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Intelligent Environments 2019 - Workshop Proceedings of the 15th International Conference on Intelligent Environments
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5. Analyzing theInteroperabilityMeasurementModel In section 4.3we have derived a causalmodel for themessage passing behavior of in- teroperable processes.Wenow investigate themodel behavior in order to decideon the degree of the callee’s interoperability behavior.Wediscuss themodel’s behavior using probabilities, e.g. there is a probability that an incomingmessageM contains an oper- ationwhich the dispatcher canmap to a local one. The probability of the complement means thatM containsanunknownoperation to thedispatcher. 5.1. VariablesDependenciesandd-separation Theobservationofmessagepassingof interoperableprocesses insection4.2establishes adependencybetween the incomingandoutgoingmessage through the causal relation- ships between the variables.We analyze the paths between the nodes in the graphical causalmodel of figure 3 utilizing the process of d-separation,where one can conclude thevariabledependencies from.Wequote thedefinitionfromPearl’sbook[15],page46. Definition (d-separation). Apath p isblockedbyasetofnodesZ if andonly if 1. pcontainsachainofnodesA→B→CoraforkA←B→Csuchthat themiddle nodeB is inZ (i.e.B is conditionedon), or 2. pcontains a colliderA→B←Csuch that the collisionnodeB is not inZ, and nodescendantofB is inZ. If Z blocks every path between two nodes X andY are d-separated, conditional on Z, and thusare independent conditionalonZ. If two graph’s nodes are d-separated, the variables they represent are independent. In contrast, if twonodes are d-connected, a path exists between them, i.e. the variables aremost likelydependent. 5.2. d-separationAnalysis The analysis of d-separation in the causal graph of figure 3 let us identify the condi- tionsformessagedependencies.Concretely, thediscriminatorDshalldeterminethemes- sageM′originasa result of the incomingmessageM.Asaconsequence,we formulate: Problem. Findsetsofnodes in thecausalgraphunderwhichMandDared-connected ord-separated. Discussion of the cases, ifM,Dare d-connected. Using an empty conditioning setZ, then, according to thedefinitionabove, everypathbetweenM andD formsachainwith noblockingnode inbetween.So,M andDared-connectedand thereforedependent. In this case, the incomingmessageM affects the probability ofD. In the context of inter- operability, it is understood as follows: FormessagesM containing operations known or unknown to the dispatcher the discriminatorDyieldsD=1orD=0corresponding to theprobability the incomingmessageM contains anoperationknownorunknown to thedispatcher.AsingleoccurrenceofmessageM containinganoperationknown to the dispatcherwill yieldD=1according to thedefinedcausal relationships in section4.3. S. Kotstein and C. Decker /AnApproach for Measuring IoT Interoperability 177
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Intelligent Environments 2019 Workshop Proceedings of the 15th International Conference on Intelligent Environments
Titel
Intelligent Environments 2019
Untertitel
Workshop Proceedings of the 15th International Conference on Intelligent Environments
Autoren
Andrés Muñoz
Sofia Ouhbi
Wolfgang Minker
Loubna Echabbi
Miguel Navarro-Cía
Verlag
IOS Press BV
Datum
2019
Sprache
deutsch
Lizenz
CC BY-NC 4.0
ISBN
978-1-61499-983-6
Abmessungen
16.0 x 24.0 cm
Seiten
416
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Intelligent Environments 2019