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QoS and profit aware task scheduling with simulated-annealing-based bi-objective differential evolution in green clouds

  • Beijing Jiaotong University
  • Beijing University of Technology
  • New Jersey Institute of Technology

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

Distributed clouds (DCs) often require a huge amount of energy to provide multiple services to users around the world. Users bring revenue to DC providers based on the quality of service (QoS) of tasks. These tasks are transmitted to DCs through many available Internet service providers (ISPs) with different bandwidth prices and capacities. Besides, power grid prices, and green energy in different DCs differ with different geographical sites. Consequently, it is challenging to execute tasks among DCs in a high-QoS and high-profit way. This work proposes a bi-objective optimization algorithm to maximize the profit of a DC provider, and minimize the loss possibility of all tasks by specifying the allocation of tasks among different ISPs, and task service rates of each DC. A constrained optimization problem is given and solved by a novel Simulated-annealing-based Bi-objective Differential Evolution (SBDE) algorithm to produce a close-to-optimal Pareto set of solutions. The minimum Manhattan distance is further used to obtain a knee solution, and it determines Pareto optimal service rates and task allocation among ISPs. Realistic trace-driven results demonstrate that SBDE realizes less loss possibility of tasks, and higher profit than several state-of-the-art scheduling algorithms.

源语言英语
主期刊名2019 IEEE 15th International Conference on Automation Science and Engineering, CASE 2019
出版商IEEE Computer Society
904-909
页数6
ISBN(电子版)9781728103556
DOI
出版状态已出版 - 8月 2019
已对外发布
活动15th IEEE International Conference on Automation Science and Engineering, CASE 2019 - Vancouver, 加拿大
期限: 22 8月 201926 8月 2019

出版系列

姓名IEEE International Conference on Automation Science and Engineering
2019-August
ISSN(印刷版)2161-8070
ISSN(电子版)2161-8089

会议

会议15th IEEE International Conference on Automation Science and Engineering, CASE 2019
国家/地区加拿大
Vancouver
时期22/08/1926/08/19

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