System Identification for Interconnected Nonlinear Systems

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ISBN 13 :
Total Pages : 258 pages
Book Rating : 4.:/5 (34 download)

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Book Synopsis System Identification for Interconnected Nonlinear Systems by : Kenneth Hsu

Download or read book System Identification for Interconnected Nonlinear Systems written by Kenneth Hsu and published by . This book was released on 2008 with total page 258 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Nonlinear system identification. 2. Nonlinear system structure identification

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Publisher : Springer Science & Business Media
ISBN 13 : 9780792358572
Total Pages : 428 pages
Book Rating : 4.3/5 (585 download)

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Book Synopsis Nonlinear system identification. 2. Nonlinear system structure identification by : Robert Haber

Download or read book Nonlinear system identification. 2. Nonlinear system structure identification written by Robert Haber and published by Springer Science & Business Media. This book was released on 1999 with total page 428 pages. Available in PDF, EPUB and Kindle. Book excerpt: This is the second part of a two-volume handbook presenting a comprehensive overview of nonlinear dynamic system identification. The books include many aspects of nonlinear processes such as modelling, parameter estimation, structure search, nonlinearity and model validity tests.

System Identification Methods for a Class of Structured Nonlinear Systems

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ISBN 13 :
Total Pages : 342 pages
Book Rating : 4.:/5 (34 download)

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Book Synopsis System Identification Methods for a Class of Structured Nonlinear Systems by : Gregory Jon Wolodkin

Download or read book System Identification Methods for a Class of Structured Nonlinear Systems written by Gregory Jon Wolodkin and published by . This book was released on 1996 with total page 342 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Nonlinear System Identification

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Publisher : Springer Nature
ISBN 13 : 3030474399
Total Pages : 1235 pages
Book Rating : 4.0/5 (34 download)

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Book Synopsis Nonlinear System Identification by : Oliver Nelles

Download or read book Nonlinear System Identification written by Oliver Nelles and published by Springer Nature. This book was released on 2020-09-09 with total page 1235 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book provides engineers and scientists in academia and industry with a thorough understanding of the underlying principles of nonlinear system identification. It equips them to apply the models and methods discussed to real problems with confidence, while also making them aware of potential difficulties that may arise in practice. Moreover, the book is self-contained, requiring only a basic grasp of matrix algebra, signals and systems, and statistics. Accordingly, it can also serve as an introduction to linear system identification, and provides a practical overview of the major optimization methods used in engineering. The focus is on gaining an intuitive understanding of the subject and the practical application of the techniques discussed. The book is not written in a theorem/proof style; instead, the mathematics is kept to a minimum, and the ideas covered are illustrated with numerous figures, examples, and real-world applications. In the past, nonlinear system identification was a field characterized by a variety of ad-hoc approaches, each applicable only to a very limited class of systems. With the advent of neural networks, fuzzy models, Gaussian process models, and modern structure optimization techniques, a much broader class of systems can now be handled. Although one major aspect of nonlinear systems is that virtually every one is unique, tools have since been developed that allow each approach to be applied to a wide variety of systems.

Nonlinear system identification. 1. Nonlinear system parameter identification

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Publisher : Springer Science & Business Media
ISBN 13 : 9780792358565
Total Pages : 432 pages
Book Rating : 4.3/5 (585 download)

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Book Synopsis Nonlinear system identification. 1. Nonlinear system parameter identification by : Robert Haber

Download or read book Nonlinear system identification. 1. Nonlinear system parameter identification written by Robert Haber and published by Springer Science & Business Media. This book was released on 1999 with total page 432 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Nonlinear System Identification

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Publisher : Springer Science & Business Media
ISBN 13 : 3662043238
Total Pages : 785 pages
Book Rating : 4.6/5 (62 download)

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Book Synopsis Nonlinear System Identification by : Oliver Nelles

Download or read book Nonlinear System Identification written by Oliver Nelles and published by Springer Science & Business Media. This book was released on 2013-03-09 with total page 785 pages. Available in PDF, EPUB and Kindle. Book excerpt: Written from an engineering point of view, this book covers the most common and important approaches for the identification of nonlinear static and dynamic systems. The book also provides the reader with the necessary background on optimization techniques, making it fully self-contained. The new edition includes exercises.

