首页> 外文会议>Proceedings of the 9th international conference for young computer scientists (ICYCS 2008) >Application of Image Recognition Technology Based on Fractal Dimension for Diesel Engine Fault Diagnosis
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Application of Image Recognition Technology Based on Fractal Dimension for Diesel Engine Fault Diagnosis

机译:基于分形维数的图像识别技术在柴油机故障诊断中的应用

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A new method of diesel engine fault diagnosis that uses image recognition technology based on fractal dimension is proposed. The Wigner-Ville distributions of six kinds of vibration acceleration signals which are acquired from diesel engine cylinder head are calculated by time-frequency analysis, and a series of time-frequency gray images can be obtained from above distributions by image processing. According to the theory of fractal, we can obtain a group of fractal texture characteristic parameters from these gray images. At the same time, in the process of pattern recognition, we adopt BP neural network to classify these image texture fractal characteristic parameters, and then we can identify diesel engine valve gap abnormal status. Experiment results show that the proposed method can distinguish different texture characteristic of time-frequency gray images which are generated from different valve gap status of diesel engine, and this method is worth for further study.
机译:提出了一种基于分形维图像识别技术的柴油机故障诊断新方法。通过时频分析计算出从柴油机缸盖获取的六种振动加速度信号的Wigner-Ville分布,并通过图像处理从上述分布中获得一系列时频灰度图像。根据分形理论,我们可以从这些灰度图像中获得一组分形纹理特征参数。同时,在模式识别过程中,我们采用BP神经网络对这些图像纹理的分形特征参数进行分类,从而可以识别出柴油机气门间隙异常状态。实验结果表明,该方法能够区分柴油机不同气门间隙状态产生的时频灰度图像的不同纹理特征,值得进一步研究。

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