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Deep Belief Network based audio classification for construction sites monitoring

机译:基于施工现场监测的深度信仰网络音频分类

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In this paper, we propose a Deep Belief Network (DBN) based approach for the classification of audio signals to improve work activity identification and remote surveillance of construction projects. The aim of the work is to obtain an accurate and flexible tool for consistently executing and managing the unmanned monitoring of construction sites by using distributed acoustic sensors. In this paper, ten classes of multiple construction equipment and tools, frequently and broadly used in construction sites, have been collected and examined to conduct and validate the proposed approach. The input provided to the DBN consists in the concatenation of several statistics evaluated by a set of spectral features, like MFCCs and mel-scaled spectrogram. The proposed architecture, along with the preprocessing and the feature extraction steps, has been described in details while the effectiveness of the proposed idea has been demonstrated by some numerical results, evaluated by using realworld recordings. The final overall accuracy on the test set is up to 98% and is a significantly improved performance compared to other state-of-the-are approaches. A practical and real-time application of the presented method has been also proposed in order to apply the classification scheme to sound data recorded in different environmental scenarios.
机译:在本文中,我们提出了一种基于深度信念网络(DBN)的音频信号分类方法,以改善建筑项目的工作活动识别和远程监测。这项工作的目的是获得准确和灵活的工具,以始终如一地执行和管理通过使用分布式声学传感器的施工网站的无人监测。在本文中,已经收集并审查了施工地点的10种多种多种建筑设备和工具,经常和广泛地用于建筑工地,并审查建议的方法。提供给DBN的输入包括通过一组谱特征评估的若干统计的串联,如MFCC和熔融扫描谱图。已经详细描述了所提出的架构以及预处理和特征提取步骤,同时通过一些数值结果证明了所提出的想法的有效性,通过使用RealWorld录音来评估。测试集的最终总体精度高达98%,与其他最终的方法相比,性能显着提高。还提出了对所提出的方法的实际和实时应用,以便将分类方案应用于不同环境场景中记录的声音数据。

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