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Visualizing Graphs and Clusters as Maps

机译:将图和集群可视化为地图

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摘要

Information visualization is essential in making sense of large datasets. Often, high-dimensional data are visualized as a collection of points in 2D space through dimensionality reduction techniques. However, these traditional methods often don't capture the underlying structural information, clustering, and neighborhoods well. GMap is a practical algorithmic framework for visualizing relational data with geographic-like maps. This approach is effective in various domains.
机译:信息可视化对于理解大型数据集至关重要。通常,通过降维技术将高维数据可视化为2D空间中的点集合。但是,这些传统方法通常无法很好地捕获基础结构信息,聚类和邻域。 GMap是一种实用的算法框架,用于通过类似地理的地图可视化关系数据。这种方法在各个领域都有效。

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