Wang, Y., Kang, L., Liu, J., Kuang, H., Sun, H., Chen, K., Wang, X., Yu, H., Sun, X., Zheng, P., Liu, S., Yi, T., Liu, L., Gao, H., Sun, B., Zhang, R., & Ding, Z. (2022). 星载SAR非沿迹成像新模式: 机遇与挑战. Journal of Radars, 11(6), 1131-1145. https://doi.org/10.12000/JR22083
Wang, Yan ; Kang, Lihong ; Liu, Jie 等. / 星载SAR非沿迹成像新模式 : 机遇与挑战. 在: Journal of Radars. 2022 ; 卷 11, 号码 6. 页码 1131-1145.
@article{cb662c8751854fbc9491b4a450e8e58a,
title = "星载SAR非沿迹成像新模式: 机遇与挑战",
abstract = "Spaceborne Synthetic Aperture Radar (SAR) can achieve various performance combinations of resolution and observation bandwidth by adjusting the working modes. The imaging swath of the traditional spaceborne SAR working mode is along the satellite orbit, and the geographical trend is single; however, the geographical shape and direction of the surface scene are diverse and generally do not match the imaging swath along the orbit, resulting in a long data acquisition period, low azimuth resolution, and storage waste of computing resources. To this end, the spaceborne SAR Non-along-track imaging mode is a new method for spaceborne SAR scene matching that is characterized by an imaging zone that is no longer mechanically along the satellite orbit but is generated according to the actual geographical direction of the scene to achieve “customization” that matches the scene imaging. In this paper, the main opportunities and challenges faced by the new mode of spaceborne SAR scene matching are discussed from the aspects of information acquisition and imaging processing, and the principled verification of the spaceborne SAR Non-along-track imaging mode is provided through a computer simulation.",
keywords = "Data acquisition, Imaging processing, Non-along-track imaging mode, Spaceborne SAR",
author = "Yan Wang and Lihong Kang and Jie Liu and Hui Kuang and Hanwei Sun and Ke Chen and Xuan Wang and Haifeng Yu and Xilong Sun and Pengnan Zheng and Shuhao Liu and Tianzhu Yi and Lei Liu and Heli Gao and Bing Sun and Running Zhang and Zegang Ding",
note = "Publisher Copyright: {\textcopyright} 2022 Institute of Electronics Chinese Academy of Sciences. All rights reserved.",
year = "2022",
month = dec,
doi = "10.12000/JR22083",
language = "繁体中文",
volume = "11",
pages = "1131--1145",
journal = "Journal of Radars",
issn = "2095-283X",
publisher = "Institute of Electronics Chinese Academy of Sciences",
number = "6",
}
Wang, Y, Kang, L, Liu, J, Kuang, H, Sun, H, Chen, K, Wang, X, Yu, H, Sun, X, Zheng, P, Liu, S, Yi, T, Liu, L, Gao, H, Sun, B, Zhang, R & Ding, Z 2022, '星载SAR非沿迹成像新模式: 机遇与挑战', Journal of Radars, 卷 11, 号码 6, 页码 1131-1145. https://doi.org/10.12000/JR22083
星载SAR非沿迹成像新模式: 机遇与挑战. /
Wang, Yan; Kang, Lihong; Liu, Jie 等.
在:
Journal of Radars, 卷 11, 号码 6, 12.2022, 页码 1131-1145.
科研成果: 期刊稿件 › 文章 › 同行评审
TY - JOUR
T1 - 星载SAR非沿迹成像新模式
T2 - 机遇与挑战
AU - Wang, Yan
AU - Kang, Lihong
AU - Liu, Jie
AU - Kuang, Hui
AU - Sun, Hanwei
AU - Chen, Ke
AU - Wang, Xuan
AU - Yu, Haifeng
AU - Sun, Xilong
AU - Zheng, Pengnan
AU - Liu, Shuhao
AU - Yi, Tianzhu
AU - Liu, Lei
AU - Gao, Heli
AU - Sun, Bing
AU - Zhang, Running
AU - Ding, Zegang
N1 - Publisher Copyright:
© 2022 Institute of Electronics Chinese Academy of Sciences. All rights reserved.
PY - 2022/12
Y1 - 2022/12
N2 - Spaceborne Synthetic Aperture Radar (SAR) can achieve various performance combinations of resolution and observation bandwidth by adjusting the working modes. The imaging swath of the traditional spaceborne SAR working mode is along the satellite orbit, and the geographical trend is single; however, the geographical shape and direction of the surface scene are diverse and generally do not match the imaging swath along the orbit, resulting in a long data acquisition period, low azimuth resolution, and storage waste of computing resources. To this end, the spaceborne SAR Non-along-track imaging mode is a new method for spaceborne SAR scene matching that is characterized by an imaging zone that is no longer mechanically along the satellite orbit but is generated according to the actual geographical direction of the scene to achieve “customization” that matches the scene imaging. In this paper, the main opportunities and challenges faced by the new mode of spaceborne SAR scene matching are discussed from the aspects of information acquisition and imaging processing, and the principled verification of the spaceborne SAR Non-along-track imaging mode is provided through a computer simulation.
AB - Spaceborne Synthetic Aperture Radar (SAR) can achieve various performance combinations of resolution and observation bandwidth by adjusting the working modes. The imaging swath of the traditional spaceborne SAR working mode is along the satellite orbit, and the geographical trend is single; however, the geographical shape and direction of the surface scene are diverse and generally do not match the imaging swath along the orbit, resulting in a long data acquisition period, low azimuth resolution, and storage waste of computing resources. To this end, the spaceborne SAR Non-along-track imaging mode is a new method for spaceborne SAR scene matching that is characterized by an imaging zone that is no longer mechanically along the satellite orbit but is generated according to the actual geographical direction of the scene to achieve “customization” that matches the scene imaging. In this paper, the main opportunities and challenges faced by the new mode of spaceborne SAR scene matching are discussed from the aspects of information acquisition and imaging processing, and the principled verification of the spaceborne SAR Non-along-track imaging mode is provided through a computer simulation.
KW - Data acquisition
KW - Imaging processing
KW - Non-along-track imaging mode
KW - Spaceborne SAR
UR - http://www.scopus.com/inward/record.url?scp=85163204782&partnerID=8YFLogxK
U2 - 10.12000/JR22083
DO - 10.12000/JR22083
M3 - 文章
AN - SCOPUS:85163204782
SN - 2095-283X
VL - 11
SP - 1131
EP - 1145
JO - Journal of Radars
JF - Journal of Radars
IS - 6
ER -
Wang Y, Kang L, Liu J, Kuang H, Sun H, Chen K 等. 星载SAR非沿迹成像新模式: 机遇与挑战. Journal of Radars. 2022 12月;11(6):1131-1145. doi: 10.12000/JR22083