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Identification of Induction Machine Parameters Using a New Adaptive Genetic Algorithm

机译:基于自适应遗传算法的感应电机参数辨识

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摘要

Interests in seeking accurate and reliable parameters for identification methods of induction machines constitute major modeling concerns for performance prediction and assessment. This article presents an optimization, technique-based, parameters identification for the machine steady-state operation. This method is based on a genetic algorithm incorporating a new adaptive scheme for a computing time reduction. It aims to accurately identify the parameters by solving a nonlinear curve fitting problem. Finally, the obtained machine performances of the adaptive genetic algorithm method are compared with both reference and near-least-square-error estimator using experimental variable load measurements.
机译:为感应电机的识别方法寻求准确而可靠的参数的兴趣构成了性能预测和评估的主要建模问题。本文介绍了一种基于技术的优化技术,用于机器稳态运行的参数识别。该方法基于一种遗传算法,该遗传算法结合了用于计算时间减少的新的自适应方案。它旨在通过解决非线性曲线拟合问题来准确识别参数。最后,使用实验变量负载测量结果,将获得的自适应遗传算法方法的机器性能与参考和近似最小二乘估计器进行比较。

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