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Generative Adversarial Networks Based Digital Twin Channel Modeling for Intelligent Communication Networks 被引量:2

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摘要 Integration of digital twin(DT)and wireless channel provides new solution of channel modeling and simulation,and can assist to design,optimize and evaluate intelligent wireless communication system and networks.With DT channel modeling,the generated channel data can be closer to realistic channel measurements without requiring a prior channel model,and amount of channel data can be significantly increased.Artificial intelligence(AI)based modeling approach shows outstanding performance to solve such problems.In this work,a channel modeling method based on generative adversarial networks is proposed for DT channel,which can generate identical statistical distribution with measured channel.Model validation is conducted by comparing DT channel characteristics with measurements,and results show that DT channel leads to fairly good agreement with measured channel.Finally,a link-layer simulation is implemented based on DT channel.It is found that the proposed DT channel model can be well used to conduct link-layer simulation and its performance is comparable to using measurement data.The observations and results can facilitate the development of DT channel modeling and provide new thoughts for DT channel applications,as well as improving the performance and reliability of intelligent communication networking.
出处 《China Communications》 SCIE CSCD 2023年第8期32-43,共12页 中国通信(英文版)
基金 supported by National Key R&D Program of China under Grant 2021YFB3901302 and 2021YFB2900301 the National Natural Science Foundation of China under Grant 62271037,62001519,62221001,and U21A20445 the State Key Laboratory of Advanced Rail Autonomous Operation under Grant RCS2022ZZ004 the Fundamental Research Funds for the Central Universities under Grant 2022JBQY004.
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