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基于骨架的 Scagnostics。

Skeleton-Based Scagnostics.

出版信息

IEEE Trans Vis Comput Graph. 2018 Jan;24(1):542-552. doi: 10.1109/TVCG.2017.2744339. Epub 2017 Aug 29.

Abstract

Scatterplot matrices (SPLOMs) are widely used for exploring multidimensional data. Scatterplot diagnostics (scagnostics) approaches measure characteristics of scatterplots to automatically find potentially interesting plots, thereby making SPLOMs more scalable with the dimension count. While statistical measures such as regression lines can capture orientation, and graph-theoretic scagnostics measures can capture shape, there is no scatterplot characterization measure that uses both descriptors. Based on well-known results in shape analysis, we propose a scagnostics approach that captures both scatterplot shape and orientation using skeletons (or medial axes). Our representation can handle complex spatial distributions, helps discovery of principal trends in a multiscale way, scales visually well with the number of samples, is robust to noise, and is automatic and fast to compute. We define skeleton-based similarity metrics for the visual exploration and analysis of SPLOMs. We perform a user study to measure the human perception of scatterplot similarity and compare the outcome to our results as well as to graph-based scagnostics and other visual quality metrics. Our skeleton-based metrics outperform previously defined measures both in terms of closeness to perceptually-based similarity and computation time efficiency.

摘要

散点图矩阵(SPLOM)广泛用于探索多维数据。散点图诊断(scagnostics)方法可以测量散点图的特征,以自动找到潜在有趣的散点图,从而使 SPLOM 能够更好地适应维度计数。虽然统计度量(如回归线)可以捕捉方向,而图形理论 scagnostics 度量可以捕捉形状,但没有使用这两个描述符的散点图特征度量。基于形状分析中的知名结果,我们提出了一种使用骨架(或中轴)来捕捉散点图形状和方向的 scagnostics 方法。我们的表示可以处理复杂的空间分布,有助于以多尺度方式发现主要趋势,在视觉上很好地扩展到样本数量,对噪声具有鲁棒性,并且计算速度快且自动。我们定义了基于骨架的相似性度量,用于视觉探索和分析 SPLOM。我们进行了一项用户研究来衡量人类对散点图相似性的感知,并将结果与我们的结果以及基于图形的 scagnostics 和其他视觉质量度量进行比较。我们的基于骨架的度量在接近基于感知的相似性和计算时间效率方面都优于之前定义的度量。

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