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Design and implementation of a wideband channel emulation platform for 5G mmWave vehicular communication

机译:5G MMWAVE车辆通信宽带通道仿真平台的设计与实现

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In this study, the authors design and implement a real-time hardware-in-the-loop (HIL) wideband high-velocity channel emulation platform for the performance evaluation and verification of 5G mmWave systems. A novel spectral splitting & stitching method and channel partitioning algorithm are developed to synchronously combine up to eight 160 MHz sub-channels. The HIL platform was calibrated in the time and frequency domains and then validated using back-to-back results from a pair of experimental 60 GHz mmWave modems. The emulated path loss was generated for an additive white Gaussian noise channel to characterise the data throughput versus signal-to-noise ratio for a fixed point-to-point deployment. The wideband emulator was then used to introduce the Doppler shifts and spreads observed in a high velocity (up to 600 km/h) mmWave channel. For a Ricean channel (K-factor greater than or equal to 10 dB), negligible data throughput losses were observed for velocities up to 293.9 km/h. Using the emulator, they show that the 5G modems can achieve continuous connectivity (albeit with some throughput loss) at velocities up to 587.8 km/h. Tests were also conducted in Rayleigh channels with uniformly distributed spatial multipath. In the Rayleigh case, the maximum vehicular velocity dropped to 51.4 km/h.
机译:在本研究中,作者设计并实现了一个实时硬件循环(HIL)宽带高速信道仿真平台,用于5G MMWAVE系统的性能评估和验证。开发了一种新颖的频谱分离和拼接方法和信道分区算法以同步组合多达八个160MHz的子通道。 HIL平台在时间和频率域中进行校准,然后使用一对实验60 GHz MMWAVE调制解调器使用背面的结果进行验证。生成模拟的路径损耗,用于添加白色高斯噪声信道,以表征数据吞吐量与传达点对点部署的信噪比。然后使用宽带仿真器来引入高速(高达600 km / h)MMWAVE通道观察到的多普勒换档和涂抹。对于Ricean通道(大于或等于10dB的K系数),观察到可忽略的数据吞吐量损耗,用于高达293.9 km / h的速度。使用仿真器,他们表明5G调制解调器可以在速度下实现连续连接(尽管有一些吞吐量损耗),高达587.8 km / h。还使用均匀分布的空间多径进行瑞利渠道进行测试。在瑞利案例中,最大车辆速度下降至51.4 km / h。

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