Block-oriented Nonlinear System Identification

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Publisher : Springer
ISBN 13 : 1849965137
Total Pages : 425 pages
Book Rating : 4.8/5 (499 download)

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Book Synopsis Block-oriented Nonlinear System Identification by : Fouad Giri

Download or read book Block-oriented Nonlinear System Identification written by Fouad Giri and published by Springer. This book was released on 2010-09-22 with total page 425 pages. Available in PDF, EPUB and Kindle. Book excerpt: Block-oriented Nonlinear System Identification deals with an area of research that has been very active since the turn of the millennium. The book makes a pedagogical and cohesive presentation of the methods developed in that time. These include: iterative and over-parameterization techniques; stochastic and frequency approaches; support-vector-machine, subspace, and separable-least-squares methods; blind identification method; bounded-error method; and decoupling inputs approach. The identification methods are presented by authors who have either invented them or contributed significantly to their development. All the important issues e.g., input design, persistent excitation, and consistency analysis, are discussed. The practical relevance of block-oriented models is illustrated through biomedical/physiological system modelling. The book will be of major interest to all those who are concerned with nonlinear system identification whatever their activity areas. This is particularly the case for educators in electrical, mechanical, chemical and biomedical engineering and for practising engineers in process, aeronautic, aerospace, robotics and vehicles control. Block-oriented Nonlinear System Identification serves as a reference for active researchers, new comers, industrial and education practitioners and graduate students alike.

Adaptive Nonlinear System Identification

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Publisher : Springer Science & Business Media
ISBN 13 : 0387686304
Total Pages : 238 pages
Book Rating : 4.3/5 (876 download)

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Book Synopsis Adaptive Nonlinear System Identification by : Tokunbo Ogunfunmi

Download or read book Adaptive Nonlinear System Identification written by Tokunbo Ogunfunmi and published by Springer Science & Business Media. This book was released on 2007-09-05 with total page 238 pages. Available in PDF, EPUB and Kindle. Book excerpt: Focuses on System Identification applications of the adaptive methods presented. but which can also be applied to other applications of adaptive nonlinear processes. Covers recent research results in the area of adaptive nonlinear system identification from the authors and other researchers in the field.

System Identification for Structured Nonlinear Systems

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ISBN 13 :
Total Pages : 320 pages
Book Rating : 4.:/5 (34 download)

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Book Synopsis System Identification for Structured Nonlinear Systems by : Mareike Silke Claassen

Download or read book System Identification for Structured Nonlinear Systems written by Mareike Silke Claassen and published by . This book was released on 2001 with total page 320 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Adaptive Nonlinear System Identification

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Publisher : Springer
ISBN 13 : 9780387508016
Total Pages : 0 pages
Book Rating : 4.5/5 (8 download)

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Book Synopsis Adaptive Nonlinear System Identification by : Tokunbo Ogunfunmi

Download or read book Adaptive Nonlinear System Identification written by Tokunbo Ogunfunmi and published by Springer. This book was released on 2008-11-01 with total page 0 pages. Available in PDF, EPUB and Kindle. Book excerpt: Focuses on System Identification applications of the adaptive methods presented. but which can also be applied to other applications of adaptive nonlinear processes. Covers recent research results in the area of adaptive nonlinear system identification from the authors and other researchers in the field.

