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dc.contributor.author
Kämper, Andreas
dc.contributor.author
Holtwerth, Alexander
dc.contributor.author
Leenders, Ludger
dc.contributor.author
Bardow, André
dc.date.accessioned
2023-07-19T17:24:57Z
dc.date.available
2021-08-24T04:14:23Z
dc.date.available
2021-08-24T11:31:57Z
dc.date.available
2023-07-19T17:24:57Z
dc.date.issued
2021-08
dc.identifier.issn
2296-598X
dc.identifier.other
10.3389/fenrg.2021.719658
en_US
dc.identifier.uri
http://hdl.handle.net/20.500.11850/501903
dc.identifier.doi
10.3929/ethz-b-000501903
dc.description.abstract
The optimal operation of multi-energy systems requires optimization models that are accurate and computationally efficient. In practice, models are mostly generated manually. However, manual model generation is time-consuming, and model quality depends on the expertise of the modeler. Thus, reliable and automated model generation is highly desirable. Automated data-driven model generation seems promising due to the increasing availability of measurement data from cheap sensors and data storage. Here, we propose the method AutoMoG 3D (Automated Model Generation) to decrease the effort for data-driven generation of computationally efficient models while retaining high model quality. AutoMoG 3D automatically yields Mixed-Integer Linear Programming models of multi-energy systems enabling efficient operational optimization to global optimality using established solvers. For each component, AutoMoG 3D performs a piecewise-affine regression using hinging-hyperplane trees. Thereby, components can be modeled with an arbitrary number of independent variables. AutoMoG 3D iteratively increases the number of affine regions. Thereby, AutoMoG 3D balances the errors caused by each component in the overall model of the multi-energy system. AutoMoG 3D is applied to model a real-world pump system. Here, AutoMoG 3D drastically decreases the effort for data-driven model generation and provides an accurate and computationally efficient optimization model.
en_US
dc.format
application/pdf
en_US
dc.language.iso
en
en_US
dc.publisher
Frontiers Media
en_US
dc.rights.uri
http://creativecommons.org/licenses/by/4.0/
dc.subject
data-driven modeling
en_US
dc.subject
regression analysis
en_US
dc.subject
piecewise affine
en_US
dc.subject
mixed-integer linear programming
en_US
dc.subject
hinging hyperplanes
en_US
dc.title
AutoMoG 3D: Automated Data-Driven Model Generation of Multi-Energy Systems Using Hinging Hyperplanes
en_US
dc.type
Journal Article
dc.rights.license
Creative Commons Attribution 4.0 International
dc.date.published
2021-08-09
ethz.journal.title
Frontiers in Energy Research
ethz.journal.volume
9
en_US
ethz.journal.abbreviated
Front. Energy Res.
ethz.pages.start
719658
en_US
ethz.size
13 p.
en_US
ethz.version.deposit
publishedVersion
en_US
ethz.identifier.wos
ethz.identifier.scopus
ethz.publication.place
Lausanne
en_US
ethz.publication.status
published
en_US
ethz.leitzahl
ETH Zürich::00002 - ETH Zürich::00012 - Lehre und Forschung::00007 - Departemente::02130 - Dep. Maschinenbau und Verfahrenstechnik / Dep. of Mechanical and Process Eng.::02668 - Inst. f. Energie- und Verfahrenstechnik / Inst. Energy and Process Engineering::09696 - Bardow, André / Bardow, André
en_US
ethz.leitzahl.certified
ETH Zürich::00002 - ETH Zürich::00012 - Lehre und Forschung::00007 - Departemente::02130 - Dep. Maschinenbau und Verfahrenstechnik / Dep. of Mechanical and Process Eng.::02668 - Inst. f. Energie- und Verfahrenstechnik / Inst. Energy and Process Engineering::09696 - Bardow, André / Bardow, André
en_US
ethz.tag
System Design
en_US
ethz.relation.hasPart
20.500.11850/461710
ethz.date.deposited
2021-08-24T04:14:30Z
ethz.source
WOS
ethz.eth
yes
en_US
ethz.availability
Open access
en_US
ethz.rosetta.installDate
2021-08-24T11:32:06Z
ethz.rosetta.lastUpdated
2022-03-29T11:18:05Z
ethz.rosetta.exportRequired
true
ethz.rosetta.versionExported
true
ethz.COinS
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