实测汽车雷达反射的统计建模

W. Buller, B. Wilson, L. Nieuwstadt, J. Ebling
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引用次数: 15

摘要

统计分析进行了测量雷达反射从广泛的个人车辆类别。这项研究的结果是双重的:1)。改进了对汽车雷达散射组件的理解,这为评估汽车预碰撞系统(PCS)雷达的替代测试目标的设计提供了信息;2)用于评估替代目标和表征PCS雷达系统设计的目标模型的统计模型。我们检验了用于测量目标车辆雷达截面(RCS)的双参数分布模型的有效性,发现威布尔分布是最适合的。在评估威布尔分布模型的拟合优度时,使用Kolmogorov-Smirnov检验,我们认为模型与我们预期项目结果的测量RCS数据之间的拟合是可接受的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Statistical modelling of measured automotive radar reflections
A statistical analysis was performed on measured radar reflections from a broad range of personal vehicle classes. The outcome of this study is two-fold: 1.) An improved understanding of the radar scattering components of automobiles, which informs the design of surrogate test targets for evaluating automotive pre-collision system (PCS) radars, and 2.) statistical models for evaluating surrogate targets and characterizing target models for PCS radar system designs. We examined the validity of two-parameter distribution models applied to measurements of subject vehicle's radar cross-section (RCS) and found the Weibull distribution to be the best fit. In evaluating the goodness-of-fit of the Weibull distribution model, using the Kolmogorov-Smirnov test, we deem an acceptable fit between the model and the measured RCS data for our intended project outcome.
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