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A Visual Analytics Approach for Station-Based Air Quality Data

机译:基于车站的空气质量数据的可视化分析方法

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摘要

With the deployment of multi-modality and large-scale sensor networks for monitoring air quality, we are now able to collect large and multi-dimensional spatio-temporal datasets. For these sensed data, we present a comprehensive visual analysis approach for air quality analysis. This approach integrates several visual methods, such as map-based views, calendar views, and trends views, to assist the analysis. Among those visual methods, map-based visual methods are used to display the locations of interest, and the calendar and the trends views are used to discover the linear and periodical patterns. The system also provides various interaction tools to combine the map-based visualization, trends view, calendar view and multi-dimensional view. In addition, we propose a self-adaptive calendar-based controller that can flexibly adapt the changes of data size and granularity in trends view. Such a visual analytics system would facilitate big-data analysis in real applications, especially for decision making support.
机译:通过部署用于监测空气质量的多模式和大规模传感器网络,我们现在能够收集大型和多维的时空数据集。对于这些感测到的数据,我们提出了一种用于空气质量分析的综合视觉分析方法。这种方法集成了多种视觉方法,例如基于地图的视图,日历视图和趋势视图,以协助分析。在这些视觉方法中,基于地图的视觉方法用于显示感兴趣的位置,日历和趋势视图用于发现线性和周期性模式。该系统还提供各种交互工具,以结合基于地图的可视化,趋势视图,日历视图和多维视图。此外,我们提出了一种基于日历的自适应控制器,该控制器可以灵活地适应趋势视图中数据大小和粒度的变化。这种可视化分析系统将有助于实际应用中的大数据分析,尤其是在决策支持方面。

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