首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part D. Journal of Automobile Engineering >Objective evaluation of the rumbling sound in passenger cars based on an artificial neural network
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Objective evaluation of the rumbling sound in passenger cars based on an artificial neural network

机译:基于人工神经网络的乘用车隆隆声客观评价

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摘要

A rumbling sound is one of the most important sound qualities in a passenger car. In previous work, a method for objectively evaluating the rumbling sound was developed based on the principal rumble component. In the present paper, the rumbling sound was found to relate effectively not only to the principal rumble component but also to the loudness and roughness. The last two subjective parameters are sound metrics in psychoacoustics. The principal rumble component, roughness, and loudness were used as the sound metrics for the development of the rumbling index to evaluate the rumbling sound objectively. The relationship between the rumbling index and these sound metrics is identified by an artificial neural network. Interior sounds of 14 passenger cars were measured, and 21 passengers subjectively evaluated the rumbling sound qualities of these interior sounds. Through this research, it was found that the results of these evaluations and the output of a neural network have a high correlation. The rumbling index has been successfully applied to the objective evaluation of the rumbling sound quality of mass-produced passenger cars.
机译:隆隆声是乘用车中最重要的音质之一。在以前的工作中,基于主隆隆声成分,开发了一种客观评估隆隆声的方法。在本文中,发现隆隆声不仅与主要的隆隆声成分有关,而且与响度和粗糙度有关。最后两个主观参数是心理声学中的声音指标。主要的隆隆声成分,粗糙度和响度被用作发展隆隆声指数的声音指标,以便客观地评估隆隆声。隆隆声指数与这些声音指标之间的关系由人工神经网络识别。测量了14辆客车的内部声音,并且21位乘客主观评估了这些内部声音的隆隆声质量。通过这项研究,发现这些评估的结果与神经网络的输出具有高度的相关性。隆隆声指数已成功地用于客观评估批量生产乘用车隆隆声的声音质量。

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