Evaluation of the videonavigation algorithm accuracy
Authors: Simakov S.P., Ustugov E.V.
Published in issue: #7(55)/2016
DOI: 10.18698/2308-6033-2016-7-1515
Category: Aviation and Rocket-Space Engineering | Chapter: Aircraft Dynamics, Ballistics, Motion Control
The article considers the evaluation of videonavigation algorithm accuracy on close relative distances in space. The algorithm characteristic is the use of intelligent algorithms providing the operation speed and dynamic models, which are the means of algorithm correction. The results of accuracy estimation for the two numerical experiments are presented. According to the results of the first experiment where nano-satellite separation from the orbiter was simulated and the inverse problem was solved using videonavigation algorithm, i.e. determination of the relative angular velocity of the orbiter, angular velocity error distribution diagram was obtained. The results of the second numerical experiment in which the separation of the two nano-satellites was simulated and the camera was installed on one of them fixing reference marks on top of another nano-satellite, show good working efficiency of the algorithm in solving various problems in the field of satellite navigation.
References
[1] Detektsiya kozhi v Wolfram Language [Skin detection in Wolfram Language]. Available at: http://habrahabr.ru/company/wolfram/blog/261413 (accessed September 19, 2015).
[2] Storn R., Price K. Journal of Global Optimization, vol. 11, pp. 341-359.
[3] Ivanov D.S., Karpenko S.O., Ovchinnikov M.Yu. Opredelenie otnositelnogo dvizheniya sputnikov pri ikh razdelenii po rezultatam obrabotki videoizobrazheniya [Determining the relative motion of satellites in their separation according to the results of processing videoimages]. Preprints, M.V. Keldysh Institute of Applied Mathematics of the RAS, 2012, no. 57, 24 p.
[4] Belokonov I.V., Timbay I.A., Kramlikh A.V. Izvestiya Samarskogo nauchnogo tsentra Rossiyskoy Akademii Nauk - Proceedings of the Samara Scientific Center of the Russian Academy of Sciences, 2012, no. 6, pp. 102-107.
[5] CubeSat Design Specification. Available at: http://cubesat.calpoly.edu/images/developers/cds_rev13_final.pdf (accessed September 20, 2015).
[6] Popov V.I. Sistemy orientatsii i stabilizatsii kosmicheskikh apparatov [Spacecraft orientation and stabilization systems]. Moscow, Mashinostroenie Publ., 1986, 184 p.