Neural Network Training by Kalman Filtering in Process System Monitoring

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Publisher :
ISBN 13 :
Total Pages : 0 pages
Book Rating : 4.:/5 (687 download)

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Book Synopsis Neural Network Training by Kalman Filtering in Process System Monitoring by : O͏̈zer Çiftçioglu

Download or read book Neural Network Training by Kalman Filtering in Process System Monitoring written by O͏̈zer Çiftçioglu and published by . This book was released on 1996 with total page 0 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Neural Network Training by Kalman Filtering in Process System Monitoring

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Publisher :
ISBN 13 :
Total Pages : 9 pages
Book Rating : 4.:/5 (258 download)

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Book Synopsis Neural Network Training by Kalman Filtering in Process System Monitoring by : Ö Ciftcioglu

Download or read book Neural Network Training by Kalman Filtering in Process System Monitoring written by Ö Ciftcioglu and published by . This book was released on 1996 with total page 9 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Kalman Filtering and Neural Networks

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Publisher : John Wiley & Sons
ISBN 13 : 047146421X
Total Pages : 302 pages
Book Rating : 4.4/5 (714 download)

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Book Synopsis Kalman Filtering and Neural Networks by : Simon Haykin

Download or read book Kalman Filtering and Neural Networks written by Simon Haykin and published by John Wiley & Sons. This book was released on 2004-03-24 with total page 302 pages. Available in PDF, EPUB and Kindle. Book excerpt: State-of-the-art coverage of Kalman filter methods for the design of neural networks This self-contained book consists of seven chapters by expert contributors that discuss Kalman filtering as applied to the training and use of neural networks. Although the traditional approach to the subject is almost always linear, this book recognizes and deals with the fact that real problems are most often nonlinear. The first chapter offers an introductory treatment of Kalman filters with an emphasis on basic Kalman filter theory, Rauch-Tung-Striebel smoother, and the extended Kalman filter. Other chapters cover: An algorithm for the training of feedforward and recurrent multilayered perceptrons, based on the decoupled extended Kalman filter (DEKF) Applications of the DEKF learning algorithm to the study of image sequences and the dynamic reconstruction of chaotic processes The dual estimation problem Stochastic nonlinear dynamics: the expectation-maximization (EM) algorithm and the extended Kalman smoothing (EKS) algorithm The unscented Kalman filter Each chapter, with the exception of the introduction, includes illustrative applications of the learning algorithms described here, some of which involve the use of simulated and real-life data. Kalman Filtering and Neural Networks serves as an expert resource for researchers in neural networks and nonlinear dynamical systems.

Multidimensional Lithium-Ion Battery Status Monitoring

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Publisher : CRC Press
ISBN 13 : 1000799565
Total Pages : 355 pages
Book Rating : 4.0/5 (7 download)

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Book Synopsis Multidimensional Lithium-Ion Battery Status Monitoring by : Shunli Wang

Download or read book Multidimensional Lithium-Ion Battery Status Monitoring written by Shunli Wang and published by CRC Press. This book was released on 2022-12-28 with total page 355 pages. Available in PDF, EPUB and Kindle. Book excerpt: Multidimensional Lithium-Ion Battery Status Monitoring focuses on equivalent circuit modeling, parameter identification, and state estimation in lithium-ion battery power applications. It explores the requirements of high-power lithium-ion batteries for new energy vehicles and systematically describes the key technologies in core state estimation based on battery equivalent modeling and parameter identification methods of lithium-ion batteries, providing a technical reference for the design and application of power lithium-ion battery management systems. Reviews Li-ion battery characteristics and applications. Covers battery equivalent modeling, including electrical circuit modeling and parameter identification theory Discusses battery state estimation methods, including state of charge estimation, state of energy prediction, state of power evaluation, state of health estimation, and cycle life estimation Introduces equivalent modeling and state estimation algorithms that can be applied to new energy measurement and control in large-scale energy storage Includes a large number of examples and case studies This book has been developed as a reference for researchers and advanced students in energy and electrical engineering.

