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Wei-Zhi Meng

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#graph neural networks Open access Oct 2026

Fed-MoSeC: A Federated Learning Framework for Cross-Modal Semantic Communication Systems in Mobile Networks

Semantic communication systems in mobile networks necessitate real-time collaborative updates of semantic encoders as a result of node mobility that induces semantic extraction drift. However, diversity within modal transmission content and heterogeneous encoder architectures, along with challenges such as imbalanced training requirements and pseudo-label noise, limit the effectiveness of general collaborative update approaches. In this paper, we propose Fed-MoSeC, a novel federated learning framework for updating cross-modal semantic encoders. Our framework trains only a newly designed graph neural network-based adapter while freezing heterogeneous encoders for various modalities, converting heterogeneous cross-modal updates into a homogeneous aggregation task, and significantly reducing communication overhead. By combining confidence-based filtering with similarity-matrix distillation, the novel integrated Pseudo-label Noise Counteracting Component (PNCC) is designed to be robust to noisy data. The Training Optimization Component (TOC) based on a bi-level Cournot–Stackelberg game theoretical algorithm achieves near-optimal Subgame-Perfect Nash Equilibrium (SPNE) to incentivize across nodes and maximize update nodes’ utilities with different training levels. Experimental results highlight the advantages of Fed-MoSeC over existing potential application algorithms, reducing communication by 95–97% and improving RSUM by 18% at 70% pseudo-label noise.

Yushi Wang, Zheng-Xin Yu, Gu-Han Zheng et al. · 0 citations
Open access Jul 2026

BioZKFHE: Scalable Encrypted Biometric Identification via Verifiable Homomorphic Similarity Evaluation

BioZKFHE is presented, a framework for scalable encrypted biometric identification via verifiable homomorphic similarity evaluation that combines BGV homomorphic computation with committee-mediated proof opening/decryption and smart-contract verification of opened proof batches.

Rundong Xin, Taotao Wang, Xiaoxiao Wu et al. · 0 citations

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