Nonlinear System Identification

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Publisher : John Wiley & Sons
ISBN 13 : 1119943590
Total Pages : 611 pages
Book Rating : 4.1/5 (199 download)

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Book Synopsis Nonlinear System Identification by : Stephen A. Billings

Download or read book Nonlinear System Identification written by Stephen A. Billings and published by John Wiley & Sons. This book was released on 2013-09-23 with total page 611 pages. Available in PDF, EPUB and Kindle. Book excerpt: Nonlinear System Identification: NARMAX Methods in the Time, Frequency, and Spatio-Temporal Domains describes a comprehensive framework for the identification and analysis of nonlinear dynamic systems in the time, frequency, and spatio-temporal domains. This book is written with an emphasis on making the algorithms accessible so that they can be applied and used in practice. Includes coverage of: The NARMAX (nonlinear autoregressive moving average with exogenous inputs) model The orthogonal least squares algorithm that allows models to be built term by term where the error reduction ratio reveals the percentage contribution of each model term Statistical and qualitative model validation methods that can be applied to any model class Generalised frequency response functions which provide significant insight into nonlinear behaviours A completely new class of filters that can move, split, spread, and focus energy The response spectrum map and the study of sub harmonic and severely nonlinear systems Algorithms that can track rapid time variation in both linear and nonlinear systems The important class of spatio-temporal systems that evolve over both space and time Many case study examples from modelling space weather, through identification of a model of the visual processing system of fruit flies, to tracking causality in EEG data are all included to demonstrate how easily the methods can be applied in practice and to show the insight that the algorithms reveal even for complex systems NARMAX algorithms provide a fundamentally different approach to nonlinear system identification and signal processing for nonlinear systems. NARMAX methods provide models that are transparent, which can easily be analysed, and which can be used to solve real problems. This book is intended for graduates, postgraduates and researchers in the sciences and engineering, and also for users from other fields who have collected data and who wish to identify models to help to understand the dynamics of their systems.

Block-oriented Nonlinear System Identification Using Semidenite Programming

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ISBN 13 : 9781267424006
Total Pages : 110 pages
Book Rating : 4.4/5 (24 download)

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Book Synopsis Block-oriented Nonlinear System Identification Using Semidenite Programming by : Younghee Han

Download or read book Block-oriented Nonlinear System Identification Using Semidenite Programming written by Younghee Han and published by . This book was released on 2012 with total page 110 pages. Available in PDF, EPUB and Kindle. Book excerpt: Identification of block-oriented nonlinear systems has been an active research area for the last several decades. A block-oriented nonlinear system represents a nonlinear dynamical system as a combination of linear dynamic systems and static nonlinear blocks. In block-oriented nonlinear systems, each block (linear dynamic systems and static nonlinearity) can be connected in many different ways (series, parallel, feedback) and this flexibility provides the block-oriented modeling approach with an ability to capture a large class of nonlinear systems. However, intermediate signals in such block-oriented systems are not measurable and the inaccessibility of such measurements is the main difficulty in block-oriented nonlinear system identification. Recently a system identification method using rank minimization has been introduced for linear system identification. Finding the simplest model within a feasible model set restricted by convex constraints can often be formulated as a rank minimization problem. In this research, the rank minimization approach is extended to block-oriented nonlinear system identification. The system parameter estimation problem is formulated as a rank minimization problem or the combination of prediction error and rank minimization problems by constraining a finite dimensional time dependency of a linear dynamic system and by using the monotonicity of static nonlinearity. This allows us to reconstruct non-measurable intermediate signals and once the intermediate signals have been reconstructed, the identification of each block can be solved with the standard Prediction Error method or Least Squares method. The research work presented in this dissertation proposes a new approach for block-oriented system identification by tackling the inaccessibility of measurement of intermediate signals in block-oriented nonlinear systems via rank minimization. Since the rank minimization problem is non-convex, the rank minimization problem is relaxed to a semidefinite programming problem by minimizing the nuclear norm instead of the rank. The research contributes to advances in block-oriented nonlinear system identification.

