arXiv:2604.02691cs.LG2026-04

用专家混合机制让图像传输自动适配内容和信道。

Adaptive Semantic Communication for Wireless Image Transmission Leveraging Mixture-of-Experts Mechanism

  • 根据图像内容和信道状态动态选择专家模型
  • 重建质量显著提升,传输效率保持不变
  • 适合复杂多变的无线图像传输场景

基于深度学习的语义通信在无线图像传输中取得显著进展,但现有方法多依赖固定模型,难以应对多样图像内容和动态信道条件。为提升适应性,近期研究提出根据源内容或信道状态调整传输或模型行为的自适应策略。更近的研究采用基于混合专家(MoE)的语义通信架构,实现稀疏高效自适应,但现有设计仍主要依赖单一驱动路由。为此,我们提出一种新型多阶段端到端图像语义通信系统,适用于多输入多输出(MIMO)信道,核心为自适应MoE Swin Transformer模块。具体地,引入动态专家门控机制,联合评估实时信道状态信息(CSI)与输入图像块的语义内容,计算自适应路由概率。通过仅激活基于该联合条件的特定专家子集,打破传统自适应方法的刚性耦合,并克服单驱动路由瓶颈。仿真结果表明,该方法在保持传输效率的同时,显著提升重建质量。

原文摘要 · Abstract (English)

Deep learning based semantic communication has achieved significant progress in wireless image transmission, but most existing schemes rely on fixed models and thus lack robustness to diverse image contents and dynamic channel conditions. To improve adaptability, recent studies have developed adaptive semantic communication strategies that adjust transmission or model behavior according to either source content or channel state. More recently, MoE-based semantic communication has emerged as a sparse and efficient adaptive architecture, although existing designs still mainly rely on single-driven routing. To address this limitation, we propose a novel multi-stage end-to-end image semantic communication system for multi-input multi-output (MIMO) channels, built upon an adaptive MoE Swin Transformer block. Specifically, we introduce a dynamic expert gating mechanism that jointly evaluates both real-time CSI and the semantic content of input image patches to compute adaptive routing probabilities. By selectively activating only a specialized subset of experts based on this joint condition, our approach breaks the rigid coupling of traditional adaptive methods and overcomes the bottlenecks of single-driven routing. Simulation results indicate a significant improvement in reconstruction quality over existing methods while maintaining the transmission efficiency.

语义通信MoE自适应传输图像传输

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