Dual Neural Extended Kalman Filtering Approach for Multirate Sensor Data Fusion with Industrial Applications

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ISBN 13 :
Total Pages : 81 pages
Book Rating : 4.:/5 (133 download)

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Book Synopsis Dual Neural Extended Kalman Filtering Approach for Multirate Sensor Data Fusion with Industrial Applications by : Jingyi Wang

Download or read book Dual Neural Extended Kalman Filtering Approach for Multirate Sensor Data Fusion with Industrial Applications written by Jingyi Wang and published by . This book was released on 2020 with total page 81 pages. Available in PDF, EPUB and Kindle. Book excerpt: The Kalman filter algorithm and its variants have been widely applied to the multisensor data fusion problems to provide joint state estimation, which is more accurate than estimations from individual sensors. The performance of the Kalman filter based fusion relies on the accuracy of the models as well as process noise statistics. Deviations from correct system models and violations of noise assumptions may lead to unsatisfied sensor fusion results and even divergence. Two types of measurements are typically utilized to estimate process quality variables. One is frequent measurements, which are available at a fast and regular sampling rate but suffer from lower accuracy and higher measurement noises. The other type is infrequent measurements that are available at a slower sampling rate. The infrequent measurements, such as lab analysis results, have less availability but higher accuracy and are usually used as references to improve state estimation. The objective of this thesis is to develop new multirate sensor data fusion algorithms that can compensate for model inaccuracies and violations of noise assumption to improve the online sensor fusion performance. To fulfill this objective, a dual neural extended Kalman filter (DNEKF) algorithm is proposed by employing two neural networks to improve state estimation and output predictions. Using both frequent and infrequent measurements enables the DNEKF to provide more reliable training for the neural networks and hence to provide more robust and reliable sensor fusion results. Additionally, infrequent measurements are usually subject to irregular sampling rate and time-varying time delays. To address these problems while preserving the estimation accuracy, a fusion method that fuses frequent DNEKF estimates with infrequent estimates from the state model compensation NEKF (SNEKF) is proposed. In this approach, frequent and infrequent estimates are fused in the fusion center when the delayed infrequent measurements arrive. The weights and biases of the state model compensation neural network (SNN) are shared between the two synchronized estimation processes. In the primary separation cell (PSC) used for oil sands bitumen extraction, the interface level estimation is based on various sensors. Image processing based computer vision system, which uses a camera to capture sight glass vision frames, is considered to be the most accurate among these sensors. Although the accuracy of computer vision interface level estimation is high, its qualities are influenced by abnormalities, such as vision blocking, stains, and level transition between sight glasses. Under such abnormal scenarios, a sensor fusion strategy, which adaptively updates the fusion parameters, is proposed and integrated with the image processing based computer vision system. The performance of the proposed fault-tolerant multirate sensor fusion algorithms is demonstrated using numerical examples and case studies with industrial process data. The factory acceptance test (FAT) was conducted for the sensor fusion and computer vision integrated system in the computer process control (CPC) industrial research chair (IRC) lab under industrial environmental conditions and it demonstrated the improved estimation accuracy under various process abnormalities.

Optimal State Estimation for Process Monitoring, Fault Diagnosis and Control

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Publisher : Elsevier
ISBN 13 : 0323900682
Total Pages : 400 pages
Book Rating : 4.3/5 (239 download)

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Book Synopsis Optimal State Estimation for Process Monitoring, Fault Diagnosis and Control by : Ch. Venkateswarlu

Download or read book Optimal State Estimation for Process Monitoring, Fault Diagnosis and Control written by Ch. Venkateswarlu and published by Elsevier. This book was released on 2022-01-31 with total page 400 pages. Available in PDF, EPUB and Kindle. Book excerpt: Optimal State Estimation for Process Monitoring, Fault Diagnosis and Control presents various mechanistic model based state estimators and data-driven model based state estimators with a special emphasis on their development and applications to process monitoring, fault diagnosis and control. The design and analysis of different state estimators are highlighted with a number of applications and case studies concerning to various real chemical and biochemical processes. The book starts with the introduction of basic concepts, extending to classical methods and successively leading to advances in this field. Design and implementation of various classical and advanced state estimation methods to solve a wide variety of problems makes this book immensely useful for the audience working in different disciplines in academics, research and industry in areas concerning to process monitoring, fault diagnosis, control and related disciplines. Describes various classical and advanced versions of mechanistic model based state estimation algorithms Describes various data-driven model based state estimation techniques Highlights a number of real applications of mechanistic model based and data-driven model based state estimators/soft sensors Beneficial to those associated with process monitoring, fault diagnosis, online optimization, control and related areas

