班达亚齐市6G通信网络统计信道模型

Q3 Computer Science
H. Walidainy, Nawal Nashirah, Ramzi Adriman, Y. Away, N. Nasaruddin
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引用次数: 1

摘要

由于6G通信网络提供的众多服务几乎完全涵盖了日常生活的每个部分并使用各种设备,因此无线技术预计将经历相当大的变革。信道建模是设计6G通信网络的一个重要因素。为了满足未来6G通信网络对信道的要求,信道测量要考虑路径损耗、多频带、衰落、阻塞效应、多径聚类、发送端和接收端移动速度/方向/时间等因素。本文的目标是使用统计信道模型设计和评估班达亚齐市的6G通信网络。河道模型与诸如降雨和湿度等环境条件有关。然后利用NYUSIM仿真器进行计算机仿真,完成工作频率为95 GHz、带宽为800 MHz的信道建模。在模拟器中,设计的6G信道模型在视距(LOS)和非视距(NLOS)网络环境下进行了评估。此外,还对指定的网络参数,如覆盖区域、到达角(AoA)、出发角(AoD)和功率延迟曲线(PDP)进行了仿真。结果表明,在AoA时,LOS条件下的接收功率范围为-86 ~ -101 dBm,而NLOS条件下的接收功率范围为-91 ~ -111 dBm。在LOS条件下,AoD接收功率范围为-86 dBm ~ -101 dBm,而在NLOS条件下,AoD接收功率范围为-91 dBm ~ -111 dBm。在全向PDP中,LOS条件下的路径损耗值为99.8 dB,时延为17.9 ns; NLOS条件下的路径损耗值为104.2 dB,时延为28.1 ns。对于定向PDP, LOS条件产生106.4 dB的路径损耗和2.9 ns的延迟,而NLOS条件产生110.5 dB的路径损耗和3 ns的延迟。结论。仿真结果表明,在两种观测环境下,对于班达亚齐市的6G网络,AoA、AoD和PDP在接收功率、路径损耗和传播延迟方面都处于可接受的条件。因此,未来在班达亚齐市建立6G网络是可以想象的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Statistical channel model for 6G communication networks in Banda Aceh City
Wireless technology is expected to undergo considerable transformation because of the numerous services offered by 6G communication networks, which virtually entirely encompass every part of everyday life and use a variety of devices. Channel modeling is an essential factor in designing 6G communication networks. To meet the channel requirements of future 6G communication networks, it is crucial to measure the channel to consider path loss, multi-band, fading, blocking effect, multipath clustering, transmitter, and receiver moving speed/direction/time. The goal of this paper is to design and evaluate a 6G communication network in Banda Aceh City using a statistical channel model. The channel model is associated with environmental conditions such as rainfall and humidity. The method is then based on computer simulation using the NYUSIM simulator to complete the channel modeling using an operating frequency of 95 GHz with a bandwidth of 800 MHz. In the simulator, the designed 6G channel model is evaluated in both line-of-sight (LOS) and non-line-of-sight (NLOS) network environments. In addition, the designated network parameters, such as the coverage area, angle of arrival (AoA), angle of departure (AoD), and power delay profile (PDP), are simulated.  The results, at AoA, the value of received power for LOS conditions ranges from -86 dBm to -101 dBm, while the value for NLOS conditions ranges from -91 dBm to -111 dBm. Under LOS conditions, the received power for AoD ranges from -86 dBm to -101 dBm, whereas under NLOS conditions, it ranges from -91 dBm to -111 dBm. In the omnidirectional PDP, the pathloss value for the LOS condition is 99.8 dB and the delay is 17.9 ns, while the pathloss value for the NLOS condition is 104.2 dB with a delay of 28.1 ns. For the directional PDP, the LOS condition yields a path loss of 106.4 dB and a delay of 2.9 ns, while the NLOS condition yields a path loss of 110.5 dB and a delay of 3 ns. Conclusions. The simulation indicated that the AoA, AoD, and PDP in terms of received power, pathloss, and propagation delay are in acceptable conditions for a 6G network in Banda Aceh City in the two observed environments. Therefore, it is conceivable to establish a 6G network in Banda Aceh City in the future.
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来源期刊
Radioelectronic and Computer Systems
Radioelectronic and Computer Systems Computer Science-Computer Graphics and Computer-Aided Design
CiteScore
3.60
自引率
0.00%
发文量
50
审稿时长
2 weeks
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