Ultra-reliable low-latency communication (URLLC) in 5G New Radio has been originally defined only for licensed spectrum. However, due to new use cases in the Industry 4.0 scenarios, URLLC operation is currently being extended to unlicensed spectrum in the ongoing Release 17 of the 3rd Generation Partnership Project. Although in such controlled environments we can guarantee the absence of any other technology sharing the channel on a long-term basis, the uncertainty of obtaining channel access through load based equipment (LBE) or frame based equipment (FBE) can impede with the latency requirements of URLLC. In FBE, the transmitters can be prioritized to support data with different requirements and have lower energy consumption and latency compared to LBE with a big contention window size. In this paper we analyze the performance of FBE in an unlicensed controlled environment through a Markov chain. Based on this analysis, we propose two schemes to improve the URLLC performance in FBE: The first scheme allows the transmitters to use multiple fixed frame period (FFP) configurations while the second scheme configures the FFP's starting point of each transmitter based on its priority. The simulations show the benefits of these schemes compared to the URLLC transmission of existing schemes.
翻译:在5G新电台中,最初只对特许频谱界定了超长低频通信(URLLC),然而,由于工业4.0设想方案中的新使用案例,URLLC运行目前正在扩大到第三代伙伴关系项目第17版中无许可证频谱。虽然在这种受控制环境中,我们可以保证没有长期共享频道的任何其他技术,但通过负载设备(LBE)或基于框架的设备(FBE)获得频道接入的不确定性会妨碍URLLC的延时要求。在FBE中,发射机可以优先支持不同要求的数据,能源消耗量和延迟度低于大争议窗口大小LBE。在本文中,我们通过Markov链分析FBE在无许可证控制环境中的FBE运行情况。我们根据这一分析,提出了两个改进FBE的URLC性能的计划:第一种办法允许发射机使用多个固定框架期(FFP)配置,而第二种办法则可以配置FFFPFP的模拟系统,以每个LFLC系统的现有传输计划为起点。