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Excavation devices classification using enhanced acoustics by MVDR beamforming with a cross microphone array

机译:挖掘设备使用带有交叉麦克风阵列的MVDR波束成形使用增强声学的分类

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Acoustic signal based recognition for excavation devices has been investigated in the past due to its significance in preventing the underground cables from being destroyed during the ground excavation. However, existing excavation devices classification algorithms have paid little attention to the reduction of background noises which usually severely degrade the recognition performance. This paper utilizes a cross microphone array to record the acoustic signals of excavation devices, which are then filtered by the minimum variance distortionless response (MVDR) beamforming algorithm to reduce the environment noises and enhance the desired signals. The filtered signals are then fed into the feature extraction and classifier learning. To show the effectiveness of the proposed method, we collected the real acoustics of two representative devices in a construction site to make the performance testing. Experiments show that, compared with conventional recognition methods the performance of the proposed method is significantly improved.
机译:由于其在防止地面挖掘过程中被破坏,过去已经研究了对挖掘装置的基于声信号的识别。然而,现有的挖掘设备分类算法几乎没有注意减少通常严重降低识别性能的背景噪声。本文利用交叉麦克风阵列记录挖掘设备的声学信号,然后通过最小方差失真响应(MVDR)波束成形算法来滤波,以减少环境噪声并增强所需信号。然后将过滤的信号馈入特征提取和分类器学习。为了展示所提出的方法的有效性,我们在建筑工地中收集了两个代表设备的真实声学,以进行性能测试。实验表明,与传统识别方法相比,该方法的性能得到了显着改善。

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