基于自适应四元流的实时距离查询逼近

Simon Keller, Rainer Mueller
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引用次数: 1

摘要

连续范围查询是处理高密度区域的移动客户端的常用方法。大多数现有方法都关注于基于位置的服务的范围查询大多是静态的,而范围内的移动客户端是移动的。我们将重点放在一个称为动态实时范围查询(DRRQ)的类别上,假设查询请求的客户端和查询器都是移动的。因此,查询参数的结果会不断变化。这就产生了两个需求:处理任意数量的移动节点的能力(可伸缩性)和实时交付范围查询结果的能力。针对drrq的要求,本文提出了一种高度分散的自适应四元流(AQS)解决方案。AQS近似查询结果,支持受控的实时交付和有保证的可伸缩性。虽然以前的工作通常是优化服务器上的数据结构,但我们使用AQS专注于高度分布式的单元结构,而数据结构不会自动适应不断变化的客户端分布。与常用的请求-响应方法不同,我们采用轻量级流方法,其中不需要双向通信,也不需要存储或维护查询。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Real-Time Range Query Approximation by Means of Adaptive Quad Streaming
Continuous range queries are a common means to handle mobile clients in high-density areas. Most existing approaches focus on settings in which the range queries for location-based services are mostly static whereas the mobile clients in the ranges move. We focus on a category called Dynamic Real-Time Range Queries (DRRQ) assuming that both, clients requested by the query and the inquirers, are mobile. In consequence, the query parameters results continuously change. This leads to two requirements: the ability to deal with an arbitrary high number of mobile nodes (scalability) and the real-time delivery of range query results. In this paper we present the highly decentralized solution Adaptive Quad Streaming (AQS) for the requirements of DRRQs. AQS approximates the query results in favor of a controlled real-time delivery and guaranteed scalability. While prior works commonly optimizes data structures on servers, we use AQS to focus on a highly distributed cell structure without data structures automatically adapting to changing client distributions. Instead of the commonly used request-response approach, we apply a lightweight streaming method in which no bidirectional communication and no storage or maintenance of queries are required at all.
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