针对轴承故障检测问题,提出一种基于相关向量机(RVM)的故障检测方法。
A new bearing fault detection approach based on relevance vector machine (RVM) is presented.
此外,针对相关向量机回归计算结果受核参数影响较大的问题,本文还提出一种基于微粒群算法的相关向量机核参数自适应优化方法。
In addition, an adaptive kernel relevance vector machine based on PSO is presented to deal with the problem that the regression performance of classical RVM is often influenced by kernel parameters.
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