Kalman Filtering with Real-Time Applications

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Publisher : Springer Science & Business Media
ISBN 13 : 3662025086
Total Pages : 202 pages
Book Rating : 4.6/5 (62 download)

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Book Synopsis Kalman Filtering with Real-Time Applications by : Charles K. Chui

Download or read book Kalman Filtering with Real-Time Applications written by Charles K. Chui and published by Springer Science & Business Media. This book was released on 2013-03-09 with total page 202 pages. Available in PDF, EPUB and Kindle. Book excerpt: Kalman filtering is an optimal state estimation process applied to a dynamic system that involves random perturbations. More precisely, the Kalman filter gives a linear, unbiased, and min imum error variance recursive algorithm to optimally estimate the unknown state of a dynamic system from noisy data taken at discrete real-time intervals. It has been widely used in many areas of industrial and government applications such as video and laser tracking systems, satellite navigation, ballistic missile trajectory estimation, radar, and fue control. With the recent development of high-speed computers, the Kalman filter has become more use ful even for very complicated real-time applications. lnspite of its importance, the mathematical theory of Kalman filtering and its implications are not well understood even among many applied mathematicians and engineers. In fact, most prac titioners are just told what the filtering algorithms are without knowing why they work so well. One of the main objectives of this text is to disclose this mystery by presenting a fairly thor ough discussion of its mathematical theory and applications to various elementary real-time problems. A very elementary derivation of the filtering equations is fust presented. By assuming that certain matrices are nonsingular, the advantage of this approach is that the optimality of the Kalman filter can be easily understood. Of course these assump tions can be dropped by using the more well known method of orthogonal projection usually known as the innovations approach.

Kalman Filters

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Publisher : One Billion Knowledgeable
ISBN 13 :
Total Pages : 137 pages
Book Rating : 4.:/5 (661 download)

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Book Synopsis Kalman Filters by : Fouad Sabry

Download or read book Kalman Filters written by Fouad Sabry and published by One Billion Knowledgeable. This book was released on 2023-06-27 with total page 137 pages. Available in PDF, EPUB and Kindle. Book excerpt: What Is Kalman Filters An algorithm that uses a series of measurements observed over time, including statistical noise and other inaccuracies, Kalman filtering is also known as linear quadratic estimation (LQE), and it produces estimates of unknown variables that tend to be more accurate than those that are based on a single measurement alone, by estimating a joint probability distribution over the variables for each timeframe. This is accomplished by estimating a joint probability distribution over the variables for each timeframe. Rudolf E. Kálmán, who was a significant contributor to the development of the theory behind the filter, is honored with the naming of the device. How You Will Benefit (I) Insights, and validations about the following topics: Chapter 1: Kalman filter Chapter 2: Weighted arithmetic mean Chapter 3: Multivariate random variable Chapter 4: Covariance Chapter 5: Covariance matrix Chapter 6: Expectation-maximization algorithm Chapter 7: Minimum mean square error Chapter 8: Recursive least squares filter Chapter 9: Linear-quadratic-Gaussian control Chapter 10: Extended Kalman filter (II) Answering the public top questions about kalman filters. (III) Real world examples for the usage of kalman filters in many fields. Who This Book Is For Professionals, undergraduate and graduate students, enthusiasts, hobbyists, and those who want to go beyond basic knowledge or information for any kind of kalman filters. What is Artificial Intelligence Series The artificial intelligence book series provides comprehensive coverage in over 200 topics. Each ebook covers a specific Artificial Intelligence topic in depth, written by experts in the field. The series aims to give readers a thorough understanding of the concepts, techniques, history and applications of artificial intelligence. Topics covered include machine learning, deep learning, neural networks, computer vision, natural language processing, robotics, ethics and more. The ebooks are written for professionals, students, and anyone interested in learning about the latest developments in this rapidly advancing field. The artificial intelligence book series provides an in-depth yet accessible exploration, from the fundamental concepts to the state-of-the-art research. With over 200 volumes, readers gain a thorough grounding in all aspects of Artificial Intelligence. The ebooks are designed to build knowledge systematically, with later volumes building on the foundations laid by earlier ones. This comprehensive series is an indispensable resource for anyone seeking to develop expertise in artificial intelligence.

