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A geovisual analytics approach for analyzing event-based geospatial anomalies within movement data

机译:一种地理视觉分析方法,用于分析运动数据中基于事件的地理空间异常

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摘要

Comparing data collected on the movement of an entity to data on the location where the entity was reported to have been can be useful in monitoring and enforcement situations. Anomalies between these datasets may be indicative of illegal activity, systematic reporting errors, data entry errors, or equipment failure. While finding obvious anomalies may be a simple task, the discovery of more subtle inconsistencies can be challenging when there is a mismatch in the temporal granularity between the datasets, or when they cover large temporal and geographic ranges. We have developed a geovisual analytics approach called Visual Exploration of Movement-Event Anomalies (VEMEA) that automatically extracts potential anomalies from the data, visually encodes these on a map, and provides interactive filtering and exploration tools to allow expert analysts to investigate and evaluate the anomalies. Using two case studies from the fisheries enforcement domain, the value of VEMEA is illustrated for both confirmatory and exploratory data analysis tasks. Field trial evaluations conducted with expert fisheries data analysts further support the benefits of the approach.
机译:将收集到的有关实体移动的数据与报告实体所处位置的数据进行比较,可能有助于监视和执行情况。这些数据集之间的异常可能表示非法活动,系统报告错误,数据输入错误或设备故障。尽管发现明显的异常可能是一项简单的任务,但是当数据集之间的时间粒度不匹配时,或者当它们涵盖较大的时间和地理范围时,发现更细微的不一致可能会非常具有挑战性。我们已经开发了一种地理视觉分析方法,称为运动事件异常可视化(VEMEA),可自动从数据中提取潜在异常,在地图上进行可视化编码,并提供交互式过滤和探索工具,以使专家分析人员能够调查和评估异常。使用来自渔业执法领域的两个案例研究,说明了VEMEA在确认性和探索性数据分析任务中的价值。与专家渔业数据分析员进行的实地试验评估进一步支持了这种方法的好处。

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