This paper presents a data-driven spacecraft attitude controller based on LightGBM gradient-boosted trees, specialized for Low Earth Orbit (LEO) satellites under realistic environmental disturbances. We augment the sixth-order Cayley–Rodrigues attitude model with an analytical gravity gradient torque, prove that exact feedback linearizability is preserved (Theorem 1), and replace the white-noise disturbance assumption of a prior formulation with a tilted-dipole geomagnetic model and a Jacchia–Roberts-style atmospheric density model. The regressor is trained on 300,000 state–torque pairs sampled i.i.d. over the operating envelope and labelled by the feedback-linearization expert; a comparison across six function approximators shows the framework to be approximator-agnostic, with LightGBM retained for its structural leaf-sum stability certificate (Lemma 2) and balanced accuracy–latency profile. A total stability theorem (Theorem 3) with an input-to-state corollary extends the closed-loop guarantee to the bounded perturbation structure of LEO. Closed-loop simulations at 500 km and 800 km give 5.04% overshoot and 31.4 s settling time, within 0.6 percentage points of the exact feedback linearization baseline, and an analytic near-origin handover reduces the steady-state pointing error below 0.001°, independent of the training seed. A robustness suite — actuator saturation, sensor noise, friction, impulsive disturbance, elliptical and inclined orbits, and initial attitudes up to 170° — shows graceful degradation throughout, and a sensitivity sweep confirms that the transients are invariant to space-weather parameters. A momentum-accumulation study shows where the structured disturbance model matters, and a timing benchmark grounds the deployment case in statically boundable worst-case execution time rather than raw speed.
Precise pointing and enhanced attitude stability are increasingly essential for achieving the advanced objectives of nano-satellite missions. For low-Earth orbit (LEO) nano-satellites, the residual magnetic dipole moment (RMM) generally dominates over other environmental disturbance sources, and must be accurately esti...
Rui-Xin Wen, Jonathan Morgan, Jack McRobbie et al.· Journal of Spacecraft and Ro...· 0 citations
The attitude of the GRACE Follow-On satellites is controlled by six pairs of attitude control thrusters. An ideal thruster system would produce a change only in angular momentum. The imperfect system, however, also produces undesired linear accelerations that must be removed for orbit analysis and gravity recovery. ...
Shin-Chan Han, George Pescod· GRACE/GRACE-FO Science Team...· 0 citations
In recent decades, employing small satellites in low earth orbit (LEO) has a growing trend. Generally, they are equipped with magnetic actuators, e.g., magnetorquers (MTQs) and reaction wheels (RWs), that work together to perform a variety of operation modes. The LEO satellites functionally experience the Earth’s m...
Recent advances in optical clock technology offer the possibility of directly sensing differences in the Earth’s gravitational potential through frequency comparisons between satellites. This study investigates the performance of different satellite formation-flying architectures for recovering the time-variable gravit...
Mattia C. Imperato, K. Ghobadi-Far, R. Nerem· GRACE/GRACE-FO Science Team...· 0 citations
Very Low Earth Orbit (VLEO) satellite platforms and quantum‐optical sensing technologies may provide new observation approaches for improving Earth's static gravity field models. This study conceptually assesses their potential contribution through a two‐tier closed‐loop simulation framework. Under idealized condit...
Wen-Ming Chen, Hao Zhou, Yan-Bin Zhao et al.· Earth and Space Science· 0 citations
A hierarchical safe-hovering architecture combining a linear extended state observer (ESO) and a high-order control barrier function (HOCBF) safety filter is developed for spacecraft proximity operations around irregular asteroids. In an asteroid-fixed frame, gravity-model mismatch, nonspherical gravity, environmental...
Jian-Wei Pan· 2026 6th International Confe...· 0 citations
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