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A Novel Improved Local Binary Pattern and Its Application to the Fault Diagnosis of Diesel Engine

机译:一种新型改进的局部二进制模式及其在柴油发动机故障诊断中的应用

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Aiming at the feature extraction difficulty of vibration signals, an improved local binary pattern- (ILBP-) based diesel engine fault diagnosis approach is proposed. To effectively make use of the component spatial information in time-frequency images, local binary pattern (LBP) algorithm is applied. Also, in view of the problems that traditional LBP coding is easily interfered by singular pixel points and the relative spatial information is not prominent, an improved coding rule of the LBP operator is put forward in this paper. Compared with some typical LBP algorithms, computational complexity of the proposed ILBP algorithm is greatly reduced, and the coding sparsity is greatly improved. The ILBP operator is applied to fault diagnosis of BF4L1011F diesel engine with eight different valve conditions. For comparison, six kinds of time-frequency distribution are used to convert raw vibration signals into time-frequency images, and then circular LBP, rotation-invariant LBP, uniform LBP, and ILBP operator are applied for texture coding. Finally, nearest neighbor classifier (NNC) and support vector machine (SVM) are used for fault identification. The classification results show that the ILBP operator proposed in this paper can better describe the texture feature information in vibration time-frequency images of the diesel engine, and a good diagnostic effect can be achieved by combining wavelet packet (WP) distribution and ILBP.
机译:针对振动信号的特征提取难度,提出了一种改进的局部二进制图案(ILBP-)基于柴油发动机故障诊断方法。为了有效地利用时间频率图像中的组件空间信息,应用局部二进制模式(LBP)算法。而且,鉴于传统的LBP编码容易被奇异像素点容易地干扰的问题,并且相对空间信息不突出,本文提出了LBP操作员的改进的编码规则。与一些典型的LBP算法相比,所提出的ILBP算法的计算复杂性大大降低,并且可以大大提高编码稀疏性。 ILBP操作员应用于BF4L1011F柴油发动机的故障诊断,具有八个不同的阀门条件。为了比较,使用六种时间频率分布将原始振动信号转换为时频图像,然后循环LBP,旋转不变的LBP,均匀的LBP和ILBP操作员被应用于纹理编码。最后,最近的邻居分类器(NNC)和支持向量机(SVM)用于故障识别。分类结果表明,本文提出的ILBP操作员可以更好地描述柴油发动机的振动时频图像中的纹理特征信息,并且可以通过组合小波包(WP)分布和ILBP来实现良好的诊断效果。

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