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Techniques for Precision-Based Visual Analysis of Projected Data

机译:基于精度的投影数据可视化分析技术

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The analysis of high-dimensional data is an important, yet inherently difficult problem. Projection techniques such as PCA, MDS, and SOM can be used to map high-dimensional data to 2D display space. However, projections typically incur a loss in information. Often uncertainty exists regarding the precision of the projection as compared with its original data characteristics. While the output quality of these projection techniques can be discussed in terms of algorithmic assessment, visualization is often helpful for better understanding the results.rnWe address the visual assessment of projection precision by an approach integrating an appropriately designed projection precision measure directly into the projection visualization. To this end, a flexible projection precision measure is defined that allows the user to balance the degree of locality at which the measure is evaluated. Several visual mappings are designed for integrating the precision measure into the projection visualization at various levels of abstraction. The techniques are implemented in a fully interactive system which is practically applied on several data sets. We demonstrate the usefulness of the approach for visual analysis of classified and clustered high-dimensional data sets. We thereby show how our novel interactive precision quality visualization system helps to examine preservation of closeness of the data in original space into the low-dimensional space.
机译:高维数据的分析是一个重要但固有的难题。诸如PCA,MDS和SOM之类的投影技术可用于将高维数据映射到2D显示空间。但是,预测通常会导致信息丢失。与投影的原始数据特征相比,投影的精度通常存在不确定性。尽管可以通过算法评估来讨论这些投影技术的输出质量,但可视化通常有助于更好地理解结果。rn我们通过将适当设计的投影精度度量直接集成到投影可视化中的方法来解决投影精度的视觉评估。 。为此,定义了一种灵活的投影精度度量,该度量允许用户平衡评估该度量的局部程度。设计了几种视觉映射,用于将精度度量集成到各个抽象级别的投影可视化中。该技术在完全交互式的系统中实施,该系统实际上应用于多个数据集。我们证明了该方法对分类和群集的高维数据集进行可视化分析的有用性。因此,我们展示了我们新颖的交互式精度质量可视化系统如何帮助检查原始空间到低维空间中数据的紧密性。

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