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Application of artificial neural network and OpenCL in spectral and wavelet analysis of phase current of LSPMS machine

机译:人工神经网络应用在LSPMS机器相电流光谱和小波分析中的应用

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The paper presents a parallel computing algorithm with its implementation in software for diagnostic of line start permanent magnet synchronous motor (LSPMSM). The software based on the developed algorithm, allows for analysis using a discrete Fourier transform (DFT) or a discrete wavelet transform (DWT). The elaborated software was tested using the phase current of the LSPMSM. In the case of wavelet analysis, the input signal refers to start-up of the motor supplied with symmetrical voltage, without external load, while steady-state waveforms were used for the DFT analysis. Moreover, the mentioned software has an implemented multi-layer perceptron neural network which can be used as decision element of the diagnostic system. In addition, the article brought closer the issues related to the structure and learning algorithms of artificial neural networks and OpenCL framework.
机译:本文提出了一种并行计算算法,其在软件中实现了用于线路启动永磁同步电动机(LSPMSM)的软件。基于发达算法的软件允许使用离散傅里叶变换(DFT)或离散小波变换(DWT)进行分析。使用LSPMSM的相电流测试精细的软件。在小波分析的情况下,输入信号是指在没有外部负载的情况下提供对称电压的电动机的启动,而稳态波形用于DFT分析。此外,所述软件具有实现的多层Perceptron神经网络,其可以用作诊断系统的判定元件。此外,该文章仔细提出了与人工神经网络和OpenCL框架的结构和学习算法相关的问题。

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