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GEAP: A Generic Approach to Predicting Workload Bursts for Web Hosted Events

机译:GEAP:一种用于预测Web托管事件的工作量突发的通用方法

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A number of recent research contributions in workload forecasting aim to confront the challenge facing many web applications of maintaining QoS in the face of fluctuating workload. Many of these demonstrate good prediction accuracy for periodic and long-term workload trends, but they exhibit poor accuracy when faced with predicting the magnitude, profile, and time of non-periodic bursts. It is such workload bursts that have been known to bring down numerous e-commerce and other web-based systems during events like online sales, as well as product, and result announcements. In this paper, we leverage the implicit link that often exists between such events and workload bursts, and we contribute: a generic approach that can make use of a given event's definition to forecast the time, magnitude and profile of the event's associated workload burst; a burst prediction accuracy metric for evaluating the efficacy of burst prediction methods; and an evaluation to showcase the generic applicability of event aware prediction across multiple domains, using real workload traces from three different domains.
机译:在工作负载预测方面的许多最新研究成果旨在应对许多Web应用程序所面临的挑战,即在工作负载波动的情况下保持QoS。其中许多方法对于周期性和长期的工作量趋势显示出良好的预测准确性,但是当面对非周期性突发的大小,轮廓和时间时,它们显示出较差的准确性。众所周知,正是这种工作量激增在诸如在线销售,产品和结果公告之类的事件期间使许多电子商务和其他基于Web的系统瘫痪。在本文中,我们利用了此类事件和工作负载突发之间通常存在的隐式链接,并且做出了贡献:一种通用方法,可以利用给定事件的定义来预测事件相关的工作负载突发的时间,大小和轮廓;用于评估突发预测方法的功效的突发预测准确性度量;通过使用来自三个不同域的实际工作负载跟踪,进行评估,以展示跨多个域的事件感知预测的一般适用性。

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