Direct initial orbit determination
Chee-Kheng Chng, Trent Jansen-Sturgeon, Timothy Payne, Tat-Jun Chin

TL;DR
This paper introduces D-IOD, a direct orbit determination method that fits orbital parameters directly to streak images, bypassing LOS extraction and reducing errors, demonstrated through simulations and real data.
Contribution
The paper presents a novel direct orbit determination approach that operates directly on streak images using a new non-linear least-squares objective and gradient descent optimization.
Findings
Effective on simulated scenarios
Performs well on real streak images
Reduces errors compared to traditional methods
Abstract
Initial orbit determination (IOD) is an important early step in the processing chain that makes sense of and reconciles the multiple optical observations of a resident space object. IOD methods generally operate on line-of-sight (LOS) vectors extracted from images of the object, hence the LOS vectors can be seen as discrete point samples of the raw optical measurements. Typically, the number of LOS vectors used by an IOD method is much smaller than the available measurements (\ie, the set of pixel intensity values), hence current IOD methods arguably under-utilize the rich information present in the data. In this paper, we propose a \emph{direct} IOD method called D-IOD that fits the orbital parameters directly on the observed streak images, without requiring LOS extraction. Since it does not utilize LOS vectors, D-IOD avoids potential inaccuracies or errors due to an imperfect LOS…
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Taxonomy
TopicsSpace Satellite Systems and Control · Astro and Planetary Science · Planetary Science and Exploration
