Arşiv ve Dokümantasyon Merkezi
Dijital Arşivi

Maintenance of a multi-component dynamic system under partial observations

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dc.contributor Ph.D. Program in Industrial Engineering.
dc.contributor.advisor Bilgiç, Taner,
dc.contributor.author Ünlüakın, Demet Özgür.
dc.date.accessioned 2023-03-16T10:35:16Z
dc.date.available 2023-03-16T10:35:16Z
dc.date.issued 2008.
dc.identifier.other IE 2008 U55 PhD
dc.identifier.uri http://digitalarchive.boun.edu.tr/handle/123456789/13534
dc.description.abstract This thesis studies the maintenance of a dynamic system consisting of several components which age in time at a given failure rate. The states of the components are hidden. In each decision epoch, the decision of whether replacing a component or doing nothing is to be made. The major difference of this problem from the other main- tenance problems is its complex structure due to many components. Two versions of the maintenance problem are studied. In the first one, it is possible to estimate the re- liability of the whole system. The aim is to find a minimal maintenance cost given that the reliability of the system should always be above a predetermined threshold value. In the second problem, partial observations, i.e., signals related with the components are observed in each time period. The next observation may have an associated cost to the decision maker. This problem is a partially observed Markov decision process (POMDP). Dynamic Bayesian networks (DBNs) are proposed as a solution to the first prob- lem. Four heuristic approaches are presented to select the component to be replaced. A hierarchical heuristic solution procedure is proposed to solve the second problem. An aggregate model is developed by aggregating states and actions so that it can be solved with exact POMDP solvers. Disaggregation is done by simulating the process with a DBN and applying troubleshooting approaches in the decision epochs where replacement is planned in the aggregate policy.
dc.format.extent 30cm.
dc.publisher Thesis (Ph.D.)-Bogazici University. Institute for Graduate Studies in Science and Engineering, 2008.
dc.relation Includes appendices.
dc.relation Includes appendices.
dc.subject.lcsh Bayesian statistical decision theory.
dc.subject.lcsh Markov processes.
dc.subject.lcsh Reliability (Engineering)
dc.title Maintenance of a multi-component dynamic system under partial observations
dc.format.pages xvi, 127 leaves;


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