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Motion Data Index Structure: an Efficient Indexing for Spatio-Temporal Data of Moving Objects

机译:运动数据索引结构:有效的运动对象时空数据索引

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The spatial and temporal characteristics of the data used to describe moving objects' movement make them large in quantity and complex to manage. Different queries to motion data ask for various organization methods. According to the needs of most applications, general motion model is used to represent the translation and rotation of moving objects during a period of time. Because the motion data are multidimensional in space and time dimension, 2~n tree is employed to construct the main part of the index to these data. Meanwhile other kinds of index algorithms should be added to the index structure so as to meet the needs of queries other than state queries only related to a specific epoch. Thus, motion data index structure (MDIS) is constructed as a multi-entry multi-level index structure for the organization of motion data. Each index within MDIS may work alone or cooperate with each other to process different kinds of queries. The extra space needed for MDIS is only about 5%~6% of the total storage space of motion data themselves. And the respond time to each query is much decreased and acceptable to most applications dealing with moving objects.
机译:用于描述运动物体运动的数据的时空特征使其数量庞大且管理复杂。对运动数据的不同查询要求各种组织方法。根据大多数应用的需求,一般运动模型用于表示一段时间内运动对象的平移和旋转。由于运动数据在空间和时间维度上是多维的,因此采用2〜n树来构造这些数据索引的主要部分。同时,应该将其他种类的索引算法添加到索引结构中,以满足除仅与特定时期相关的状态查询之外的查询的需求。因此,运动数据索引结构(MDIS)被构造为用于组织运动数据的多条目多级索引结构。 MDIS中的每个索引可以单独工作或相互配合以处理不同种类的查询。 MDIS所需的额外空间仅为运动数据本身总存储空间的5%〜6%。而且,每个查询的响应时间大大减少,并且大多数处理移动对象的应用程序都可以接受。

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