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Indexing of Network Constrained Moving Objects

机译:网络约束移动对象的索引

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摘要

With the proliferation of mobile computing, the ability to index efficiently the movements of mobile objects becomes important. Objects are typically seen as moving in two-dimensional (x,y) space, which means that their movements across time may be embedded in the three-dimensional (x,y,t) space. Further, the movements are typically represented as trajectories, sequences of connected line segments. In certain cases, movement is restricted, and specifically in this paper, we aim at exploiting that movements occur in transportation networks to reduce the dimensionality of the data. Briefly, the idea is to reduce movements to occur in one spatial dimension. As a consequence, the movement data becomes two-dimensional (x,t). The advantages of considering such lower-dimensional trajectories are the reduced overall size of the data and the lower-dimensional indexing challenge. Since off-the-shelf database management systems typically do not offer higher-dimensional indexing, this reduction in dimensionality allows us to use such DBMSes to store and index trajectories. Moreover, we argue that, given the right circumstances, indexing these dimensionality-reduced trajectories can be more efficient than using a three-dimensional index. This hypothesis is verified by an experimental study that incorporates trajectories stemming from real and synthetic road networks.
机译:随着移动计算的迅速发展,有效地索引移动对象的运动的能力变得很重要。通常将对象视为在二维(x,y)空间中移动,这意味着它们在时间上的移动可以嵌入到三维(x,y,t)空间中。此外,运动通常表示为轨迹,连接的线段的序列。在某些情况下,移动受到限制,特别是在本文中,我们旨在利用运输网络中发生的移动来减少数据的维数。简而言之,该想法是减少在一个空间维度上发生的运动。结果,运动数据变为二维(x,t)。考虑这种低维轨迹的优点是减少了数据的整体大小和降低了维索引的难度。由于现成的数据库管理系统通常不提供更高维的索引,因此维数的减少使我们可以使用此类DBMS来存储和索引轨迹。此外,我们认为,在适当的情况下,索引这些降维的轨迹可能比使用三维索引更有效。这一假设已通过一项实验研究得到了验证,该研究结合了来自真实和合成道路网络的轨迹。

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