大数据集合查询问题研究-米乐平台

大数据集合查询问题研究-米乐平台

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大数据集合查询问题研究--北京大学计算机系网络所杨仝报告会

发布时间:2016-05-06点击量:次
报告题目:大数据集合查询问题研究
时间:2016330日周三14:30
地点:主楼四区305
杨仝,2010-2013,就读于清华大学计算机计算机网络专业。2013-2014年到中科院计算所客座访问。2015年进入北京大学信息学院计算机系网络所,研究方向为网络与大数据。发表多篇著名国际会议论文,包括sigcommvldbicnpicdcs等。
abstract: set queries are fundamental operations in computer systems and applications. this paper addresses the fundamental problem of designing a probabilistic data structure that can quickly process set queries using a small amount of memory. we propose a shifting bloom filter (shbf) framework for representing and querying sets. we demonstrate the effectiveness of shbf using three types of popular set queries: membership, association, and multiplicity queries. the key novelty of shbf is on encoding the auxiliary information of a set element in a location offset. in contrast, prior bf based set data structures allocate additional memory to store auxiliary information. we conducted experiments using real-world network traces, and results show that shbf significantly advances the state-of-the-art on all three types of set queries.
该论文研究大数据处理中最基础的大集合查询问题,主要包括集合包含、多集合、元素出现次数三个关键问题。该论文未发表之前的网络版已经被哈佛大学计算机副系主任引用。
 
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