System Identification of Nonlinear Systems Using Adaptive Filtering Techniques

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ISBN 13 :
Total Pages : 264 pages
Book Rating : 4.:/5 (321 download)

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Book Synopsis System Identification of Nonlinear Systems Using Adaptive Filtering Techniques by : Alan B. Johnston

Download or read book System Identification of Nonlinear Systems Using Adaptive Filtering Techniques written by Alan B. Johnston and published by . This book was released on 1994 with total page 264 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Nonlinear System Analysis and Identification from Random Data

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Publisher : Wiley-Interscience
ISBN 13 :
Total Pages : 304 pages
Book Rating : 4.:/5 (5 download)

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Book Synopsis Nonlinear System Analysis and Identification from Random Data by : Julius S. Bendat

Download or read book Nonlinear System Analysis and Identification from Random Data written by Julius S. Bendat and published by Wiley-Interscience. This book was released on 1990 with total page 304 pages. Available in PDF, EPUB and Kindle. Book excerpt: Describes procedures to identify and analyze the properties of many types of nonlinear systems from random data measured at the input and output points of physical systems. Improvements are offered in applying older techniques, and problems that traditionally have been difficult to analyze are solved by new, simpler procedures. Formulas are stated for optimum nonlinear system identification in both general models consisting of parallel, linear bilinear and trilinear systems, and special models consisting of parallel linear, finite-memory square-law systems and finite-memory cubic systems. New results, obtained here, show when and how to replace complicated single input/output nonlinear models with simpler alternative multiple input/single output linear models. New error analysis formulas are presented to design experiments and to evaluate estimates obtained from measured data. Includes many illustrative examples.

Nonlinear Systems Identification in Presence of Nonuniqueness

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ISBN 13 :
Total Pages : 90 pages
Book Rating : 4.:/5 (31 download)

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Book Synopsis Nonlinear Systems Identification in Presence of Nonuniqueness by : Jean-Noël Aubrun

Download or read book Nonlinear Systems Identification in Presence of Nonuniqueness written by Jean-Noël Aubrun and published by . This book was released on 1971 with total page 90 pages. Available in PDF, EPUB and Kindle. Book excerpt: Nonlinear systems for matching input-output of mathematical model to physical system.

On Identification of Nonlinear Systems

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ISBN 13 : 9789054852254
Total Pages : 129 pages
Book Rating : 4.8/5 (522 download)

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Book Synopsis On Identification of Nonlinear Systems by : Sixtus Leonardus Jacobus Mous