Intelligent Techniques and Tools for Novel System Architectures

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Publisher : Springer Science & Business Media
ISBN 13 : 3540776214
Total Pages : 537 pages
Book Rating : 4.5/5 (47 download)

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Book Synopsis Intelligent Techniques and Tools for Novel System Architectures by : Panagiotis Chountas

Download or read book Intelligent Techniques and Tools for Novel System Architectures written by Panagiotis Chountas and published by Springer Science & Business Media. This book was released on 2008-07-10 with total page 537 pages. Available in PDF, EPUB and Kindle. Book excerpt: This volume presents new directions and solutions in broadly perceived intelligent systems. An urgent need this volume has occurred as a result of vivid discussions and presentations at the "IEEE-IS’ 2006 – The 2006 Third International IEEE Conference on Intelligent Systems" held in London, UK, September, 2006. This book is a compilation of many valuable inspiring works written by both the conference participants and some other experts in this new and challenging field.

Neural Information Processing

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Publisher : Springer Nature
ISBN 13 : 3030638332
Total Pages : 844 pages
Book Rating : 4.0/5 (36 download)

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Book Synopsis Neural Information Processing by : Haiqin Yang

Download or read book Neural Information Processing written by Haiqin Yang and published by Springer Nature. This book was released on 2020-11-19 with total page 844 pages. Available in PDF, EPUB and Kindle. Book excerpt: The three-volume set of LNCS 12532, 12533, and 12534 constitutes the proceedings of the 27th International Conference on Neural Information Processing, ICONIP 2020, held in Bangkok, Thailand, in November 2020. Due to COVID-19 pandemic the conference was held virtually. The 187 full papers presented were carefully reviewed and selected from 618 submissions. The papers address the emerging topics of theoretical research, empirical studies, and applications of neural information processing techniques across different domains. The second volume, LNCS 12533, is organized in topical sections on computational intelligence; machine learning; robotics and control.

Kalman Filter

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Publisher : BoD – Books on Demand
ISBN 13 : 9533070005
Total Pages : 608 pages
Book Rating : 4.5/5 (33 download)

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Book Synopsis Kalman Filter by : Víctor M. Moreno

Download or read book Kalman Filter written by Víctor M. Moreno and published by BoD – Books on Demand. This book was released on 2009-04-01 with total page 608 pages. Available in PDF, EPUB and Kindle. Book excerpt: The aim of this book is to provide an overview of recent developments in Kalman filter theory and their applications in engineering and scientific fields. The book is divided into 24 chapters and organized in five blocks corresponding to recent advances in Kalman filtering theory, applications in medical and biological sciences, tracking and positioning systems, electrical engineering and, finally, industrial processes and communication networks.

An Introduction to Kalman Filtering with MATLAB Examples

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Publisher : Springer Nature
ISBN 13 : 3031025369
Total Pages : 71 pages
Book Rating : 4.0/5 (31 download)

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Book Synopsis An Introduction to Kalman Filtering with MATLAB Examples by : Narayan Kovvali

Download or read book An Introduction to Kalman Filtering with MATLAB Examples written by Narayan Kovvali and published by Springer Nature. This book was released on 2022-06-01 with total page 71 pages. Available in PDF, EPUB and Kindle. Book excerpt: The Kalman filter is the Bayesian optimum solution to the problem of sequentially estimating the states of a dynamical system in which the state evolution and measurement processes are both linear and Gaussian. Given the ubiquity of such systems, the Kalman filter finds use in a variety of applications, e.g., target tracking, guidance and navigation, and communications systems. The purpose of this book is to present a brief introduction to Kalman filtering. The theoretical framework of the Kalman filter is first presented, followed by examples showing its use in practical applications. Extensions of the method to nonlinear problems and distributed applications are discussed. A software implementation of the algorithm in the MATLAB programming language is provided, as well as MATLAB code for several example applications discussed in the manuscript.

