首页> 外文会议>ASME international conference on energy sustainability >A GENERAL METHODOLOGY FOR OPTIMIZED TAKAGI-SUGENO FUZZY MODELING OF NONLINEAR CONTINUOUS FERMENTER FOR BIOFUELS (ETHANOL) PRODUCTION USING GOLDEN SECTION SEARCH APPROACH
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A GENERAL METHODOLOGY FOR OPTIMIZED TAKAGI-SUGENO FUZZY MODELING OF NONLINEAR CONTINUOUS FERMENTER FOR BIOFUELS (ETHANOL) PRODUCTION USING GOLDEN SECTION SEARCH APPROACH

机译:黄金段搜索法优化生物燃料(乙醇)生产非线性连续FERMENTER的Takagi-Sugeno模糊模型的一般方法

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The overcoming inclusion of biotechnology in biofuels industry involves several challenges among which are found the variety of operational cycles, the highly nonlinear behavior of the processes and the need for measurement of intermediate variables. In order to reproduce biological conversion of biodiesel production discharge products into other biofuels, experimental data from ethanol production from glycerol/glucose mixture was analyzed implementing fuzzy techniques to investigate and model the nonlinear behavior of the process. This paper presents a general methodology for TS fuzzy modeling based on a novel approach on data structured regression which consists on combination of fuzzy c-regression model and clustering using a golden search algorithm approach to adjust the proper number of membership functions to fit the model and minimize the statistic difference among the experimental data, simulated data and the Fuzzy Inference System results.
机译:克服生物技术在生物燃料行业中的应用涉及若干挑战,其中包括操作周期的多样性,过程的高度非线性行为以及对中间变量的测量需求。为了重现生物柴油生产排放产物向其他生物燃料的生物转化,采用模糊技术对由甘油/葡萄糖混合物生产乙醇的实验数据进行了分析,以研究和建模该过程的非线性行为。本文提出了一种基于TS数据结构化回归新方法的TS模糊建模通用方法,该方法将模糊c回归模型与聚类结合,并使用黄金搜索算法来调整隶属函数的数量以适合模型和模型。最小化实验数据,模拟数据和模糊推理系统结果之间的统计差异。

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