نتایج جستجو برای: rbf model

تعداد نتایج: 2107968  

2015
Jian-hua Cheng Bing Qi Daidai Chen René Landry

This paper presents modification of Radial Basis Function Artificial Neural Network (RBF ANN)-based temperature compensation models for Interferometric Fiber Optical Gyroscopes (IFOGs). Based on the mathematical expression of IFOG output, three temperature relevant terms are extracted, which include: (1) temperature of fiber loops; (2) temperature variation of fiber loops; (3) temperature produ...

2007
Xiao-Juan Wu Xin-Jian Zhu Guang-Yi Cao Heng-Yong Tu

In this paper, a nonlinear offline model of the solid oxide fuel cell (SOFC) is built by using a radial basis function (RBF) neural network based n a genetic algorithm (GA). During the process of modeling, the GA aims to optimize the parameters of RBF neural networks and the optimum alues are regarded as the initial values of the RBF neural network parameters. Furthermore, we utilize the gradie...

1998
Michael Tagscherer

ICE is a new incremental construction algorithm of a hybrid system for continuous learning tasks. The basis of the hybrid system is a radial basis function (RBF) network layer. The second layer consists of local models. The two layers are closely combined with a strong interaction. For example information from the model-layer is used by the RBF-layer to decide if new RBF-neurons are needed and ...

Journal: :مهندسی بیوسیستم ایران 0
سما عمید دانشگاه محقق اردبیلی ترحم مصری گندشمین دانشگاه محقق اردبیلی غلامحسین شاهقلی دانشگاه محقق اردبیلی

energy management is one of the main ways of the efficient use of energy resources. the prediction of crop yields based on energy inputs can help farmers and policymakers to estimate the level of production. required data for study were randomly collected from 70 broiler farms in north west of iran. the input energies were included human labour, machinery, fuel, feed and electricity and the out...

Journal: :IEEE transactions on neural networks 2003
Hui Peng Tohru Ozaki Valerie Haggan-Ozaki Yukihiro Toyoda

This paper considers the nonlinear systems modeling problem for control. A structured nonlinear parameter optimization method (SNPOM) adapted to radial basis function (RBF) networks and an RBF network-style coefficients autoregressive model with exogenous variable model parameter estimation is presented. This is an off-line nonlinear model parameter optimization method, depending partly on the ...

1996
Eng-Siong Chng Howard Yang Wladyslaw Skarbek

This paper examines a method to reduce the implementation complexity of the RBF Bayesian equalizer by model selection. The selection process is based on nding a subset model to approximate the response of the full RBF model for the current input vector, and not for the entire input space. By such a scheme, when the channel equalization problem is non-stationary, the requirement to update all th...

ژورنال: طب کار 2017

Introduction: Uncontrolled health status of drivers, can lead to the death of healthy individuals who are living in their best periods of life in terms of performance and wellness and also it can impose huge financial costs on a country. The purpose of this study was to design an intelligent system using Multilayer perceptron (MLP) and radial basis function (RBF) neural networks in order to dia...

2009
S. L. Ho Minrui Fei W. N. Fu H. C. Wong Edward W. C. Lo

The circuit-field coupled model is very accurate but it is computationally inefficient in studying the output performance of brushless dc motors. In order to resolve the problem, an estimation strategy based on an integrated radial basis function (RBF) network is proposed in this paper. The strategy introduces new conceptions of the network group that are being realized by three steps, namely: ...

Journal: :Science Journal of Business and Management 2017

2012
Shuangyin Liu Ji Chen Lihua Zeng

Water temperature is considered to be the most important parameter which can largely determine the aquaculture production of sea cucumbers, so it is extremely important to monitor and forecast the water temperature at different water depths. As the change of water temperature is a complex process which can not be exactly described with a certain formula, the artificial neural network characteri...

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