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MNFIS and Other Soft Computing Based MPPT Techniques: A Comparative Analysis

机译:MNFIS和其他基于软计算的MPPT技术:比较分析

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Maximum Power Point Tracking (MPPT) is the process of searching the voltage space for the optimal power generation and tracking the optimum as it changes. This paper presents a performance analysis of soft computing algorithms applied to this endeavor and a deployment recommendation based on performance goals. Specifically, fuzzy logic (FL) and artificial neural networks (ANN) were tested with direct and indirect converter control and compared against multiple metrics for fitness. Along the way a novel algorithm was also developed, deemed the Modified Neuro-Fuzzy Inference System (MNFIS). This algorithm incorporates the strengths of both FL and ANN MPPT while mitigating the weaknesses of either.
机译:最大功率点跟踪(MPPT)是搜索最佳发电的电压空间的过程,并在变化时跟踪最佳。本文介绍了应用于此努力的软计算算法的性能分析和基于性能目标的部署推荐。具体而言,用直接和间接转换器控制测试模糊逻辑(FL)和人工神经网络(ANN),并与适用性的多个度量进行比较。沿着新型算法的开发方式,被视为改进的神经模糊推理系统(MNFI)。该算法包含FL和ANN MPPT的强度,同时减轻了两种弱点。

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