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首页> 外文期刊>The Open Acoustics Journal >Noise Diagnostics of Scooter Faults by Using MPEG-7 Audio Features and Intelligent Classification Techniques
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Noise Diagnostics of Scooter Faults by Using MPEG-7 Audio Features and Intelligent Classification Techniques

机译:利用MPEG-7音频功能和智能分类技术对踏板车故障进行噪声诊断

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摘要

A scooter fault diagnostic system that makes use of feature extraction and intelligent classification algorithmsis presented in this paper. Sound features based on MPEG (Moving Picture Experts Group)-7 coding standard and severalother features in the time and frequency domains are extracted from noise data and preprocessed prior to classification.Classification algorithms including the Nearest Neighbor Rule (NNR), the Artificial Neural Networks (ANN), the FuzzyNeural Networks (FNN), and the Hidden Markov Models (HMM) are employed to identify and classify scooter noise. Atraining phase is required to establish a feature space template, followed by a test phase in which the audio features of thetest data are calculated and matched to the feature space template. The proposed techniques were applied to classify noisedata due to various kinds of scooter fault, such as belt damage, pulley damage, etc. The results reveal that the performanceof methods is satisfactory, while varying slightly in performance with the algorithm and the type of noise used in the tests.
机译:提出了一种利用特征提取和智能分类算法的踏板车故障诊断系统。从噪声数据中提取基于MPEG(运动图像专家组)-7编码标准的声音特征以及时频域中的其他特征,并在分类之前进行预处理。分类算法包括最近邻规则(NNR),人工神经网络(ANN),模糊神经网络(FNN)和隐马尔可夫模型(HMM)被用来识别和分类踏板车噪声。需要训练阶段来建立特征空间模板,然后是测试阶段,其中计算测试数据的音频特征并将其与特征空间模板匹配。提出的技术被用于对由于踏板车故障(例如皮带损坏,皮带轮损坏等)造成的噪声数据进行分类。结果表明,该方法的性能令人满意,但算法和所用噪声的类型在性能上略有不同在测试中。

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