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Load Shedding in a Data Stream Manager

机译:在数据流管理器中加载脱落

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A Data Stream Manager accepts push-based inputs from a set of data sources, processes these inputs with respect to a set of standing queries, and produces outputs based on Quality-of-Service (QoS) specifications. When input rates exceed system capacity, the system will become overloaded and latency will deteriorate. Under these conditions, the system will shed load, thus degrading the answer, in order to improve the observed latency of the results. This paper examines a technique for dynamically inserting and removing drop operators into query plans as required by the current load. We examine two types of drops: the first drops a fraction of the tuples in a randomized fashion, and the second drops tuples based on the importance of their content. We address the problems of determining when load shedding is needed, where in the query plan to insert drops, and how much of the load should be shed at that point in the plan. We describe efficient solutions and present experimental evidence that they can bring the system back into the useful operating range with minimal degradation in answer quality.
机译:数据流管理器从一组数据源接受基于推送的输入,处理关于一组站立查询的这些输入,并基于服务质量(QoS)规范产生输出。当输入速率超过系统容量时,系统将变得过载,延迟会恶化。在这些条件下,系统将脱落负荷,从而降低答案,以提高观察到的结果潜伏期。本文根据当前负载的要求,检查用于动态插入和删除丢弃运算符的技术。我们检查两种类型的液滴:首先以随机方式丢弃元组,并且基于其内容的重要性。我们解决了确定需要加载脱落时确定的问题,在查询计划中插入丢弃,以及在计划中的该点应该脱落多少负载。我们描述了有效的解决方案,并提出了实验证据,他们可以将系统带回有用的操作范围,并在答案质量下进行最小的劣化。

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