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Real-Time Vehicular Channel Emulator for Future Conformance Tests of Wireless ITS Modems

机译:实时车载信道仿真器,用于无线ITs调制解调器的未来一致性测试

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摘要

In the vehicular communication channels, the mobility of the receiver (RX) and the transmitter (TX) along with the movements of interacting objects in the propagation environment result in significant non-stationary channel fading. The channel impulse response exhibits not just significant delay- and Doppler spreads, but also the delay- and Doppler spreads themselves are changing over the time- and frequency axes. In other words: the channel statistics change as the geometry of RX, TX, and interacting objects evolve over time. To account for this, the local stationary regions in time and frequency are specified and each one is modeled by a distinct local scattering function. We present an architecture for a real-time emulator capable of reproducing the input/output behavior of a non-stationary n-tap wireless vehicular propagation channel. The architecture is implemented as a virtual instrument on LabView and we benchmark the packet error ratio (PER) of a commercial off the shelf (COTS) vehicular IEEE 802.11p modem. The emulator architecture aims at a hardware implementation which features optimised hardware complexity while providing the required flexibility for calculating the non-stationary channel responses by reconfiguring the scattering model for each local stationary region. The National Instrument USRP-Rio 2953R is used as the Software-Defined Radio platform for implementation, however the results and considerations reported are general-purpose and can be applied to other platforms. Finally, we discuss the PER performance of a COTS modem for a vehicular non-stationary channel model derived for highway obstructed line of sight (LOS) scenario in the DRIVEWAY'09 measurement campaign.
机译:在车辆通信信道中,接收器(RX)和发送器(TX)的移动性以及交互对象在传播环境中的移动导致显着的非平稳信道衰落。信道脉冲响应不仅表现出明显的延迟和多普勒扩展,而且延迟和多普勒扩展本身也在时间轴和频率轴上变化。换句话说:随着RX,TX的几何形状以及交互对象随时间的发展,通道统计信息也会发生变化。为了解决这个问题,指定了时间和频率上的局部静止区域,并且每个区域都通过独特的局部散射函数建模。我们提出了一种实时仿真器的体系结构,该仿真器能够再现非平稳n抽头无线车辆传播信道的输入/输出行为。该架构被实现为LabView上的虚拟仪器,并且我们对商用(COTS)车载IEEE 802.11p调制解调器的分组错误率(PER)进行基准测试。仿真器体系结构的目标是实现硬件优化的硬件实现,同时通过为每个本地固定区域重新配置散射模型,为计算非平稳信道响应提供所需的灵活性。 National Instrument USRP-Rio 2953R用作实现的软件定义无线电平台,但是报告的结果和注意事项是通用的,可以应用于其他平台。最后,我们讨论了在DRIVEWAY'09测量活动中针对高速公路阻塞视线(LOS)场景得出的车辆非平稳通道模型的COTS调制解调器的PER性能。

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