نتایج جستجو برای: radial basics function rbf

تعداد نتایج: 1267534  

2014
Bao-yuan Chen Ya-qiong Lan Jing-yang Liu Zi-he Li

Voice activity detection (VAD) is the key of voice recognition, voice synthesis and speech-sound enhancement.For the sake of improve the accuracy and robustness of speech endpoint detection system. Combining the advantages of adaptive genetic algorithm (AGA) and improved radial basis function network (RBF) defects in existing learning methods. This paper presents a comprehensive detection metho...

2004
Karel Uhlir Václav Skala

Radial Basis Function (RBF) can be used for reconstruction of damaged images, filling gaps and for restoring missing data in images. Comparisons with standard method for image inpainting and experimental results are included and demonstrate the feasibility of the use of the RBF method for image processing applications.

Journal: :IEEE transactions on neural networks 1996
Chng Eng Siong Sheng Chen Bernard Mulgrew

We present a method of modifying the structure of radial basis function (RBF) network to work with nonstationary series that exhibit homogeneous nonstationary behavior. In the original RBF network, the hidden node's function is to sense the trajectory of the time series and to respond when there is a strong correlation between the input pattern and the hidden node's center. This type of respons...

2013
Kiran Arya Virendra P. Vishwakarma

This paper presents the performance comparison of two architectures of neural networks: multi-layer perceptron (MLP) neural networks and radial basis function (RBF) neural networks on face recognition system (FRS). We are training MLP using different variants of back-propagation (BP) algorithm. AT&T database has been used for performance comparison. The BP is gradient descent based iterative al...

Journal: :IEEE transactions on neural networks 2000
Deng Jianping Narasimhan Sundararajan Paramasivan Saratchandran

A complex radial basis function neural network is proposed for equalization of quadrature amplitude modulation (QAM) signals in communication channels. The network utilizes a sequential learning algorithm referred to as complex minimal resource allocation network (CMRAN) and is an extension of the MRAN algorithm originally developed for online learning in real-valued radial basis function (RBF)...

2004
B. Mulgrew

We present a method of modifyiog the structure of radial basis function (RBF) network to work with nonstationary series that exhibit homogeneous nonstationary behavior. In the original RBF network, the hidden node’s function is to sense the trajectory of the time series and to respond when there is a strong correlation between the input pattern and the hidden node’s center. This type of respons...

2017
L. Bos F. Polato S. De Marchi

We give an explicit example for the selection of the shape parameter for a certain univariate radial basis function (RBF) interpolation problem.

Journal: :Pattern Recognition Letters 2002
Yuhua Li Michael J. Pont N. Barrie Jones

This paper presents a novel technique which may be used to determine an appropriate threshold for interpreting the outputs of a trained Radial Basis Function (RBF) classifier. Results from two experiments demonstrate that this method can be used to improve the performance of RBF classifiers in practical applications.

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...

1998
Miroslav Kubat

| Successful implementations of radial-basis function (RBF) networks for classiication tasks must deal with architectural issues, the burden of irrelevant attributes, scaling , and some other problems. This paper addresses these issues by initializing RBF networks with decision trees that deene relatively pure regions in the instance space; each of these regions then determines one basis functi...

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