activity
20192026
most citedJoint Optimization of Deployment and Trajectory in UAV and IRS-Assisted IoT Data Collection System

64 citations · 128 across the 19 of their papers we have counts for

collaborators
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7 papers · 1 filter

cs.LG2025

SIMAC: A Semantic-Driven Integrated Multimodal Sensing And Communication Framework

Yubo Peng, Luping Xiang, Kun Yang +3

Traditional single-modality sensing faces limitations in accuracy and capability, and its decoupled implementation with communication systems increases latency in bandwidth-constra…

cs.LG20247 cited

Explainable Semantic Federated Learning Enabled Industrial Edge Network for Fire Surveillance

Li Dong, Yubo Peng, Feibo Jiang +2

In fire surveillance, Industrial Internet of Things (IIoT) devices require transmitting large monitoring data frequently, which leads to huge consumption of spectrum resources. Hen…

cs.LG2024

GAI-Enabled Explainable Personalized Federated Semi-Supervised Learning

Yubo Peng, Feibo Jiang, Li Dong +2

Federated learning (FL) is a commonly distributed algorithm for mobile users (MUs) training artificial intelligence (AI) models, however, several challenges arise when applying FL…

cs.LG2024

Personalized Federated Learning for Generative AI-Assisted Semantic Communications

Yubo Peng, Feibo Jiang, Li Dong +2

Semantic Communication (SC) focuses on transmitting only the semantic information rather than the raw data. This approach offers an efficient solution to the issue of spectrum reso…

cs.LG202447 cited

Deep progressive reinforcement learning-based flexible resource scheduling framework for IRS and UAV-assisted MEC system

Li Dong, Feibo Jiang, Minjie Wang +2

The intelligent reflection surface (IRS) and unmanned aerial vehicle (UAV)-assisted mobile edge computing (MEC) system is widely used in temporary and emergency scenarios. Our goal…

cs.LG2024

Personalized Wireless Federated Learning for Large Language Models

Feibo Jiang, Li Dong, Siwei Tu +5

Large language models (LLMs) have driven profound transformations in wireless networks. However, within wireless environments, the training of LLMs faces significant challenges rel…