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Variation-aware resource allocation evaluation for cloud workflows using statistical model checking

  • East China Normal University

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

Aiming at minimizing service operating costs and SLA (Service Level Agreement) violations, various resource allocation strategies have been investigated to support Cloud service providers' decision making. However, due to the service execution time variation, traditional optimal resource allocation strategies cannot achieve the best performance in practice. To address this problem, we propose an automated variation-aware evaluation framework for resource allocation strategies based on statistical model checker UPPAAL-SMC. Our framework can systematically evaluate the performance of resource allocation strategies under variations, and conduct complex queries on the quality of service. The experimental results show that our framework can not only filter inferior solutions efficiently, but also can enable the tuning of requirement constraints. Since our approach can be fully automated, the human efforts in resource allocation strategy evaluation can be significantly reduced.

源语言英语
主期刊名Proceedings - 4th IEEE International Conference on Big Data and Cloud Computing, BDCloud 2014 with the 7th IEEE International Conference on Social Computing and Networking, SocialCom 2014 and the 4th International Conference on Sustainable Computing and Communications, SustainCom 2014
编辑Jinjun Chen, Laurence T. Yang
出版商Institute of Electrical and Electronics Engineers Inc.
201-208
页数8
ISBN(电子版)9781479967193
DOI
出版状态已出版 - 2014
活动4th IEEE International Conference on Big Data and Cloud Computing, BDCloud 2014 - Sydney, 澳大利亚
期限: 3 12月 20145 12月 2014

出版系列

姓名Proceedings - 4th IEEE International Conference on Big Data and Cloud Computing, BDCloud 2014 with the 7th IEEE International Conference on Social Computing and Networking, SocialCom 2014 and the 4th International Conference on Sustainable Computing and Communications, SustainCom 2014

会议

会议4th IEEE International Conference on Big Data and Cloud Computing, BDCloud 2014
国家/地区澳大利亚
Sydney
时期3/12/145/12/14

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