Download or read book On Identification of Nonlinear Systems written by Sixtus Leonardus Jacobus Mous and published by . This book was released on 1994 with total page 129 pages. Available in PDF, EPUB and Kindle. Book excerpt: . Therefore it is not astonishing that many studies in applied science are about the modeling of these processes. In this thesis we will focus on the building of models that are used to describe some nonlinear processes in hydrology and meteorology; the first process is the movement of water in porous media and the second process is the large-scale atmospheric circulations. The process of model development can be divided in three essential subprocesses: selection of a model structure, determination of a "best fit" criterion and experimental design. In literature, their are several examples of "case-studies" known, where the specific combination of model structure, criterion and experimental design did not lead to unique estimates of the unknown parameters of the model. This situation is designated by the term: "the model is not identifiable". A model may not be identifiable (given a certain choice of the experimental design) because the chosen object function is insensitive to some linear combinations of the parameters. In this case the identification problem will not have a unique solution. On the other hand, due to noise in the system, the optimization problem may have many local optima. One can then easily be misled because an optimization algorithm may converge to such a local optimum. It will be studied how such a situation can be recognized. Furthermore, it will be studied how the identifiability can be improved by an appropriate choise of the experimental design. There are also other situations where the chosen combination of model structure, "best fit" criterion and experimental design will not lead to a unique solution. Such a case occurs when we are dealing with chaotic systems. For chaotic systems the optimization problem, using the output-error criterion as "best- fit" criterion, is ill-posed, because the model's solution depends sensitively on its initial state. The observed values and the model values will then diverge due to the limited accuracy of the initial state. Several criteria are analyzed on their capability for detecting small perturbations in the system and for estimating unknown parameters in the system. In chapter 2 of this thesis the ONE-STEP method is described. This method is developed to identify the parameters in a model for the movement of water in the unsaturated soils. The motivation to analyze the identifiability of this model comes from the statement made by several authors that not all model parameters can be estimated uniquely. In this chapter we will analyze first some numerical schemes to solve the mathematical model, because the efficiency and the accuracy- of a numerical scheme are very important for applicability of the ONE- STEP method. In chapter 3 the concept of "structural identifiability" is further developted. The term "numerical identifiable" is introduced, so that we can take into account the accuracy of the sensitivity matrix. The identifiability analysis of the ONE- STEP method shows that not all parameters can be estimated uniquely. In the best case, where the pressure in the pressure cell is increased during the experiment at certain time instants, only 5 of the 6 model parameters can be estimated uniquely. Analyzing the structure of the model, we can derive that the object function depends on 5 independent parameters only, which explains the identifiability problem. Only by adding some other measurements, for example the pressure head at a certain position in the soil core, one may, expect better results of this method. As already mentioned above, the output-error criterion in combination with chaotic systems, leads to ill-posed problems. In chapter 4 it is analyzed whether a criterion, based on a modified sentinel function, can be used to detect an external perturbation in a chaotic system. We found that fast varying perturbations are often "stealthy" for this function. Therefore this criterion can only be used to detect slowly varying perturbations. The sentinel function can also be used to estimate uncertain parameters that are used to describe such a small perturbation term. We have compared the performance of the sentinel approach with an adaptive extended Kalman filter in a test-case. In the example that is presented, the size of a perturbation in the equator-pole temperature gradient is estimated. The equator-pole temperature gradient characterizes the driving force in a low-order spectral model of the atmospheric circulation and therefore a change in the equator-pole temperature gradient may be important in studing the greenhouse effect. In this test-case the performance of the adaptive extended Kalman filter was better then the performance of the sentinel approach. The less accurate results of the sentinel method are caused by the relative slow sampling frequency. The effect of neglecting higher order terms in the Taylor expansion and the influence of observation errors is then felt. A disadvantage of extended Kalman filtering is that the filter easily diverges. In chapter 5 this problem is studied for chaotic systems. A reasonable approach to solve the divergence problem is to add an artificial noise term to the state equations. This noise term is used to control the accuracy of the state estimates and so preventing that the filter learns the wrong state too well. With the extended Kalman filter one can easily obtain an approximation of the value of the loglikelihood function. For this problem we have developed an optimization procedure that can be used together with the extended Kalman filter to estimate the unknown parameters in the model description as well as the parameters that are used to describe the covariance matrix of the artificial noise term. This method is successfully applied to determine the optimal extended Kalman filter for a T11-spectral model of the atmospheric circulation.

Nonlinear System Identification Study. Part I. Implementation Feasibility Study

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Publisher :
ISBN 13 :
Total Pages : 187 pages
Book Rating : 4.:/5 (227 download)

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Book Synopsis Nonlinear System Identification Study. Part I. Implementation Feasibility Study by : E. J. Ewen

Download or read book Nonlinear System Identification Study. Part I. Implementation Feasibility Study written by E. J. Ewen and published by . This book was released on 1979 with total page 187 pages. Available in PDF, EPUB and Kindle. Book excerpt: The implementation feasibility of a nonlinear system identification technique is evaluated in this report. The identification technique uses a 'black box' approach requiring measurements only at system input and output terminals and is applicable to weakly nonlinear systems whose behavior is adequately characterized by a finite Volterra series. Three hardware implementations of the identification technique are postulated and their respective performances are evaluated. The impact of A/D converter quantization error, non-ideal amplifiers, multipliers and integrators on performance of the identification process is assessed. Performance requirements for each of the three implementations are derived via simulation and analysis. The feasibility of implementing the technique using commercially available state of the art components and measurement equipment in each implementation is assessed. RADC-TR-79-199, Part II, A computational complexity study of the identification technique processing to determine the class of nonlinear systems to which the technique can be practically applied will be published at a later date. (Author).