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Repetitive accuracy degradation of numerical control rotary table based on hidden Markov model and improved particle filtering

机译:基于隐马尔可夫模型的数值控制旋转台的重复精度下降及改进的粒子滤波

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摘要

A novel prediction approach based on the hidden Markov model and improved particle filtering for numerical control rotary table was proposed to estimate the degradation trend of repetitive positioning accuracy. Here, the resampling algorithm of the particle filter is improved and data-driven methods are introduced for the first time to study accuracy. The vibration signal obtained from an accelerated accuracy degradation test was selected as the test data. First, the original signal was de-noised and reconstructed by ensemble empirical mode decomposition-principal component analysis. Second, a hidden Markov model was trained by an observation matrix, which was composed of statistical characteristic values. Then, an early diagnosis of repetitive positioning accuracy degradation was obtained and the health status indicator of accuracy was built. Finally, the degradation trend model of repetitive positioning accuracy was established by improved particle filtering, and the residual accuracy life can also be calculated. With model calculations and experimental measurements, the results show that the approach is effective for numerical control rotary tables to estimate the degradation trend of repetitive positioning accuracy and residual accuracy life.
机译:一种基于隐马尔可夫模型的新型预测方法和用于数值控制旋转台的改进粒子滤波,估计重复定位精度的劣化趋势。这里,提高粒子滤波器的重采样算法,并且首次引入数据驱动方法以研究精度。从加速精度降解测试获得的振动信号被选择为测试数据。首先,通过集合经验模式分解 - 主成分分析,通过集合经验模式进行脱发并重建原始信号。其次,隐藏的马尔可夫模型由观察矩阵训练,其由统计特征值组成。然后,获得了重复定位精度降解的早期诊断,建立了健康状态指标。最后,通过改进的颗粒滤波建立了重复定位精度的降解趋势模型,并且还可以计算剩余精度寿命。通过模型计算和实验测量,结果表明,该方法对数控旋转表有效,以估算重复定位精度和剩余精度寿命的降解趋势。

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