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Dynamic Bayesian wavelet transform: New methodology for extraction of repetitive transients

机译:动态贝叶斯小波变换:提取重复瞬态的新方法

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Thanks to some recent research works, dynamic Bayesian wavelet transform as new methodology for extraction of repetitive transients is proposed in this short communication to reveal fault signatures hidden in rotating machine. The main idea of the dynamic Bayesian wavelet transform is to iteratively estimate posterior parameters of wavelet transform via artificial observations and dynamic Bayesian inference. First, a prior wavelet parameter distribution can be established by one of many fast detection algorithms, such as the fast kurtogram, the improved kurtogram, the enhanced kurtogram, the sparsogram, the infogram, continuous wavelet transform, discrete wavelet transform, wavelet packets, multiwavelets, empirical wavelet transform, empirical mode decomposition, local mean decomposition, etc.. Second, artificial observations can be constructed based on one of many metrics, such as kurtosis, the sparsity measurement, entropy, approximate entropy, the smoothness index, a synthesized criterion, etc., which are able to quantify repetitive transients. Finally, given artificial observations, the prior wavelet parameter distribution can be posteriorly updated over iterations by using dynamic Bayesian inference. More importantly, the proposed new methodology can be extended to establish the optimal parameters required by many other signal processing methods for extraction of repetitive transients.
机译:由于最近的一些研究工作,在这种简短的通信中提出了动态贝叶斯小波变换作为提取重复瞬态的新方法,以揭示隐藏在旋转电机中的故障特征。动态贝叶斯小波变换的主要思想是通过人工观测和动态贝叶斯推论迭代地估计小波变换的后验参数。首先,可以通过许多快速检测算法之一来建立先验的小波参数分布,例如快速峰图,改进型峰图,增强型峰图,稀疏图,信息图,连续小波变换,离散小波变换,小波包,多小波,经验小波变换,经验模态分解,局部均值分解等。其次,可以基于峰度,稀疏性度量,熵,近似熵,平滑度指标,综合标准等许多指标之一构建人工观测。等等,它们能够量化重复的瞬变。最后,给定人工观测值,可以使用动态贝叶斯推断在迭代过程中更新先前的小波参数分布。更重要的是,可以扩展提出的新方法,以建立许多其他信号处理方法提取重复瞬变所需的最佳参数。

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