Optimal Abort Policy for Mission-Critical Systems under Imperfect Condition Monitoring
Qiuzhuang Sun, Jiawen Hu, Zhi-Sheng Ye

TL;DR
This paper develops an optimal mission abort strategy for mission-critical systems with imperfect condition monitoring, using a novel Erlang mixture approximation to solve a complex partially observable semi-Markov process.
Contribution
It introduces a new Erlang mixture approach to approximate non-exponential sojourn times, enabling tractable optimal control via POMDP for systems with imperfect monitoring.
Findings
POMDP policies converge to optimal as Erlang rate increases
The method effectively handles high-frequency monitoring data
Case study demonstrates real-time applicability
Abstract
While most on-demand mission-critical systems are engineered to be reliable to support critical tasks, occasional failures may still occur during missions. To increase system survivability, a common practice is to abort the mission before an imminent failure. We consider optimal mission abort for a system whose deterioration follows a general three-state (normal, defective, failed) semi-Markov chain. The failure is assumed self-revealed, while the healthy and defective states have to be {inferred} from imperfect condition monitoring data. Due to the non-Markovian process dynamics, optimal mission abort for this partially observable system is an intractable stopping problem. For a tractable solution, we introduce a novel tool of Erlang mixtures to approximate non-exponential sojourn times in the semi-Markov chain. This allows us to approximate the original process by a surrogate…
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Taxonomy
TopicsFault Detection and Control Systems · Software Reliability and Analysis Research · Reliability and Maintenance Optimization
