Active automata learning for real life applications

dc.contributor.advisorSteffen, Bernhard
dc.contributor.authorMerten, Maik
dc.contributor.refereeHähnle, Reiner
dc.date.accepted2013-01-09
dc.date.accessioned2013-01-29T14:50:52Z
dc.date.available2013-01-29T14:50:52Z
dc.date.issued2013-01-29
dc.description.abstractAutomata learning is a concept discussed in the literature for decades. Accordingly, the theoretical framework for learning automata from observations has been in place already for a considerable time. Despite the ever-increasing theoretical maturity of the field, real-life applications are few and far between. In part this can certainly be attributed to the lack of ready-made infrastructure, e.g., frameworks that support automata learning with the goal of learning realistic systems. Additionally, the degree of automation in this field is low, meaning that learning setups have to be instantiated manually and per-system, making this a time-consuming and laborious undertaking. The central question of this thesis is "How can active automata learning be readied for application on real-life systems?". Contributions presented includes work on learning frameworks and tools, learning algorithms, scalability of learning solutions, and automated configuration and execution of learning setups.en
dc.identifier.urihttp://hdl.handle.net/2003/29884
dc.identifier.urihttp://dx.doi.org/10.17877/DE290R-5169
dc.language.isoende
dc.subjectAutomata learningen
dc.subjectLearning frameworksen
dc.subjectMealy machinesen
dc.subjectRegular inferenceen
dc.subject.ddc004
dc.titleActive automata learning for real life applicationsen
dc.typeTextde
dc.type.publicationtypedoctoralThesisde
dcterms.accessRightsopen access
eldorado.dnb.deposittruede

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