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010 _a2021933820
020 _a9783110677942
024 7 _a10.1515/9783110677942
_2doi
035 _a(DE-B1597)536610
035 _a(OCoLC)1262049502
040 _aDE-B1597
_beng
_cDE-B1597
_erda
041 0 _aeng
044 _agw
_cDE
072 7 _aTEC009000
_2bisacsh
100 1 _aSchaum, Alexander,
_eauthor.
_4aut
_4http://id.loc.gov/vocabulary/relators/aut
_976429
245 1 0 _aDissipativity in Control Engineering :
_bApplications in Finite- and Infinite-Dimensional Systems /
_cAlexander Schaum.
264 1 _aBerlin ;
_aBoston :
_bDe Gruyter,
_c[2021]
264 4 _c©2021
300 _a1 online resource (XIV, 228 p.)
336 _atext
_btxt
_2rdacontent
337 _acomputer
_bc
_2rdamedia
338 _aonline resource
_bcr
_2rdacarrier
347 _atext file
_bPDF
_2rda
505 0 0 _tFrontmatter --
_tPreface --
_tContents --
_tAbout the author --
_tList of Figures --
_tPart I: Introduction and motivation --
_t1 Motivation and problem formulation --
_tPart II: Theoretical foundations --
_t2 Stability, dissipativity and some system-theoretic concepts --
_t3 Dissipativity-based observer and feedback control design --
_tPart III: Application examples --
_tIntroduction --
_t4 Finite-dimensional systems --
_t5 Infinite-dimensional systems --
_t6 Conclusions and outlook --
_tA Lemmata on quadratic forms --
_tB Kalman decomposition for observer design --
_tC The algebraic Riccati equation, optimality and dissipativity --
_tD Kernel derivations for the backstepping approach --
_tBibliography --
_tIndex
506 0 _arestricted access
_uhttp://purl.org/coar/access_right/c_16ec
_fonline access with authorization
_2star
520 _aDissipativity, as a natural mechanism of energy interchange is common to many physical systems that form the basis of modern automated control applications. Over the last decades it has turned out as a useful concept that can be generalized and applied in an abstracted form to very different system setups, including ordinary and partial differential equation models. In this monograph, the basic notions of stability, dissipativity and systems theory are connected in order to establish a common basis for designing system monitoring and control schemes. The approach is illustrated with a set of application examples covering finite and infinite-dimensional models, including a ship steering model, the inverted pendulum, chemical and biological reactors, relaxation oscillators, unstable heat equations and first-order hyperbolic integro-differential equations.
530 _aIssued also in print.
538 _aMode of access: Internet via World Wide Web.
546 _aIn English.
588 0 _aDescription based on online resource; title from PDF title page (publisher's Web site, viewed 01. Dez 2022)
650 4 _aRegelungstechnik.
_976430
650 4 _aSelbstorganisierung.
_976431
650 4 _aSteuerungstechnik.
_976432
650 4 _aendlichdimensionale Systeme.
_976433
650 4 _aunendlichdimensionale Systeme.
_976434
650 7 _aTechnology & Engineering / Engineering (General).
_2bisacsh
_975211
773 0 8 _iTitle is part of eBook package:
_dDe Gruyter
_tDG Ebook Package English 2021
_z9783110750720
773 0 8 _iTitle is part of eBook package:
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_tDG Plus DeG Package 2021 Part 1
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_tEBOOK PACKAGE Engineering, Computer Sciences 2021
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776 0 _cprint
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856 4 0 _uhttps://doi.org/10.1515/9783110677942
856 4 0 _uhttps://www.degruyter.com/isbn/9783110677942
856 4 2 _3Cover
_uhttps://www.degruyter.com/document/cover/isbn/9783110677942/original
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