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Study on Enlarging the Searching Scope of Staring Area and Tracking Imaging of Dynamic Targets by Optical Satellites

机译:扩大光学卫星凝视区域的搜索范围及动态目标跟踪成像的研究

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摘要

Conventional optical satellite imaging, such as push-broom imaging, obtained static image and was unable to get the characteristic of dynamic target. Staring imaging can obtain dynamic image. However, the coverage of the image, limited by the field of view (FOV) of the payload, is within only a dozen square kilometers. In this paper, a regional searching model and a tracking algorithm are proposed to enlarge the searching scope of staring area and to instruct tracking imaging of dynamic targets with a small FOV. In order to enlarge the searching area, a mathematical model is designed by setting a virtual target position under the original target position. Considering the center of dynamic target as the target-missing quantity, the tracking algorithm is established to control the satellite attitude so as to ensure that the optical axis points to the target-missing quantity. Finally, the algorithm is verified through ground experiments and the conclusion is demonstrated through on-orbit experiments with the first video satellite of Jilin province(JL-1). Compared with conventional staring imaging, the range of searching imaging can be expanded by 8 times. When the attitude angle and angular velocity of the satellite are better than 0.05° and 0.08°/s, respectively, the tracking accuracy of the target center can be shorter than one pixel, and the image will be distinctly visible.
机译:传统的光学卫星成像,例如推扫帚成像,获得静态图像并且无法获得动态目标的特征。凝视成像可以获得动态图像。然而,图像的覆盖范围,受到有效载荷的视野(FOV)的限制,仅在十几平方公里内。本文提出了一种区域搜索模型和跟踪算法来扩大凝视区域的搜索范围,并用小FOV指示动态目标的跟踪成像。为了扩大搜索区域,通过在原始目标位置下设置虚拟目标位置来设计数学模型。考虑到动态目标的中心作为目标缺失量,建立跟踪算法来控制卫星姿态,以确保光轴指向目标缺失量。最后,通过地面实验验证了该算法,并通过吉林省第一次视频卫星(JL-1)的轨道实验证明了结论。与传统凝视成像相比,搜索成像的范围可以扩大8次。当卫星的姿态角度和角速度分别优于0.05°和0.08°/ s时,目标中心的跟踪精度可以短于一个像素,并且图像将明显可见。

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