th Generation (5G) wireless networks are envisioned to support emerging bandwidth-hungry applicatio'/> Analysis of Indoor Solutions for Provision of Indoor Coverage at 3.5 GHz and 28 GHz for 5G System
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Analysis of Indoor Solutions for Provision of Indoor Coverage at 3.5 GHz and 28 GHz for 5G System

机译:3.5 GHz和28 GHz为5G系统提供室内覆盖的室内解决方案分析

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The 5th Generation (5G) wireless networks are envisioned to support emerging bandwidth-hungry applications. Millimeter wave (mmWave) communication has been considered as a promising solution for future capacity crunch due to large available bandwidth. However, an outdoor macrocellular layer lacks the capability of providing an adequate coverage to indoor users, especially at higher frequencies i.e. 28 GHz. Therefore, the provision of high data rates and high system capacity in an indoor environment requires a separate indoor solution. The main target of this paper is to analyze the performance of Ultra Dense Network (UDN) and Distributed Antenna System (DAS) deployment in an indoor (university office) environment at 1.8 GHz, 2.6 GHz, 3.5 GHz and 28 GHz frequency. This research work is conducted by performing a ray tracing simulation using a three dimensional floor plan. The obtained results show that the existing indoor solutions which are in operation at 2.6 GHz can be reused at 3.5 GHz frequency with minor power adjustment, or by using antennas with little higher gain. However, the operation at 28 GHz requires a new plan for providing good indoor coverage. Acquired results show that DAS improves the cell capacity by reducing the interference. However, the UDN provides a higher system capacity due to more number of cells. The real gain of operation at 28 GHz can only be achieved by using larger system bandwidth e.g 200 MHz band.
机译:5. th 设想生成(5G)无线网络以支持新出现的带宽饥饿的应用。毫米波(MMWAVE)通信已被认为是未来容量紧缩导致的有希望的解决方案。然而,室外宏细胞层缺乏对室内用户提供足够覆盖的能力,尤其是在更高的频率下,即28 GHz。因此,在室内环境中提供高数据速率和高系统容量需要单独的室内解决方案。本文的主要目标是分析1.8 GHz,2.6 GHz,3.5 GHz和28 GHz频率的室内(大学办公室)环境中的超密集网络(UDN)和分布式天线系统(DAS)部署的性能。通过使用三维平面图进行光线跟踪模拟来进行该研究工作。所获得的结果表明,在2.6 GHz下运行的现有室内解决方案可以在3.5 GHz频率下重复使用,具有较小的功率调整,或者使用较高的增益具有较高的天线。但是,28 GHz的操作需要新的计划来提供良好的室内覆盖范围。获得的结果表明,DAS通过降低干扰来提高电池容量。然而,由于更多的单元格,UDN提供了更高的系统容量。只有使用较大的系统带宽例如200 MHz频段,才能实现28 GHz的实际操作增益。

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