نتایج جستجو برای: neural fuzzy system

تعداد نتایج: 2513444  

2007
Lotfi A. Zadeh

A method for response integration in modular neural networks with type-2 fuzzy logic for biometric systems p. 5 Evolving type-2 fuzzy logic controllers for autonomous mobile robots p. 16 Adaptive type-2 fuzzy logic for intelligent home environment p. 26 Interval type-1 non-singleton type-2 TSK fuzzy logic systems using the hybrid training method RLS-BP p. 36 An efficient computational method to...

The aim of this paper was to present an optimized method in order to use maximum capacity of the photovoltaic panels. In this regard, we presented a method for the maximum power point tracking in the photovoltaic systems by using the neural networks and adaptive controller. In the proposed system, we estimated an error by using neural network. If this error is lower than the allowable systems e...

پایان نامه :وزارت علوم، تحقیقات و فناوری - دانشگاه صنعتی اصفهان - دانشکده برق و کامپیوتر 1385

بهره گیری از هوش مصنوعی و روشهای هوشمند در انجام انواع تحلیل و تصمیم گیری روز به روز فراگیرتر می شود با افزایش قدرت پردازش کامپیوترهای مدرن شناسایی سیستمها از طریق روشهای یادگیری ماشین و تحلیل خروجیهای سیستم برای یادگیری مفاهیم حاکم بر آن نیز در همین راستا از به روز ترین دامنه های تحقیقاتی نوین است. تصمیم گیری از مهمترین و پرکاربردترین مسائل در تصمیم گیری صحیح پیش بینی رفتار آتی سیستم است. برای...

1992
HAMID BERENJI Hamid R. Berenji

Fuzzy logic and neural networks provide new methods for designing control systems. Fuzzy logic controllers do not require a complete analytical model of a dynamic system and can provide knowledge-based heuristic controllers for ill-defined and complex systems. Neural networks can be used for learning control. In this chapter, we discuss hybrid methods using fuzzy logic and neural networks which...

2011
S. M. Elbana M. A. Moustafa Hassan E. A. Zahab

The application of Artificial Intelligent approaches was introduced recently in protection of distribution networks. These approaches started with introducing Fuzzy Inference System (FIS), then using Artificial Neural Network (ANN).In this research, the application of Adaptive Neuro Fuzzy Inference System (ANFIS) for protection of bus bars will be illustrated. The ANFIS can be viewed as a fuzzy...

Journal: :Appl. Soft Comput. 2014
Abdullah J. H. Al Gizi M. W. Mustafa Hamid H. Jebur

A hybrid model is designed by combining the genetic algorithm (GA), radial basis function neural network (RBF-NN) and Sugeno fuzzy logic to determine the optimal parameters of a proportional-integralderivative (PID) controller. Our approach used the rule base of the Sugeno fuzzy system and fuzzy PID controller of the automatic voltage regulator (AVR) to improve the system sensitive response. Th...

2005
Daniel Wu Fakhreddine Karray Insop Song

The objective of this paper is to investigate and find a solution by designing the intelligent controllers for controlling water level system, such as fuzzy logic and neural network. The controllers also can be specifically run under the circumstance of system disturbances. To achieve these objectives, a prototype of water level control system has been built and implementations of both fuzzy lo...

Journal: :journal of food biosciences and technology 2016
y. vasseghian gh zahedi m ahmadi

this study investigates the oil extraction from pistacia khinjuk by the application of enzyme.artificial neural network (ann) and adaptive neuro fuzzy inference system (anfis) were applied formodeling and prediction of oil extraction yield. 16 data points were collected and the ann was trained with onehidden layer using various numbers of neurons. a two-layered ann provides the best results, us...

2004
JOÃO PAULO FERREIRA MANUEL CRISÓSTOMO A. PAULO COIMBRA

In this paper an adaptive neural-fuzzy walking control of an autonomous biped robot is proposed. This control system uses a feed forward neural network based on nonlinear regression. The general regression neural network is used to construct the base of an adaptive neuro-fuzzy system. The membership functions used in the antecedent part of the fuzzy system are asymmetric and with varying shapes...

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