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Bicomponent Trend Maps: A Multivariate Approach to Visualizing Geographic Time Series

机译:双组分趋势图:一种可视化地理时间序列的多元方法

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The most straightforward approaches to temporal mapping cannot effectively illustrate all potentially significant aspects of spatio-temporal patterns across many regions and times. This paper introduces an alternative approach, bicomponent trend mapping, which employs a combination of principal component analysis and bivariate choropleth mapping to illustrate two distinct dimensions of long-term trend variations. The approach also employs a bicomponent trend matrix, a graphic that illustrates an array of typical trend types corresponding to different combinations of scores on two principal components. This matrix is useful not only as a legend for bicomponent trend maps but also as a general means of visualizing principal components. To demonstrate and assess the new approach, the paper focuses on the task of illustrating population trends from 1950 to 2000 in census tracts throughout major U.S. urban cores. In a single static display, bicomponent trend mapping is not able to depict as wide a variety of trend properties as some other multivariate mapping approaches, but it can make relationships among trend classes easier to interpret, and it offers some unique flexibility in classification that could be particularly useful in an interactive data exploration environment.
机译:时间映射的最直接方法无法有效地说明跨许多区域和时间的时空模式的所有潜在重要方面。本文介绍了另一种方法,即双成分趋势映射,该方法将主成分分析和双变量Choroppleth映射相结合来说明长期趋势变化的两个不同维度。该方法还采用了双组分趋势矩阵,该图形说明了与两个主要组分的分数的不同组合相对应的典型趋势类型的数组。该矩阵不仅可用作双分量趋势图的图例,而且还可用作可视化主分量的一般方法。为了演示和评估这种新方法,本文重点研究了在美国主要城市核心地区进行人口普查的1950年至2000年人口趋势的任务。在单个静态显示中,双分量趋势映射无法像其他多元映射方法一样描绘各种趋势属性,但是它可以使趋势类别之间的关系更易于解释,并且在分类方面提供了一些独特的灵活性,可以在交互式数据浏览环境中特别有用。

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