基于远程光学系统的自主流空间目标检测

IF 0.2 Q4 INSTRUMENTS & INSTRUMENTATION
V. Baranova, V. Saetchnikov, A. Spiridonov
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引用次数: 5

摘要

传统的图像处理技术为深空天体测量和确定人造卫星轨道参数的应用问题提供了持续的效率。但是计算结构的速度和小型光学系统的功能正在迅速发展,因此有助于使用动态视频流来探测和初始化空间物体。本文的目的是实现空间物体探测过程中光学测量数据的自动化处理和初始轨道确定的数值方法。本文提出了一种低成本的具有遥控元件的空间物体自主探测光学系统的实现方法。在基于树莓派4单板计算机和模块化摄像机的简化光学系统的远程控制框架下,开发并测试了基本算法模型。在实验室条件下,模拟卫星轨迹,对计算机视觉库OpenCV中编译的算法模块进行初步评估。根据仿真结果,完成了坐标为东经25o41′49″东经53o52′36″北纬00:54:00-00:54:30 17.07.2021 (UTC + 03:00)的观测点对国际空间站的实时动态探测。该通道的视频处理结果在图像平面上以时间戳间隔为0.2 s的国际空间站质心坐标的形式表现出来。该方法为数值方法初始确定空间物体轨道提供了一种自主的原始数据提取方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Autonomous Streaming Space Objects Detection Based on a Remote Optical System
Traditional image processing techniques provide sustainable efficiency in the astrometry of deep space objects and in applied problems of determining the parameters of artificial satellite orbits. But the speed of the computing architecture and the functions of small optical systems are rapidly developing thus contribute to the use of a dynamic video stream for detecting and initializing space objects. The purpose of this paper is to automate the processing of optical measurement data during detecting space objects and numerical methods for the initial orbit determination.This article provided the implementation of a low-cost autonomous optical system for detecting of space objects with remote control elements. The basic algorithm model had developed and tested within the framework of remote control of a simplified optical system based on a Raspberry Pi 4 single-board computer with a modular camera. Under laboratory conditions, the satellite trajectory had simulated for an initial assessment of the compiled algorithmic modules of the computer vision library OpenCV.Based on the simulation results, dynamic detection of the International Space Station in real-time from the observation site with coordinates longitude 25o41′49″ East, latitude 53o52′36″ North in the interval 00:54:00–00:54:30 17.07.2021 (UTC + 03:00) had performed. The video processing result of the pass had demonstrated in the form of centroid coordinates of the International Space Station in the image plane with a timestamps interval of which is 0.2 s.This approach provides an autonomous raw data extraction of a space object for numerical methods for the initial determination of its orbit.
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来源期刊
Devices and Methods of Measurements
Devices and Methods of Measurements INSTRUMENTS & INSTRUMENTATION-
自引率
25.00%
发文量
18
审稿时长
8 weeks
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