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Cooperative Scheduling Anti-load balancing Algorithm for Cloud : CSAAC

机译:云协同调度抗负载均衡算法:CSAAC

摘要

In the past decade, more and more attention focuses on job scheduling strategies in a variety of scenarios. Due to the characteristics of clouds, meta-scheduling turns out to be an important scheduling pattern because it is responsible for orchestrating resources managed by independent local schedulers and bridges the gap between participating nodes. Likewise, to overcome issues such as bottleneck, overloading, under loading and impractical unique administrative management, which are normally led by conventional centralized or hierarchical schemes, the distributed scheduling scheme is emerging as a promising approach because of its capability with regards to scalability and flexibility. In this paper, we introduce a decentralized dynamic scheduling approach entitled Cooperative scheduling Anti-load balancing Algorithm for cloud (CSAAC). To validate CSAAC we used a simulator which extends the MaGateSim simulator and provides better support to energy aware scheduling algorithms. CSAAC goal is to achieve optimized scheduling performance and energy gain over the scope of overall cloud, instead of individual participating nodes. The extensive experimental evaluation with a real workload dataset shows that, when compared to the centralized scheduling scheme with Best Fit as the meta-scheduling policy, the use of CSAAC can lead to a 30%61% energy gain, and a 20%30% shorter average job execution time in a decentralized scheduling manner without requiring detailed real-time processing information from participating nodes.
机译:在过去的十年中,越来越多的注意力集中在各种情况下的作业调度策略上。由于云的特性,元调度成为一种重要的调度模式,因为它负责协调由独立的本地调度程序管理的资源并弥合参与节点之间的差距。同样,为了克服通常由常规集中式或分层式方案导致的瓶颈,过载,负载不足和不切实际的独特管理管理等问题,分布式调度方案因其在可伸缩性和灵活性方面的能力而成为一种有前途的方法。在本文中,我们介绍了一种分布式动态调度方法,称为“协作调度云抗负载均衡算法”(CSAAC)。为了验证CSAAC,我们使用了一个模拟器,该模拟器扩展了MaGateSim模拟器,并为节能意识的调度算法提供了更好的支持。 CSAAC的目标是在整个云范围内而不是单个参与节点上实现优化的调度性能和能量获取。通过对真实工作负载数据集进行的广泛实验评估表明,与以Best Fit作为元调度策略的集中式调度方案相比,使用CSAAC可以带来30%61%的能源收益和20%30%的能源收益分散调度方式缩短了平均作业执行时间,而无需参与节点提供详细的实时处理信息。

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