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Activities, ringmaps and geovisualization of large human movement fields

机译:大型人类运动场的活动,环图和地理可视化

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摘要

The timeline or track of any individual, mobile, sentient organism, whether animal or human being, represents a fundamental building block in understanding the interactions of such entities with their environment and with each other. New technologies have emerged to capture the (x, y, t) dimension of such timelines in large volumes and at relatively low cost, with various degrees of precision and with different sampling properties. This has proved a catalyst to research on data mining and visualizing such movement fields. However, a good proportion of this research can only infer, implicitly or explicitly, the activity of the individual at any point in time. This paper in contrast focuses on a data set in which activity is known. It uses this to explore ways to visualize large movement fields of individuals, using activity as the prime referential dimension for investigating space-time patterns. Visually central to the paper is the ringmap, a representation of cyclic time and activity, that is itself quasi spatial and is directly linked to a variety of visualizations of other dimensions and representations of spatio-temporal activity. Conceptually central is the ability to explore different levels of generalization in each of the space, time and activity dimensions, and to do this in any combination of the (s, t, a) phenomena. The fundamental tenet for this approach is that activity drives movement, and logically it is the key to comprehending pattern. The paper discusses these issues, illustrates the approach with specific example visualizations and invites critiques of the progress to date.
机译:无论是动物还是人类,任何个体,移动,有感觉的生物的时间表或轨迹都是理解此类实体与其环境以及彼此之间相互作用的基本基础。已经出现了新技术,以不同的精度和不同的采样属性,以相对较低的成本大量捕获了此类时间轴的(x,y,t)维度。事实证明,这是研究数据挖掘和可视化此类运动场的催化剂。但是,这项研究的很大一部分只能隐式或显式地推断出个人在任何时间点的活动。相反,本文重点关注已知活动的数据集。它以此来探索可视化个体大运动场的方法,并将活动作为调查时空模式的主要参考维度。环形图是纸张视觉上的核心,它是周期时间和活动的一种表示形式,它本身是准空间的,并且直接与其他维度的各种可视化效果以及时空活动的表示形式直接相关。从概念上讲,核心是能够探索每个空间,时间和活动维度的不同层次的概括,并能够以(s,t,a)现象的任意组合来做到这一点。这种方法的基本原则是活动驱动运动,从逻辑上讲,这是理解模式的关键。本文讨论了这些问题,并通过特定的示例可视化方式说明了该方法,并提出了对迄今为止进展的批评。

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