False-alarm and non-detection probabilities for on-line quality control via HMM
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| Главный автор: | |
|---|---|
| Дата публикации: | 2012 |
| Другие авторы: | , , |
| Формат: | Article |
| Язык: | eng |
| Источник: | Repositório Institucional da UnB |
| Download full: | http://repositorio.unb.br/handle/10482/12761 |
Итог: | On-line quality control during production calls for monitoring produced items according to some prescribed strategy. It is reasonable to assume the existence of system internal non-observable variables so that the carried out monitoring is only partially reliable. In this note, under the setting of a Hidden Markov Model (HMM) and assuming that the evolution of the internal state changes are governed by a two-state Markov chain, we derive estimates for false-alarm and non-detection malfunctioning probabilities. Kernel density methods are used to approximate the stable regime density and the stationary probabilities. As a side result, alternative monitoring strategies are proposed. |
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