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国家自然科学基金(51075069)

作品数:4 被引量:17H指数:3
相关作者:胡建中柯佳佳贾民平张子锋更多>>
相关机构:东南大学更多>>
发文基金:国家自然科学基金国家高技术研究发展计划更多>>
相关领域:机械工程自动化与计算机技术更多>>

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基于Manhattan距离与随机邻域嵌入的故障特征提取算法被引量:8
2015年
随机邻域嵌入(stochastic neighbor embedding,SNE)算法在欧氏距离基础上定义了邻域概率函数,是一种基于数据间相似度的降维方法。针对欧氏距离在高维数据空间中不能提供较大的相对距离差、无法明显体现高维数据对象之间差异性的问题,提出一种基于Manhattan距离的随机邻域嵌入(Manhattan-SNE)算法。采用Manhattan距离衡量高维数据对象之间的相异度,得到高维空间和低维空间数据对象之间相似度的条件概率,嵌入目标是使得高维空间和低维空间的分布形式尽可能一致,选择KL散度作为算法的目标函数,通过梯度下降法寻找目标函数的最小值,从而得到算法的低维嵌入。测试与实验分析结果表明:所提算法的平均分类正确率有明显提高,证明了改进算法的有效性与实用性,可以用于故障数据的特征提取。
柯佳佳胡建中
关键词:欧氏距离故障特征提取
基于短时傅里叶变换的滚珠丝杠副丝杠滚道故障定位研究被引量:3
2015年
针对滚珠丝杠副丝杠滚道故障定位困难问题,对存在单一点蚀故障的滚珠丝杠副进行了研究,提出了一种基于短时傅里叶变换(STFT)的滚珠丝杠副丝杠滚道故障定位方法,通过理论分析确定了针对滚珠丝杠副振动信号STFT理想的窗函数及其参数。利用STFT分析了滚珠丝杠副仿真与实验振动加速度信号,根据丝杠滚道出现故障时的频率响应特性以及信号瞬时频率随时间的变化,以瞬时频率为特征确定了故障位置。仿真与实验研究结果对比表明,STFT时频分析方法能够用于有效地识别出滚珠丝杠副的故障位置。
张子锋胡建中
关键词:滚珠丝杠副故障定位短时傅里叶变换
EEMD能量熵分析及在齿轮箱故障诊断中的应用被引量:5
2012年
针对齿轮箱振动信号的非平稳、非线性等特点,提出一种基于总体平均经验模态分解EEMD的能量熵信号分析及故障诊断方法。该方法利用EEMD方法能够有效抑制模式混叠现象的特点,先对原始振动信号进行EEMD分解,得到各阶本征模态函数(IMFs),然后求得将各阶本征模态函数的能量及其熵。指出能量熵的值能够反映系统的工作状态和故障类型。通过对白噪声幅值及分解次数对齿轮箱振动加速度信号分析对比,得出最优化选择方案。
石智云贾民平
关键词:齿轮箱幅值
Research on Nonnegative Tucker3 Decomposition in Krylov Sub-Space Calculation for Feature Extraction
The method of nonnegative Tucker3 decomposition usually has to face the problem of data overfitting in the ite...
Hai-jun WANGJia-xin MAFei-yun XU
Research on GNAR-GARCH Model and Its Application in Modeling and Forecasting
In the field of financial time series analysis, GARCH model can fit volatility of the rate of return on financ...
Jia-xin MAFei-yun XURen HUANGHai-jun WANG
Bispectrum Feature Extraction of Gearbox Faults Based on Nonnegative Tucker3 Decomposition with 3D Calculations被引量:1
2013年
Nonnegative Tucker3 decomposition(NTD) has attracted lots of attentions for its good performance in 3D data array analysis. However, further research is still necessary to solve the problems of overfitting and slow convergence under the anharmonic vibration circumstance occurred in the field of mechanical fault diagnosis. To decompose a large-scale tensor and extract available bispectrum feature, a method of conjugating Choi-Williams kernel function with Gauss-Newton Cartesian product based on nonnegative Tucker3 decomposition(NTD_EDF) is investigated. The complexity of the proposed method is reduced from(nNlgn) in 3D spaces to 12 o(R1R2nlgn)in 1D vectors due to its low rank form of the Tucker-product convolution. Meanwhile, a simultaneously updating algorithm is given to overcome the overfitting, slow convergence and low efficiency existing in the conventional one-by-one updating algorithm. Furthermore, the technique of spectral phase analysis for quadratic coupling estimation is used to explain the feature spectrum extracted from the gearbox fault data by the proposed method in detail. The simulated and experimental results show that the sparser and more inerratic feature distribution of basis images can be obtained with core tensor by the NTD_EDF method compared with the one by the other methods in bispectrum feature extraction, and a legible fault expression can also be performed by power spectral density(PSD) function. Besides, the deviations of successive relative error(DSRE) of NTD_EDF achieves 81.66 dB against 15.17 dB by beta-divergences based on NTD(NTD_Beta) and the time-cost of NTD_EDF is only 129.3 s, which is far less than 1747.9 s by hierarchical alternative least square based on NTD(NTD_HALS). The NTD_EDF method proposed not only avoids the data overfitting and improves the computation efficiency but also can be used to extract more inerratic and sparser bispectrum features of the gearbox fault.
WANG HaijunXU FeiyunZHAO Jun’aiJIA MinpingHU JianzhongHUANG Peng
关键词:机械故障诊断收敛速度
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