To Share, or not to Share Online Event Trend Aggregation Over Bursty Event Streams
Olga Poppe, Chuan Lei, Lei Ma, Allison Rozet, Elke A. Rundensteiner
摘要
Complex event processing (CEP) systems continuously evaluate large workloads of pattern queries under tight time constraints. Event trend aggregation queries with Kleene patterns are commonly used to retrieve summarized insights about the recent trends in event streams. Stateof-art methods are limited either due to repetitive computations or unnecessary trend construction. Existing shared approaches are guided by statically selected and hence rigid sharing plans that are often sub-optimal under stream fluctuations. In this work, we propose a novel framework
HAMLET that is the first to overcome these limitations. HAMLET introduces two key innovations.
First, HAMLET adaptively decides whether to share or not to share computations depending on the current stream properties at run time to harvest the maximum sharing benefit. Second, HAMLET is equipped with a highly efficient shared trend aggregation strategy that avoids trend construction. Our experimental study on both real and synthetic data sets demonstrates that HAMLET consistently reduces query latency by up to five orders of magnitude compared to the state-of-the-art approaches.
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引用它的顶会 Paper7
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- DecoPa: Query Decomposition for Parallel Complex Event ProcessingSamira Akili, Steven Purtzel, Matthias WeidlichSIGMOD 2024 · 被引用 8 次
- Gloria: Graph-based Sharing Optimizer for Event Trend AggregationLei Ma, Chuan Lei, Olga Poppe, Elke A. RundensteinerSIGMOD 2022 · 被引用 5 次
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