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  • 基于GCNMO的低軌衛星網絡抗毀性優化算法

    A GCNMO-based optimization algorithm for resilience in LEO satellite networks

    • 摘要: 低軌衛星網絡拓撲動態變化,在復雜環境下易受到節點故障與鏈路中斷的影響,威脅通信系統的魯棒性。針對傳統抗毀性評估方法無法準確刻畫網絡結構特征、優化模型目標間協同不足等問題,本文提出一種融合圖卷積神經網絡(GCN)與多目標優化算法(NSGA-Ⅱ)的拓撲優化方法(GCNMO)。首先利用GCN模型對拓撲節點進行抗毀性感知,構建加權鄰接矩陣,并引入加權自然連通度指標衡量網絡抗毀性;隨后采用啟發式鄰近連邊策略改進初始拓撲種群,最終基于NSGA-II算法對網絡拓撲進行多目標優化,引導搜索方向,獲得Pareto最優解集。仿真結果驗證了所提方法在提升網絡抗毀性與通信性能方面具有更優表現,能夠有效增強低軌衛星網絡在復雜環境下的穩定性與可靠性。

       

      Abstract: The dynamic topology of Low-orbit satellite networks is highly susceptible to node failures and link disruptions in complex environments, posing significant threats to communication system robustness. To address the limitations of traditional robustness evaluation methods in accurately characterizing network structural features and coordinating multiple optimization objectives, this paper proposes a novel topology optimization approach that integrates Graph Convolutional Networks (GCN) with a multi-objective optimization algorithm (NSGA-II), termed GCNMO. In this paper, the GCN model is first employed to capture the damage-aware features of network nodes and construct a weighted adjacency matrix, where a weighted natural connectivity metric is introduced to quantify network robustness. Then, a heuristic nearest-neighbor connection strategy is utilized to enhance the quality of the initial topology population. Finally, the NSGA-II algorithm is applied to conduct multi-objective optimization of network topologies, guiding the search toward the Pareto-optimal solution set. The simulation results show that the proposed approach significantly improves network robustness and communication performance, thereby enhancing the stability and reliability of LEO satellite networks under complex environmental conditions.

       

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  • 啪啪啪视频