Object Recognition Of Digital Images In Wavelet Neural Network

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Publisher : Archers & Elevators Publishing House
ISBN 13 : 9386501244
Total Pages : pages
Book Rating : 4.3/5 (865 download)

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Book Synopsis Object Recognition Of Digital Images In Wavelet Neural Network by : Arul Murugan R

Download or read book Object Recognition Of Digital Images In Wavelet Neural Network written by Arul Murugan R and published by Archers & Elevators Publishing House. This book was released on with total page pages. Available in PDF, EPUB and Kindle. Book excerpt:

Kalman Filtering

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Publisher : John Wiley & Sons
ISBN 13 : 111898496X
Total Pages : 639 pages
Book Rating : 4.1/5 (189 download)

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Book Synopsis Kalman Filtering by : Mohinder S. Grewal

Download or read book Kalman Filtering written by Mohinder S. Grewal and published by John Wiley & Sons. This book was released on 2015-02-02 with total page 639 pages. Available in PDF, EPUB and Kindle. Book excerpt: The definitive textbook and professional reference on Kalman Filtering – fully updated, revised, and expanded This book contains the latest developments in the implementation and application of Kalman filtering. Authors Grewal and Andrews draw upon their decades of experience to offer an in-depth examination of the subtleties, common pitfalls, and limitations of estimation theory as it applies to real-world situations. They present many illustrative examples including adaptations for nonlinear filtering, global navigation satellite systems, the error modeling of gyros and accelerometers, inertial navigation systems, and freeway traffic control. Kalman Filtering: Theory and Practice Using MATLAB, Fourth Edition is an ideal textbook in advanced undergraduate and beginning graduate courses in stochastic processes and Kalman filtering. It is also appropriate for self-instruction or review by practicing engineers and scientists who want to learn more about this important topic.

Technological Advancements for Processing and Preservation of Fruits and Vegetables

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Publisher : Frontiers Media SA
ISBN 13 : 2832545297
Total Pages : 203 pages
Book Rating : 4.8/5 (325 download)

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Book Synopsis Technological Advancements for Processing and Preservation of Fruits and Vegetables by : Muhammad Faisal Manzoor

Download or read book Technological Advancements for Processing and Preservation of Fruits and Vegetables written by Muhammad Faisal Manzoor and published by Frontiers Media SA. This book was released on 2024-02-26 with total page 203 pages. Available in PDF, EPUB and Kindle. Book excerpt: Food scientists play an important role in increasing the quantity and quality of food by suggesting and exploring different green processing methods. The techniques are environmentally friendly and involve less sampling and fewer waste products. They also help minimize water and energy consumption while using fewer chemicals. The use of new or improved processing technologies ensures safety and enhances the quality attributes of the food product.

Advances in Machine Learning and Computational Intelligence

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Publisher : Springer Nature
ISBN 13 : 9811552436
Total Pages : 853 pages
Book Rating : 4.8/5 (115 download)

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Book Synopsis Advances in Machine Learning and Computational Intelligence by : Srikanta Patnaik

Download or read book Advances in Machine Learning and Computational Intelligence written by Srikanta Patnaik and published by Springer Nature. This book was released on 2020-07-25 with total page 853 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book gathers selected high-quality papers presented at the International Conference on Machine Learning and Computational Intelligence (ICMLCI-2019), jointly organized by Kunming University of Science and Technology and the Interscience Research Network, Bhubaneswar, India, from April 6 to 7, 2019. Addressing virtually all aspects of intelligent systems, soft computing and machine learning, the topics covered include: prediction; data mining; information retrieval; game playing; robotics; learning methods; pattern visualization; automated knowledge acquisition; fuzzy, stochastic and probabilistic computing; neural computing; big data; social networks and applications of soft computing in various areas.

Fuzzy Logic And Intelligent Technologies For Nuclear Science And Industry - Proceedings Of The 3rd International Flins Workshop

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Publisher : World Scientific
ISBN 13 : 981454468X
Total Pages : 498 pages
Book Rating : 4.8/5 (145 download)

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Book Synopsis Fuzzy Logic And Intelligent Technologies For Nuclear Science And Industry - Proceedings Of The 3rd International Flins Workshop by : Da Ruan

Download or read book Fuzzy Logic And Intelligent Technologies For Nuclear Science And Industry - Proceedings Of The 3rd International Flins Workshop written by Da Ruan and published by World Scientific. This book was released on 1998-08-15 with total page 498 pages. Available in PDF, EPUB and Kindle. Book excerpt: Following FLINS '94 and FLINS '96, the first and second International Workshops on Fuzzy Logic and Intelligent Technologies in Nuclear Science, FLINS '98 covers recent developments, both of a foundational and applicational character, in the fields of intelligent techniques such as fuzzy logic, neural networks, genetic algorithms, robotics, man-machine interface and decision-support systems within nuclear science and related research fields.This volume clearly shows the leading role of FLINS as a forum for the applications of new intelligent techniques in the nuclear domain.