Secure Motion Control of Micro-Spacecraft Using Semi-Homomorphic Encryption

Q. Hu, Yongxia Shi, Ehsan Nekouei
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引用次数: 1

Abstract

This paper studies the secure motion control problem for micro-spacecraft systems. A novel semi-homomorphic encrypted control framework, consisting of a logarithmic quantizer, two uniform quantizers, and an encrypted control law based on the Paillier cryptosystem is developed. More specifically, a logarithmic quantizer is adopted as a digitizer to convert the continuous relative motion information to digital signals. Two uniform quantizers with different quantization sensitivities are designed to encode the control gain matrix and digitized motion information to integer values. Then, we develop an encrypted state-feedback control law based on the Paillier cryptosystem, which allows the controller to compute the control input using only encrypted data. Using the Lyapunov stability theory and the homomorphic property of the Paillier cryptosystem, we prove that all signals in the closed-loop system are uniformly ultimately bounded. Different from the traditional motion control laws of spacecraft, the proposed encrypted control framework ensures the security of the exchanged data over the communication network of the spacecraft, even when communication channels are eavesdropped by malicious adversaries. Finally, we verify the effectiveness of the proposed encrypted control framework using numerical simulations.
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基于半同态加密的微型航天器安全运动控制
研究了微型航天器系统的安全运动控制问题。提出了一种基于Paillier密码系统的半同态加密控制框架,该框架由一个对数量化器、两个均匀量化器和一个加密控制律组成。更具体地说,采用对数量化器作为数字化器,将连续的相对运动信息转换为数字信号。设计了两个具有不同量化灵敏度的均匀量化器,将控制增益矩阵和数字化运动信息编码为整数值。然后,我们开发了一种基于Paillier密码系统的加密状态反馈控制律,该律允许控制器仅使用加密数据来计算控制输入。利用Lyapunov稳定性理论和Paillier密码系统的同态性质,证明了闭环系统中的所有信号是一致最终有界的。与传统航天器运动控制规律不同,所提出的加密控制框架能够保证航天器通信网络中交换数据的安全性,即使通信通道被恶意攻击者窃听。最后,通过数值仿真验证了所提出的加密控制框架的有效性。
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