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Geographically Weighted Visualization: Interactive Graphics for Scale-Varying Exploratory Analysis

机译:地理加权可视化:用于变化比例探索性分析的交互式图形

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We introduce a series of geographically weighted (GW) interactive graphics, or geowigs, and use them to explore spatial relationships at a range of scales. We visually encode information about geographic and statistical proximity and variation in novel ways through gw-choropleth maps, multivariate gw-boxplots, gw-shading and scalograms. The new graphic types reveal information about GW statistics at several scales concurrently. We impement these views in prototype software containing dynamic links and GW interactions that encourage exploration and refine them to consider directional geographies. An informal evaluation uses interactive GW techniques to consider Guerry''s dataset of ''moral statistics'', casting doubt on correlations originally proposed through visual analysis, revealing new local anomalies and suggesting multivariate geographic relationships. Few attempts at visually synthesising geography with multivariate statistical values at multiple scales have been reported. The geowigs proposed here provide informative representations of multivariate local variation, particularly when combined with interactions that coordinate views and result in gw-shading. We argue that they are widely applicable to area and point-based geographic data and provide a set of methods to support visual analysis using GW statistics through which the effects of geography can be explored at multiple scales.
机译:我们介绍了一系列地理加权(GW)交互式图形或geowigs,并使用它们来探索一系列尺度的空间关系。我们通过gw-choropleth映射,多元gw-boxplots,gw-shading和比例图以新颖的方式直观地编码有关地理和统计邻近性和变化的信息。新的图形类型可以同时显示多个规模的GW统计信息。我们将这些视图包含在包含动态链接和GW交互作用的原型软件中,以鼓励探索并完善它们以考虑方向性地理位置。非正式评估使用交互式GW技术来考虑Guerry的“道德统计”数据集,对最初通过视觉分析提出的相关性表示怀疑,揭示新的局部异常并暗示多元地理关系。很少有人尝试在视觉上合成具有多个尺度的多元统计值的地理。这里提出的地理假人提供了多元局部变化的信息表示,尤其是当与协调视图并导致gw阴影的交互结合时。我们认为,它们广泛适用于基于区域和基于点的地理数据,并提供了一组方法来支持使用GW统计信息进行可视化分析,从而可以在多个尺度上探索地理的影响。

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