MimoSketch: A Framework to Mine Item Frequency on Multiple Nodes with Sketches
Yuchen Xu, Wenfei Wu, Bohan Zhao, Tong Yang, Yikai Zhao
摘要
We abstract a MIMO scenario in distributed data stream mining, where a stream of multiple items is mined by multiple nodes. We design a framework named MimoSketch for the MIMO-specific scenario, which improves the fundamental mining task of item frequency estimation. MimoSketch consists of an algorithm design and a policy to schedule items to nodes. MimoSketch's algorithm applies random counting to preserve a mathematically proven unbiasedness property, which makes it friendly to the aggregate query on multiple nodes; its memory layout is dynamically adaptive to the runtime item size distribution, which maximizes the estimation accuracy by storing more items. MimoSketch's scheduling policy balances items among nodes, avoiding nodes being overloaded or underloaded, which improves the overall mining accuracy. Our prototype and evaluation show that our algorithm can improve the item frequency estimation accuracy by an order of magnitude compared with the state-of-the-art solutions, and the scheduling policy further promotes the performance in MIMO scenarios.
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- OmniMon: Re-architecting Network Telemetry with Resource Efficiency and Full AccuracyQun Huang, Haifeng Sun, Patrick P. C. Lee, Wei Bai 等SIGCOMM 2020 · 被引用 109 次
- WavingSketch: An Unbiased and Generic Sketch for Finding Top-k Items in Data StreamsJizhou Li, Zikun Li, Yifei Xu, Shiqi Jiang 等KDD 2020 · 被引用 96 次
- On-Off Sketch: A Fast and Accurate Sketch on PersistenceYinda Zhang, Jinyang Li, Yutian Lei, Tong Yang 等VLDB 2021 · 被引用 63 次
- Stingy Sketch: A Sketch Framework for Accurate and Fast Frequency EstimationHaoyu Li, Qizhi Chen, Yixin Zhang, Tong Yang 等VLDB 2022 · 被引用 54 次
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