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ST-hash: An efficient spatiotemporal index for massive trajectory data in a NoSQL database

机译:ST哈希:NoSQL数据库中海量轨迹数据的有效时空索引

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With the development of positioning technologies and the increasing popularity of location-aware devices, large volumes of trajectory data have been accumulated. However, efficient management and access to massive trajectory data remains a big challenge. The emerging NoSQL database has provided a promising solution for this challenge. But most of the current NoSQL databases do not support direct spatiotemporal indexing of massive trajectory data. This paper presents a novel trajectory indexing method to accelerate time-consuming spatiotemporal queries of massive trajectory data. This method extends the widely-used GeoHash algorithm to satisfy the requirements for both high-frequent updates and common trajectory query operations, e.g. exact point query and spatiotemporal range query. This ST-Hash index was implemented and evaluated in a NoSQL database (MongoDB). Experimental results show that this proposed ST-Hash index can greatly improve the query performance and exhibits robust performance scalability over different input data sizes.
机译:随着定位技术的发展和位置感知设备的日益普及,已经积累了大量的轨迹数据。然而,有效的管理和对海量轨迹数据的访问仍然是一个巨大的挑战。新兴的NoSQL数据库为这一挑战提供了有希望的解决方案。但是,当前的大多数NoSQL数据库都不支持对大量轨迹数据进行直接的时空索引。本文提出了一种新颖的轨迹索引方法,以加速耗时的海量轨迹数据的时空查询。该方法扩展了广泛使用的GeoHash算法,以满足高频更新和常见轨迹查询操作(例如精确点查询和时空范围查询。该ST-Hash索引是在NoSQL数据库(MongoDB)中实现和评估的。实验结果表明,提出的ST-Hash索引可以极大地提高查询性能,并在不同的输入数据大小上表现出强大的性能可伸缩性。

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