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首页> 外文期刊>ISPRS International Journal of Geo-Information >An Efficient Graph-Based Spatio-Temporal Indexing Method for Task-Oriented Multi-Modal Scene Data Organization
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An Efficient Graph-Based Spatio-Temporal Indexing Method for Task-Oriented Multi-Modal Scene Data Organization

机译:面向任务的多模态场景数据组织的基于图的高效时空索引方法

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Task-oriented scene data in big data and cloud environments of a smart city that must be time-critically processed are dynamic and associated with increasing complexities and heterogeneities. Existing hybrid tree-based external indexing methods are input/output (I/O)-intensive, query schema-fixed, and difficult when representing the complex relationships of real-time multi-modal scene data; specifically, queries are limited to a certain spatio-temporal range or a small number of selected attributes. This paper proposes a new spatio-temporal indexing method for task-oriented multi-modal scene data organization. First, a hybrid spatio-temporal index architecture is proposed based on the analysis of the characteristics of scene data and the driving forces behind the scene tasks. Second, a graph-based spatio-temporal relation indexing approach, named the spatio-temporal relation graph (STR-graph), is constructed for this architecture. The global graph-based index, internal and external operation mechanisms, and optimization strategy of the STR-graph index are introduced in detail. Finally, index efficiency comparison experiments are conducted, and the results show that the STR-graph performs excellently in index generation and can efficiently address the diverse requirements of different visualization tasks for data scheduling; specifically, the STR-graph is more efficient when addressing complex and uncertain spatio-temporal relation queries.
机译:在智能城市的大数据和云环境中,必须按时处理的面向任务的场景数据是动态的,并且与日益增加的复杂性和异构性相关联。现有的基于混合树的外部索引方法是输入/输出(I / O)密集型,查询模式固定的,并且在表示实时多模式场景数据的复杂关系时比较困难;具体来说,查询仅限于特定的时空范围或少量的选定属性。提出了一种面向任务的多模式场景数据组织的时空索引方法。首先,在分析场景数据特征和场景任务背后的驱动力的基础上,提出了一种时空混合索引架构。其次,为此架构构造了一种基于图的时空关系索引方法,称为时空关系图(STR-graph)。详细介绍了基于全局图的索引,内部和外部操作机制以及STR-graph索引的优化策略。最后,进行了索引效率比较实验,结果表明,STR-graph在索引生成方面表现出色,可以有效地满足不同可视化任务对数据调度的各种需求。特别是,STR-graph在处理复杂且不确定的时空关系查询时效率更高。

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