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首页> 外文期刊>Journal of Instrumentation Technology >The Design of Robust Soft Sensor Using ANFIS Network
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The Design of Robust Soft Sensor Using ANFIS Network

机译:基于ANFIS网络的鲁棒软测量器设计。

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A soft Sensor is a model which is used to estimate the unmeasurable output of an industrial process. Designing a soft sensor is usually difficult because its modeling is often based on case data. These data commonly contain the outliers and noise as soft sensor design is been problem. In order to solve the problem and successfully design a soft sensor, this paper introduces a new approach for designing a robust soft sensor which is not affected by outliers especially batch outlier and long tail noise. To response this goal, a robust soft sensor based on Adaptive Neuro-Fuzzy Inference System (ANFIS) which is based on robust cost function such as the summation of the absolute cost function. To minimize the cost function the particle swarm optimization (PSO) algorithm was used. The subtractive clustering technique was used to determine the ANFIS structure. The proposed method for designing a soft sensor is implemented on a chemical plant and compared with soft sensor based on ANFIS which is based on quadratic cost function. The simulation result shows higher accuracy in prediction of output variable in new robust soft sensor.
机译:软传感器是用于估计工业过程不可测量的输出的模型。设计软传感器通常很困难,因为其建模通常基于案例数据。这些数据通常包含异常值和噪声,因为软传感器设计一直是个问题。为了解决该问题并成功设计软传感器,本文介绍了一种设计鲁棒的软传感器的新方法,该方法不受异常值(尤其是批异常值和长尾噪声)的影响。为了响应此目标,基于自适应神经模糊推理系统(ANFIS)的鲁棒软传感器基于鲁棒成本函数(例如绝对成本函数之和)。为了最小化成本函数,使用了粒子群优化(PSO)算法。减法聚类技术用于确定ANFIS结构。所提出的软传感器设计方法在化工厂中实现,并与基于二次成本函数的基于ANFIS的软传感器进行了比较。仿真结果表明,新型鲁棒软传感器对输出变量的预测具有较高的精度。

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