Modelling and Identification with Rational Orthogonal Basis Functions

Front Cover
Peter S.C. Heuberger, Paul M.J. van den Hof, Bo Wahlberg
Springer Science & Business Media, Jun 30, 2005 - Technology & Engineering - 397 pages

Models of dynamical systems are of great importance in almost all fields of science and engineering and specifically in control, signal processing and information science. A model is always only an approximation of a real phenomenon so that having an approximation theory which allows for the analysis of model quality is a substantial concern. The use of rational orthogonal basis functions to represent dynamical systems and stochastic signals can provide such a theory and underpin advanced analysis and efficient modelling. It also has the potential to extend beyond these areas to deal with many problems in circuit theory, telecommunications, systems, control theory and signal processing.

Nine international experts have contributed to this work to produce thirteen chapters that can be read independently or as a comprehensive whole with a logical line of reasoning:

  • Construction and analysis of generalized orthogonal basis function model structure;
  • System Identification in a time domain setting and related issues of variance, numerics, and uncertainty bounding;
  • System identification in the frequency domain;
  • Design issues and optimal basis selection;
  • Transformation and realization theory.

Modelling and Identification with Rational Orthogonal Basis Functions affords a self-contained description of the development of the field over the last 15 years, furnishing researchers and practising engineers working with dynamical systems and stochastic processes with a standard reference work.

 

Contents

IV
1
V
2
VI
3
VIII
4
XI
5
XIII
6
XIV
7
XVII
8
CXXVI
177
CXXVII
182
CXXVIII
186
CXXIX
187
CXXX
189
CXXXI
193
CXXXII
201
CXXXIII
206

XIX
9
XXI
10
XXII
15
XXIII
16
XXIV
18
XXVI
19
XXVII
20
XXVIII
21
XXIX
22
XXXI
24
XXXIII
25
XXXIV
26
XXXV
27
XXXVI
28
XXXVII
29
XXXVIII
30
XXXIX
33
XLI
35
XLIII
36
XLV
37
XLVI
38
XLVII
39
XLVIII
41
XLIX
42
LI
43
LIII
45
LV
47
LVII
49
LIX
50
LXII
51
LXIV
52
LXVI
53
LXX
54
LXXI
55
LXXII
56
LXXIV
57
LXXVI
58
LXXVII
59
LXXVIII
61
LXXIX
63
LXXX
65
LXXXI
68
LXXXII
69
LXXXIII
73
LXXXIV
75
LXXXVI
78
LXXXVII
88
LXXXVIII
92
LXXXIX
93
XC
100
XCI
101
XCII
102
XCIII
103
XCVI
104
XCVII
106
XCVIII
109
XCIX
112
C
115
CII
116
CIII
117
CV
118
CVI
119
CVII
121
CVIII
123
CIX
126
CX
130
CXI
132
CXII
134
CXIII
137
CXIV
139
CXV
140
CXVI
145
CXVII
150
CXVIII
153
CXIX
161
CXX
162
CXXI
167
CXXII
168
CXXIII
170
CXXIV
173
CXXV
176
CXXXIV
209
CXXXV
210
CXXXVI
212
CXXXVII
213
CXXXVIII
216
CXXXIX
217
CXL
219
CXLI
220
CXLII
221
CXLIV
222
CXLV
224
CXLVI
226
CXLVII
227
CXLVIII
229
CXLIX
230
CL
231
CLI
232
CLII
233
CLIII
235
CLIV
238
CLV
240
CLVI
245
CLVIII
247
CLIX
249
CLX
250
CLXI
252
CLXII
253
CLXIII
261
CLXIV
267
CLXV
269
CLXVI
272
CLXVIII
277
CLXIX
282
CLXX
284
CLXXI
286
CLXXII
289
CLXXIV
290
CLXXV
295
CLXXVI
296
CLXXVII
297
CLXXVIII
301
CLXXIX
304
CLXXXI
305
CLXXXII
306
CLXXXIII
308
CLXXXIV
311
CLXXXV
313
CLXXXVI
315
CLXXXVII
317
CLXXXVIII
325
CLXXXIX
326
CXC
330
CXCI
331
CXCII
332
CXCIII
337
CXCIV
338
CXCV
340
CXCVI
341
CXCVII
342
CXCIX
347
CC
349
CCI
350
CCII
354
CCV
355
CCVII
356
CCIX
357
CCXI
358
CCXII
359
CCXIII
362
CCXIV
363
CCXV
364
CCXVII
365
CCXVIII
366
CCXIX
368
CCXX
369
CCXXI
371
CCXXII
372
CCXXIII
373
CCXXIV
375
CCXXV
395
Copyright

Other editions - View all

Common terms and phrases

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Page 382 - Mechanical Engineering Systems and Control Group, Delft University of Technology, The Netherlands; cwscherer@wbmt.tudelft.nl.

About the author (2005)

Peter Heuberger obtained his M.Sc. degree in Mathematics at Groningen University and his Ph.D. from Delft University of Technology (both in the Netherlands). As well as his part-time position at the Delft Center for Systems and Control, he is a researcher at the Netherlands Environmental Assessment Agency in the Department of Information Services and Methodology.

 

Paul Van den Hof has been Professor of Signals, Systems and Control at the Delft University of Technology since 1999 and th co-Director of the Center for Systems and Control since 2003.

Professor Van den Hof's research interests include system identification, parametrization, signal processing and robust control design, physical measurement systems and industrial process control. He is a member of the IFAC Council (serving between 1999 and 2005), an elected member of the Board of Governors of the IEEE Control Systems Society between 2003 and 2005 and Automatica Editor for Rapid Publications.

 

Professor Bo Wahlberg has held the Chair of Automatic Control at the Royal Institute of Technology (KTH), Stockholm since 1991. He has served as visiting professor at Stanford University and was a vice-president of KTH between 1999 and 2001.

Professor Wahlberg's extensive c.v. can be found at http://www.s3.kth.se/~bo/cv.pdf