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Control-Oriented Deep Space Communications for Unmanned Space Exploration

Fang, Xinran; Feng, Wei; Chen, Yunfei; Ge, Ning; Zheng, Gan

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Authors

Xinran Fang

Wei Feng

Ning Ge

Gan Zheng



Abstract

In unmanned space exploration, the cooperation among space robots requires advanced communication techniques. In this paper, we propose a communication optimization scheme for a specific cooperation system named the “mother-daughter system”. In this setup, the mother spacecraft orbits the planet, while daughter probes are distributed across the planetary surface. During each control cycle, the mother spacecraft senses the environment, computes control commands and distributes them to daughter probes for actions. They synergistically form sensing-communication-computing-control ( SC3 ) loops. Given the indivisibility of the SC3 loop, we optimize the mother-daughter downlink for closed-loop control. The optimization objective is the linear quadratic regulator (LQR) cost, and the optimization parameters are the block length and transmit power. To solve the nonlinear mixed-integer problem, we first identify the optimal block length and then transform the power allocation problem into a tractable convex problem. We further derive the approximate closed-form solutions for the proposed scheme and two communication-oriented schemes: the max-sum rate scheme and the max-min rate scheme. On this basis, we analyze their power allocation principles. In particular, for time-insensitive control tasks, we find that the proposed scheme demonstrates equivalence to the max-min rate scheme. These findings are verified through simulations.

Citation

Fang, X., Feng, W., Chen, Y., Ge, N., & Zheng, G. (2024). Control-Oriented Deep Space Communications for Unmanned Space Exploration. IEEE Transactions on Wireless Communications, 23(10), 14466-14481. https://doi.org/10.1109/twc.2024.3414854

Journal Article Type Article
Acceptance Date May 24, 2024
Online Publication Date Jun 24, 2024
Publication Date 2024-10
Deposit Date Dec 5, 2024
Publicly Available Date Dec 5, 2024
Journal IEEE Transactions on Wireless Communications
Print ISSN 1536-1276
Electronic ISSN 1558-2248
Publisher Institute of Electrical and Electronics Engineers
Peer Reviewed Peer Reviewed
Volume 23
Issue 10
Pages 14466-14481
DOI https://doi.org/10.1109/twc.2024.3414854
Public URL https://durham-repository.worktribe.com/output/3201863
Additional Information Estimated acceptance date

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