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Comparison of Faults Classification in Vibrodiagnostics from Time and Frequency Domain Data

机译:从时域和频域数据比较振动诊断中的故障分类

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The paper deals with the comparison of the success rate of classification models from Matlab Classification Learner app. Classification models will compare data from the frequency and time domain, the data source is the same. Both data samples are from real measurements on the vibrodiagnostics model. Five basic faults are recognized, namely, the static unbalances at two levels, the dynamic unbalances at two levels and the faultless state. The data is then processed and reduced for the use of the Matlab Classification Learner app, which creates a model for recognizing faults. The aim of the paper is to compare the success rate of classification models when the data source is dataset in time or frequency domain.
机译:本文讨论了来自Matlab分类学习器应用程序的分类模型成功率的比较。分类模型将比较频域和时域中的数据,数据源是相同的。这两个数据样本均来自于振动诊断模型的实际测量结果。识别出五个基本故障,即两个级别的静态不平衡,两个级别的动态不平衡和无故障状态。然后使用Matlab分类学习器应用程序处理和减少数据,该应用程序将创建一个用于识别故障的模型。本文的目的是比较当数据源是时域或频域数据集时分类模型的成功率。

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