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An efficient Bayesian diagnosis for QoS management in service-oriented architecture

  • Jing Zhang*
  • , Xiaoqi Zhang
  • , Kwei Jay Lin
  • *此作品的通信作者
  • University of California at Irvine
  • Beijing University of Posts and Telecommunications

研究成果: 圖書/報告稿件的類型會議稿件同行評審

8 引文 斯高帕斯(Scopus)

摘要

When running a business process in SOA, systems need an efficient mechanism to detect performance issues and identify root causes. In this paper, we study the Bayesian network diagnosis model to identify faulty services in a business process by monitoring a subset of services selected as evidence channels. Both local and global optimal evidence channel selection algorithms can be used to select the most informative services for runtime monitoring. In the local optimal algorithm, monitoring coverage on services is defined by the behavior similarity between individual services. In the global optimal algorithm, an iterative search is adopted to choose the service that reduces system entropy most in each round. We have implemented the Bayesian diagnosis capability in the Llama middleware. The system study shows that the new diagnosis approach can achieve a good diagnosis result for deployed business process by monitoring about 25% of the services.

原文英語
主出版物標題Proceedings - 2011 IEEE International Conference on Service-Oriented Computing and Applications, SOCA 2011
DOIs
出版狀態已出版 - 2011
對外發佈
事件2011 IEEE International Conference on Service-Oriented Computing and Applications, SOCA 2011 - Irvine, CA, 美國
持續時間: 12 12 201114 12 2011

出版系列

名字Proceedings - 2011 IEEE International Conference on Service-Oriented Computing and Applications, SOCA 2011

Conference

Conference2011 IEEE International Conference on Service-Oriented Computing and Applications, SOCA 2011
國家/地區美國
城市Irvine, CA
期間12/12/1114/12/11

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