TY - JOUR
T1 - TokenCom-UEP
T2 - Semantic Importance-Matched Unequal Error Protection for Resilient Image Transmission
AU - Zhang, Kaizheng
AU - Jin, Zuolin
AU - Zhang, Yi
AU - Cheng, Zhihang
AU - Zeng, Ming
AU - Qiao, Li
AU - Fei, Zesong
N1 - Publisher Copyright:
© 2012 IEEE. All rights reserved.
PY - 2026
Y1 - 2026
N2 - Token communication (TokenCom), an emerging semantic communication framework powered by Large Multimodal Model (LMM), has become a key paradigm for resilient data transmission in 6G networks. While the concept of leveraging non-uniform token importance for unequal error protection (UEP) in Token Communication (TokenCom) has been previously suggested, existing implementations predominantly rely on equal error protection (EEP), which is suboptimal. To address this, this letter proposes TokenCom-UEP, a novel semantic importance-matched UEP framework designed for resilient image transmission. TokenCom-UEP integrates rateless UEP coding with the non-uniform semantic importance of tokens by partitioning source tokens into nested expanding windows, assigning higher selection probabilities to windows containing critical tokens to ensure their prioritized recovery. Simulation results demonstrate that TokenCom-UEP outperforms EEP schemes in terms of three core semantic restoration metrics and achieves higher bandwidth utilization.
AB - Token communication (TokenCom), an emerging semantic communication framework powered by Large Multimodal Model (LMM), has become a key paradigm for resilient data transmission in 6G networks. While the concept of leveraging non-uniform token importance for unequal error protection (UEP) in Token Communication (TokenCom) has been previously suggested, existing implementations predominantly rely on equal error protection (EEP), which is suboptimal. To address this, this letter proposes TokenCom-UEP, a novel semantic importance-matched UEP framework designed for resilient image transmission. TokenCom-UEP integrates rateless UEP coding with the non-uniform semantic importance of tokens by partitioning source tokens into nested expanding windows, assigning higher selection probabilities to windows containing critical tokens to ensure their prioritized recovery. Simulation results demonstrate that TokenCom-UEP outperforms EEP schemes in terms of three core semantic restoration metrics and achieves higher bandwidth utilization.
KW - Token communication
KW - large foundation models
KW - semantic communication
KW - semantic importance-matched
KW - unequal error protection
UR - https://www.scopus.com/pages/publications/105036720776
U2 - 10.1109/LWC.2026.3683938
DO - 10.1109/LWC.2026.3683938
M3 - Article
AN - SCOPUS:105036720776
SN - 2162-2337
VL - 15
SP - 2809
EP - 2813
JO - IEEE Wireless Communications Letters
JF - IEEE Wireless Communications Letters
ER -