs) based on PICs and identifies a limitation in traditional GI denoising algorithms when employing line pattern illumination field generated by one dimensional OPA (1D OPA) with grating waveguide (GW), attributed to noise symmetry disruption. To overcome this challenge, we introduce the symmetry of noise metric κs, tailored to evaluate noise symmetry across different field matrix. Subsequently, we propose the loop differential ghost imaging (LDGI) algorithm, demonstrating orders of magnitude improvement compared to traditional algorithms in GI. This research advances GI technology towards integrated miniaturization and achieving high speed imaging capabilities, with implications for fields such as virtual reality, LiDAR, and photomicrography.
KW - Loop differential ghost imaging
KW - Optical phased arrays
KW - Symmetry of noise metric
UR - https://www.scopus.com/pages/publications/85217411420
U2 - 10.1016/j.optcom.2025.131589
DO - 10.1016/j.optcom.2025.131589
M3 - 文章
AN - SCOPUS:85217411420
SN - 0030-4018
VL - 580
JO - Optics Communications
JF - Optics Communications
M1 - 131589
ER -