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Event Aware Workload Prediction: A Study Using Auction Events

机译:事件意识到工作负载预测:使用拍卖事件的研究

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Workload bursts have become notorious for rendering numerous web information systems unavailable. While cloud computing has the potential to alleviate this problem by offering computing resources on an on-demand basis, important challenges remain in finding the right resource control strategies to scale resources cost-effectively and to overcome the initialization lag associated with resource acquisition. An effective strategy involves predicting workload demand in advance so that resources can be provisioned in a timely manner, but not all prediction approaches are made equal. We argue that while most existing approaches show promising results in predicting average workload, they fail to predict workload bursts that are inherently irregular. This paper formulates a new event-aware strategy to more effectively predict workload bursts by exploiting prior knowledge associated with scheduled events. We evaluate our approach by comparing it to state-of-the-art methods in workload prediction using real-world datasets from the online auction domain, and we show that event-aware prediction is superior to other approaches in terms of burst prediction accuracy.
机译:工作负载突发对于渲染无数Web信息系统不可用变得臭名昭着。虽然云计算有可能通过按需提供计算资源来缓解这一问题,但重要的挑战仍然在找到成本有效的资源和克服与资源获取相关的初始化滞后来找到正确的资源控制策略。有效的策略涉及预先预测工作负载需求,以便可以及时地配置资源,但并非所有预测方法都是平等的。我们认为,虽然大多数现有方法都表明了预测平均工作量的有希望的结果,但它们未能预测本质上不规则的工作负载突发。本文通过利用与预定事件相关联的先验知识来制定新的事件感知策略,以更有效地预测工作负载突发。我们通过将其与在线拍卖域的实际数据集中的工作负载预测中的最先进方法进行评估,我们评估了我们的方法,我们表明事件感知预测在突发预测精度方面优于其他方法。

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