Guangzuo Li
Shanghai Jiao Tong University
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Featured researches published by Guangzuo Li.
Applied Optics | 2017
Guangzuo Li; Ran Wang; Ziqi Song; Keshu Zhang; Yirong Wu; Jie Pan
A novel and high-efficiency linear frequency-modulated continuous-wave (FMCW) ladar system for synthetic aperture imaging is proposed and experimentally demonstrated. This novel system generates wide-bandwidth linear FMCW ladar signals by employing an electro-optic LiNbO3- in-phase and quadrature modulator with an effective bias controller. The effectiveness of the proposed system is experimentally validated. Optical synthetic aperture images are obtained by using two 0.41 cm aperture diameter telescopes at the distance of 1 km. The resolution of these images can reach to 4 cm. A resolution improvement by about 10 times is achieved when compared with the conventional real aperture imaging system.
International Symposium on Optoelectronic Technology and Application 2016 | 2016
Ning Wang; Ran Wang; Guangzuo Li; Keshu Zhang; Yirong Wu
This manuscript describes an airborne SAL system for remote targets imaging. We have recently completed an experiment of ISAL at 1.1 km outdoor using the system. Relative motion was provided by a rotating platform with three cubes on while the SAL system kept stationary. System, signal collection, processing and the results are described in the paper. The result showed that the system had the ability to image for moving targets. Accurate rotating platform and complex target will be used to achieve further ISAL experiments on the next stage.
ieee international conference on electronics information and emergency communication | 2017
Guangzuo Li; Zenghui Zhang; Yifei Zhang; Di Mo; Ning Wang; Ran Wang; Keshu Zhang
Synthetic aperture ladar (SAL) is a new remote sensing sensor and has the potential for much finer resolution than synthetic aperture radar (SAR) for its much shorter wavelength. For SAL system, frequency modulated continuous wave (FMCW) is usually used to achieve large time-bandwidth product (TBP). In this paper, we proposed the method for focusing the FMCW-SAL data. Firstly, we derived the signal model for FMCW-SAL without the start/stop approximation. And based on the signal model, imaging method is proposed. Then, the motion compensation for SAL is discussed. At last, we showed the imaging results for both the ground-based SAL and the airborne SAL. The imaging results verified the effectiveness of the proposed focusing method.
ieee international conference on electronics information and emergency communication | 2017
Di Mo; Ran Wang; Ning Wang; Keshu Zhang; Guangzuo Li
In this manuscript, an Inverse Synthetic Aperture LADAR (ISAL) system at 1.55 μm wavelength is introduced. We have recently completed an imaging experiment on real target 1.1 km away from laser radar by using the system and obtained a series of images of the target, an aircraft model, with cm-level range resolution and mm-level cross-range resolution, which is due to the large bandwidth transmitting signal and the μm-level wavelength of laser. The results of experiment prove that the inverse synthetic aperture LADAR system has the ability to imaging a real target with high-resolution from a long distance, which transcends the diffraction limit for the effective aperture size of the receive telescope.
International Symposium on Optoelectronic Technology and Application 2016 | 2016
Guangzuo Li; Ran Wang; Peisi Wang; Keshu Zhang; Yirong Wu
In this manuscript, we propose and experimentally demonstrate our synthetic aperture LADAR (SAL) system. The system could obtain imageries in a few milliseconds with resolution of 5 cm from a long distance. Fine resolution in the range dimension was obtained by transmitting LADAR signal with large bandwidth. While in the cross-range dimension, the large synthetic aperture diameter provided fine resolution. By employing continuous translational motion of SAL system, a large aperture diameter was obtained through synthetic aperture processing. So the diffraction limit of real aperture diameter was overcome and finer resolution was achieved. Indoor and outdoor experiments were both performed and the corresponding results were showed. Results validated the feasibility of our system and processing algorithm.
Electronics Letters | 2017
Guangzuo Li; Ning Wang; Ran Wang; Keshu Zhang; Yirong Wu
Applied Optics | 2018
Ning Wang; Ran Wang; Di Mo; Guangzuo Li; Keshu Zhang; Yirong Wu
Applied Physics B | 2017
Di Mo; Ran Wang; Guangzuo Li; Ning Wang; Keshu Zhang; Yirong Wu
IEEE Geoscience and Remote Sensing Letters | 2018
Di Mo; Ning Wang; Guangzuo Li; Ran Wang; Yirong Wu
Electronics Letters | 2017
Ning Wang; Zhonghao Wei; Guangzuo Li; Ran Wang; Keshu Zhang; Yirong Wu