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STATISTICAL CLASSIFICATION OF ROAD PAVEMENTS USING NEAR FIELD VEHICLE ROLLING NOISE MEASUREMENTS

机译:基于近场车辆滚动噪声测量的道路路面的统计分类

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摘要

Low noise surfaces have been increasingly considered as a viable and cost-effective alternative to acoustical barriers. However, road planners and administrators frequently lack information on the correlation between the type of road surface and the resulting noise emission profile. To address this problem, a method to identify and classify different types of road pavements was developed, whereby near field road noise is analysed using statistical learning methods. The vehicle rolling sound signal near the tires and close to the road surface was acquired by two microphones in a special arrangement which implements the Close-Proximity method. A set of features, characterizing the properties of the road pavement, was extracted from the corresponding sound profiles. A feature selection method was used to automatically select those that are most relevant in predicting the type of pavement, while reducing the computational cost. A set of different types of road pavement segments were tested and the performance of the classifier was evaluated. Results of pavement classification performed during a road journey are presented on a map, together with geographical data. This procedure leads to a considerable improvement in the quality of road pavement noise data, thereby increasing the accuracy of road traffic noise prediction models.
机译:低噪声表面已被越来越多地认为是隔音屏障的可行且具有成本效益的替代方法。然而,道路规划者和管理者经常缺乏关于路面类型与产生的噪声排放轮廓之间的相关性的信息。为了解决该问题,开发了一种对不同类型的路面进行识别和分类的方法,从而使用统计学习方法来分析近场道路噪声。轮胎附近和路面附近的车辆侧倾声音信号是由两个麦克风以特殊方式采集的,这些麦克风实现了“近距离”方法。从相应的声音轮廓中提取了一组表征道路路面特性的特征。使用特征选择方法自动选择与预测路面类型最相关的特征,同时降低计算成本。测试了一组不同类型的道路路段,并评估了分类器的性能。在道路行驶过程中进行的路面分类结果与地理数据一起显示在地图上。该过程导致道路路面噪声数据质量的显着提高,从而提高了道路交通噪声预测模型的准确性。

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