首页> 外文期刊>IEEE Transactions on Vehicular Technology >In-Vehicle Channel Measurement, Characterization, and Spatial Consistency Comparison of text{30}hbox{--}text{11 GHz} and text{55}hbox{--}text{65 GHz} Frequency Bands
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In-Vehicle Channel Measurement, Characterization, and Spatial Consistency Comparison of text{30}hbox{--}text{11 GHz} and text{55}hbox{--}text{65 GHz} Frequency Bands

机译:文本{30} hbox {-}文本{11 GHz}和文本{55} hbox {-}文本{65 GHz}频带的车载通道测量,表征和空间一致性比较

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The paper provides real-word wireless measurement data of the intravehicular channel for both the text{3}hbox{--}text{11 GHz} and the text{55}hbox{--}text{65 GHz} frequency bands under similar conditions. By spatially averaging channel impulse response realizations within a 10times 10 grid, we obtain the power-delay profile (PDP). The data measured at text{3}hbox{--}text{11 GHz} and text{55}hbox{--}text{65 GHz} exhibit significant differences in terms of root mean square (RMS) delay spread, number of resolvable clusters, and variance of the maximal excess delay. Moreover, we evaluate the spatial stationarity via the Pearson correlation coefficient and via the PDP collinearity, depending on the distance in the grid. The measured and calculated results indicate that a strong reverberation inside the vehicle produces similar PDPs within the range of approximately ten wavelengths. We also provide a linear piecewise model of the PDP in logarithmic scale and a generalized extreme value model of a small-scale signal fading. Our channel model is validated utilizing the Kolmogorov–Smirnov test.
机译:本文提供了在相似情况下,文本{3} hbox {-}文本{11 GHz}和文本{55} hbox {-}文本{65 GHz}频段的车内通道的实字无线测量数据条件。通过在10 x 10网格内对信道脉冲响应实现进行空间平均,我们可以获得功率延迟曲线(PDP)。在text {3} hbox {-} text {11 GHz}和text {55} hbox {-} text {65 GHz}处测得的数据在均方根(RMS)延迟扩展,可解决的群集,以及最大额外延迟的方差。此外,根据网格中的距离,我们通过Pearson相关系数和PDP共线性来评估空间平稳性。测量和计算的结果表明,车辆内部强烈的混响会在大约十个波长范围内产生相似的PDP。我们还提供了对数规模的PDP线性分段模型和小规模信号衰落的广义极值模型。我们的渠道模型已通过Kolmogorov-Smirnov检验进行了验证。

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