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Junbin Yu

Publications and source records attributed to Junbin Yu.

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Toward Security-Resilient Cell-Free Massive MIMO: A Multi-Stage Framework

This paper develops a robust security-resilient transmission framework for cell-free massive multiple-input multiple-output (CF-mMIMO) systems under active pilot spoofing attacks. As a baseline, system performance is characterized under attack-free conditions to establish the target user's pre-attack service level. Upon attack detection, the system enters an absorption phase, during which, power allocation is adaptively adjusted across a limited subset of access points (APs) using contaminated channel state information (CSI). This phase quickly compensates for performance degradation while maintaining low operational overhead. Once the secrecy spectral efficiency (SSE) recovers to a prescribed loss level, the resulting power allocation initializes the restoration phase. Here, the transmit powers of all APs are jointly optimized, and a protective partial zero-forcing (PPZF) strategy further improves secrecy. In parallel, artificial noise (AN) is incorporated under a worst-case eavesdropping scenario accounting for large-scale fading uncertainty. The resulting stage-dependent non-convex problems are formulated within a unified framework and solved using successive convex approximation (SCA). Numerical results demonstrate that the proposed scheme achieves an effective time-quality tradeoff while maintaining the highest recovered secrecy; in a representative setup, it achieves gains of up to 3.6%, 15.7%, and 56% over the respective baseline schemes, with similar improvements under eavesdropper's channel uncertainty.

eess.SP

Resilient Cell-Free Massive MIMO Networks

This paper proposes a novel optimization framework for enhancing the security resilience of cell-free massive multiple-input multiple-output (CF-mMIMO) networks with multi-antenna access points (APs) and protective partial zero-forcing (PPZF) under active eavesdropping. Based on the main principles of absorption, adaptation, and recovery, we formulate a security-aware resilience metric to quantify the system performance during and after a security outage. A multi-user service priority-aware power allocation problem is formulated to minimize the mean squared error (MSE) between real-time and desired security efficiency, thereby enabling a trade-off between the target user's secrecy performance and multi-user quality of service (QoS). To solve this non-convex problem, a security-aware iterative algorithm based on the successive convex approximation (SCA) is employed. The proposed algorithm determines the optimal power allocation strategy by balancing solution quality against recovery time. At each iteration, it evaluates the overall resilience score and selects the strategy that achieves the highest value. Simulation results confirm that the proposed framework significantly improves the resilience of CF-mMIMO networks, allowing flexible adaptation between rapid recovery and high-quality recovery, depending on system requirements.

eess.SP