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dc.contributor.authorKluge, Roland
dc.contributor.authorStein, Michael
dc.contributor.authorVarró, Gergely
dc.contributor.authorSchürr, Andy
dc.contributor.authorHollick, Matthias
dc.contributor.authorMühlhäuser, Max
dc.contributor.editorTichy, Matthias
dc.contributor.editorBodden, Eric
dc.contributor.editorKuhrmann, Marco
dc.contributor.editorWagner, Stefan
dc.contributor.editorSteghöfer, Jan-Philipp
dc.date.accessioned2019-03-29T10:24:09Z
dc.date.available2019-03-29T10:24:09Z
dc.date.issued2018
dc.identifier.isbn978-3-88579-673-2
dc.identifier.issn1617-5468
dc.identifier.urihttp://dl.gi.de/handle/20.500.12116/21152
dc.description.abstractIn this talk, we present results on integrating support for variability modeling into a correct-by-construction development methodology for topology control algorithms, as appeared online in the Software & Systems Modeling journal in 2017. A topology control algorithm reduces the size of the visible neighborhood of a node in a wireless communication network. At the same time, it must fulfill important consistency properties to ensure a high quality of service. In previous work, we proposed a constructive, model-driven methodology for designing individual topology control algorithms based on declarative graph constraints and graph transformation rules; the resulting algorithms are guaranteed to preserve the specified properties. Even though many topology control algorithms share substantial (structural) parts, few works leverage these commonalities at design time. In this work, we generalize our proposed construction methodology by modeling variability points to support the construction of families of algorithms. We show the applicability of our approach by reengineering six existing topology control algorithms and developing e-kTC, a novel energy-efficient variant of the topology control algorithm kTC. Finally, we evaluate a subset of the algorithms using a novel integration of a wireless network simulator and a graph transformation tool.en
dc.language.isoen
dc.publisherGesellschaft für Informatik
dc.relation.ispartofSoftware Engineering und Software Management 2018
dc.relation.ispartofseriesLecture Notes in Informatics (LNI) - Proceedings, Volume P-279
dc.subjectGraph transformation
dc.subjectGraph constraints
dc.subjectStatic analysis
dc.subjectModel-driven engineering
dc.subjectWireless networks
dc.subjectNetwork simulation
dc.titleA systematic approach to constructing families of incremental topology control algorithms using graph transformationen
dc.typeText/Conference Paper
dc.pubPlaceBonn
mci.reference.pages109-110
mci.conference.sessiontitleSoftware Engineering 2018 - Wissenschaftliches Hauptprogramm
mci.conference.locationUlm
mci.conference.date5.-9. März 2018


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