نتایج جستجو برای: levenberg optimization algorithm marquardt

تعداد نتایج: 965277  

2005
Kwok-Wing Chau

In order to allow the key stakeholders to have more float time to take appropriate precautionary and preventive measures, an accurate prediction of water quality pollution is very significant. Since a variety of existing water quality models involve exogenous input and different assumptions, artificial neural networks have the potential to be a cost-effective solution. This paper presents the a...

2004
Wolfgang Nowak Olaf A. Cirpka

The Quasi-Linear Geostatistical Approach is a method of inverse modeling to identify parameter fields, such as the hydraulic conductivity in heterogeneous aquifers, given observations of related quantities like hydraulic heads or arrival times of tracers. Derived in the Bayesian framework, it allows to rigorously quantify the uncertainty of the identified parameter field. Since inverse modeling...

ژورنال: مدیریت سلامت 2019

Introduction: Osteoporosis is a common disease in women.  Osteoporosis fractures may cause irreparable damages; therefore, early diagnosis and treatment before fractures is an important issue.  The ojectiveof this study was to develop a decision support system for diagnosing osteoporosis using artificial neural networks. Method: This developmental study has been done in second half of 2017 bas...

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 ...

2006
G. A. Watson

The problem is considered of the estimation of a polygonal region in two dimensions from data approximately marking the outline of the region. A solution is sought by formulating and solving a nonlinear least squares problem. A Levenberg–Marquardt method is developed for this problem, with an implementation which exploits the special structure so that the Levenberg–Marquardt step can be compute...

Journal: :Advances in Engineering Software 2015
Anatoli Vassiljev Tiit Koppel

The aim of the investigation, reported in this paper, was to estimate real-time demands in a water distribution system (WDS) on the basis of the pressure measurements. The task has been formulated as an optimization procedure which determines water fluxes that minimize differences between measured and modelled pressures. The Levenberg-Marquardt algorithm (LMA) and a genetic algorithm (GA) have ...

2015
Sungwon Kim Vijay P. Singh

The objective of this study is to develop artificial neural network (ANN) models, including multilayer perceptron (MLP) and Kohonen self-organizing feature map (KSOFM), for spatial disaggregation of areal rainfall in the Wi-stream catchment, an International Hydrological Program (IHP) representative catchment, in South Korea. A three-layer MLP model, using three training algorithms, was used to...

2011
Hirotaka Niitsuma Kenichi Kanatani

We optimally estimate the similarity (rotation, translation, and scale change) between two sets of 3-D data in the presence of inhomogeneous and anisotropic noise. Adopting the Lie algebra representation of the 3-D rotational change, we derive the Levenberg-Marquardt procedure for simultaneously optimizing the rotation, the translation, and the scale change. We test the performance of our metho...

2011
Yusak Tanoto Weerakorn Ongsakul Charles O.P. Marpaung

Increasing electricity demand in Java-Madura-Bali, Indonesia, must be addressed appropriately to avoid blackout by determining accurate peak load forecasting. Econometric approach may not be sufficient to handle this problem due to limitation in modelling nonlinear interaction of factors involved. To overcome this problem, Elman and Jordan Recurrent Neural Network based on Levenberg-Marquardt l...

2009
Ieroham S. Baruch Carlos-Roman Mariaca-Gaspar

The aim of this paper is to propose a new Kalman Filter Recurrent Neural Network (KFRNN) topology and a recursive Levenberg-Marquardt (L-M) algorithm of its learning capable to estimate states and parameters of a highly nonlinear Continuous Stirred Tank Bioreactor (CSTR) in noisy environment. The estimated parameters and states obtained by the proposed KFRNN identifier are used to design an ind...

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