Bechta Kamil, Kelner Jan M, Ziółkowski Cezary, Nowosielski Leszek
Nokia Solutions and Networks, 54-130 Wrocław, Poland.
Institute of Communications Systems, Faculty of Electronics, Military University of Technology, 00-908 Warsaw, Poland.
Sensors (Basel). 2021 Jan 25;21(3):793. doi: 10.3390/s21030793.
This paper presents a methodology for assessing co-channel interference that arises in multi-beam transmitting and receiving antennas used in fifth-generation (5G) systems. This evaluation is essential for minimizing spectral resources, which allows for using the same frequency bands in angularly separated antenna beams of a 5G-based station (gNodeB). In the developed methodology, a multi-ellipsoidal propagation model (MPM) provides a mapping of the multipath propagation phenomenon and considers the directivity of antenna beams. To demonstrate the designation procedure of interference level we use simulation tests. For exemplary scenarios in downlink and uplink, we showed changes in a signal-to-interference ratio versus a separation angle between the serving (useful) and interfering beams and the distance between the gNodeB and user equipment. This evaluation is the basis for determining the minimum separation angle for which an acceptable interference level is ensured. The analysis was carried out for the lower millimeter-wave band, which is planned to use in 5G micro-cells base stations.
本文提出了一种评估第五代(5G)系统中多波束发射和接收天线产生的同频干扰的方法。这种评估对于最小化频谱资源至关重要,这使得在基于5G的基站(gNodeB)的角度分离天线波束中可以使用相同的频段。在所开发的方法中,多椭球传播模型(MPM)提供了多径传播现象的映射,并考虑了天线波束的方向性。为了演示干扰水平的指定过程,我们使用了模拟测试。对于下行链路和上行链路中的示例场景,我们展示了信号与干扰比相对于服务(有用)波束和干扰波束之间的分离角度以及gNodeB与用户设备之间距离的变化。该评估是确定确保可接受干扰水平的最小分离角度的基础。分析是针对计划用于5G微小区基站的较低毫米波频段进行的。