无线网络上的绿色概率语义通信

Ruopeng Xu, Zhaohui Yang, Yijie Mao, Chongwen Huang, Qianqian Yang, Lexi Xu, Wei Xu, Zhaoyang Zhang
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引用次数: 0

摘要

本文提出了一个由概率知识图谱(PKG)推动的多用户绿色语义通信系统。通过将概率整合到知识图谱中,我们实现了概率语义通信(PSC)并相应地表示了语义信息。在此基础上,利用语义压缩比(SCR)作为连接信息传输的计算和通信过程的参数,引入了一种为面向下行链路任务的多用户通信而设计的语义压缩模型。基于速率分割多重接入(RSMA)技术,我们推导出了系统传输能耗的数学表达式和相关公式。随后,建立了多用户绿色语义通信系统模型,并在给定约束条件下,综合考虑计算和通信过程,提出了以系统能耗最小化为目标的最优问题。为了解决最优问题,我们提出了一种交替优化算法,以解决功率分配和波束成形设计、语义压缩比和计算能力分配等子问题。仿真结果验证了我们方法的有效性,证明了我们的系统优于使用空分多址接入(SDMA)和非正交多址接入(NOMA)代替 RSMA 的方法,并突出了我们的 PSC 压缩模型的优势。
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Green Probabilistic Semantic Communication over Wireless Networks
In this paper, we propose a multi-user green semantic communication system facilitated by a probabilistic knowledge graph (PKG). By integrating probability into the knowledge graph, we enable probabilistic semantic communication (PSC) and represent semantic information accordingly. On this basis, a semantic compression model designed for multi-user downlink task-oriented communication is introduced, utilizing the semantic compression ratio (SCR) as a parameter to connect the computation and communication processes of information transmission. Based on the rate-splitting multiple access (RSMA) technology, we derive mathematical expressions for system transmission energy consumption and related formulations. Subsequently, the multi-user green semantic communication system is modeled and the optimal problem with the goal of minimizing system energy consumption comprehensively considering the computation and communication process under given constrains is formulated. In order to address the optimal problem, we propose an alternating optimization algorithm that tackles sub-problems of power allocation and beamforming design, semantic compression ratio, and computation capacity allocation. Simulation results validate the effectiveness of our approach, demonstrating the superiority of our system over methods using Space Division Multiple Access (SDMA) and non-orthogonal multiple access (NOMA) instead of RSMA, and highlighting the benefits of our PSC compression model.
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