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February 28, 2026Acta Astronautica0 citationsOpen Access

Information routing in satellite constellations via stereographic projection and static digraph

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GAGiulio De AngelisSCStefano CarlettaELEdoardo Maria Leonardi

Key Points

  • The aim is to develop an efficient method for routing information in satellite constellations to enhance data transfer.
  • Utilized stereographic projection to identify connectivity opportunities between satellites.
  • Formulated a Markov decision process to determine optimal forwarding or withholding actions.
  • Developed a directed graph to model the routing process.
  • Applied value iteration and Dijkstra’s algorithm for policy and path optimization.
  • Conducted numerical simulations on Walker constellations of varying sizes.
  • Achieved minimum latency of typically tens of minutes for data transfer.
  • Determined minimum-hop count ranging from 1 to 32 based on constellation size.
  • Demonstrated effective information flow optimization in medium-sized constellations for Earth observation.

Abstract

Satellite constellations are receiving growing attention as they become fundamental to modern space applications. Because intersatellite communication is being included in these networks, optimizing data routing is crucial to ensure efficient, timely, and reliable information transfer. This study introduces a novel method to optimize information routing in satellite constellations and provides numerical evaluation of its performance. The stereographic projection onto the equatorial plane is used to derive analytical equations that allow the rapid identification of the mutual connectivity opportunities between any pair of satellites within a desired time horizon. These connectivity events are used as states to build a Markov decision process, in which actions consist of either forwarding data or withholding it. The resulting directed graph (digraph) models the information routing process, applying both (a) value iteration and (b) Dijkstra’s algorithms. Value iteration (a) allows defining the optimal policy for each satellite—whether forward or withhold data—so as to minimize the time required to transfer information to the target satellite. Dijkstra’s algorithm (b) is employed to identify minimum-latency and minimum-hop paths for data transfer between satellites within the constellation. Numerical simulations are performed on Walker constellations of 32 through 128 satellites, with a maximum intersatellite distance ranging from 500 to 2500 km. The results show that the minimum latency is limited (typically, tens of minutes), while the minimum-hop count is in the interval 1,32, depending on the constellation size and maximum intersat distance. Simulations demonstrate the effectiveness of this approach in optimizing information flow across medium-size constellations dedicated to Earth observation, monitoring, and remote sensing. • The stereographic projection identifies routing nodes in satellite constellations. • Static graph models connectivity events as nodes and time constraints as edges. • Routing is modeled as a Markov decision process. • Dijkstra’s algorithm obtains the optimal data transfer path, in relation to either latency or hop count. • Two examples of satellite constellations are investigated as remarkable applications.

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Cite This Study

Angelis et al. (2026) studied this question.

synapsesocial.com/papers/69a285aa0a974eb0d3c009f1https://doi.org/10.1016/j.actaastro.2026.02.046
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