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Audio Feature Extraction for Vehicle Engine Noise Classification

机译:用于车辆发动机噪声分类的音频特征提取

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In this paper we propose a new scheme for vehicle engine noise classification as a more privacy-preserving alternative to classifying vehicles based on video recordings. We establish two scenarios: diesel vs. petrol and heavy goods vehicle vs. personal car classification. Our approach includes a novel modulation-spectrum-based feature representation that is used in conjunction with a siamese neural network classifier. Additionally, a database containing recordings from diverse urban acoustic scenarios is provided. The obtained results show the advantage of the proposed approach compared to conventional feature representations and classifiers. This is achieved by de-correlating background noise from target noise and by quantifying the degree of variation of noise characteristics.
机译:在本文中,我们提出了一种用于车辆发动机噪声分类的新方案,作为基于视频记录对车辆进行分类的一种更具隐私保护性的替代方案。我们建立了两种方案:柴油与汽油以及重型货车与个人车的分类。我们的方法包括与暹罗神经网络分类器结合使用的新颖的基于调制频谱的特征表示。此外,还提供了一个数据库,其中包含来自各种城市声学场景的录音。与常规特征表示和分类器相比,所获得的结果表明了该方法的优势。这是通过将背景噪声与目标噪声解相关,并量化噪声特性的变化程度来实现的。

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