Exploiting Spot Instances for Time-Critical Cloud Workloads Using Optimal Randomized Strategies
Neelkamal Bhuyan, Randeep Bhatia, Murali S. Kodialam, T. V. Lakshman
摘要
This paper addresses the challenge of deadline-aware online scheduling for jobs in hybrid cloud environments, where jobs may run on either cost-effective but unreliable spot instances or more expensive on-demand instances, under hard deadlines. We first establish a fundamental limit for existing (predominantly-) deterministic policies, proving a worst-case competitive ratio of Ω(K), where K is the cost ratio between on-demand and spot instances. We then present a novel randomized scheduling algorithm, ROSS, that achieves a provably optimal competitive ratio of under reasonable deadlines, significantly improving upon existing approaches. Extensive evaluations on real-world trace data from Azure and AWS demonstrate that ROSS effectively balances cost optimization and deadline guarantees, consistently outperforming the state-of-the-art by up to 30% in cost savings, across diverse spot market conditions.
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- Can't Be Late: Optimizing Spot Instance Savings under DeadlinesZhanghao Wu, Wei-Lin Chiang, Ziming Mao, Zongheng Yang 等NSDI 2024 · 被引用 40 次
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- Best of Both Worlds Guarantees for Smoothed Online Quadratic OptimizationNeelkamal Bhuyan, Debankur Mukherjee, Adam WiermanICML 2024 · 被引用 4 次
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