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Interactive Dimensionality Reduction Through User-defined Combinations of Quality Metrics

机译:通过用户定义的质量指标组合来减少交互式维度

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Multivariate data sets including hundreds of variables are increasingly common in many application areas. Most multivariate visualization techniques are unable to display such data effectively, and a common approach is to employ dimensionality reduction prior to visualization. Most existing dimensionality reduction systems focus on preserving one or a few significant structures in data. For many analysis tasks, however, several types of structures can be of high significance and the importance of a certain structure compared to the importance of another is often task-dependent. This paper introduces a system for dimensionality reduction by combining user-defined quality metrics using weight functions to preserve as many important structures as possible. The system aims at effective visualization and exploration of structures within large multivariate data sets and provides enhancement of diverse structures by supplying a range of automatic variable orderings. Furthermore it enables a quality-guided reduction of variables through an interactive display facilitating investigation of trade-offs between loss of structure and the number of variables to keep. The generality and interactivity of the system is demonstrated through a case scenario.
机译:在许多应用领域中,包含数百个变量的多元数据集越来越普遍。大多数多变量可视化技术无法有效显示此类数据,一种常见的方法是在可视化之前进行降维。现有的大多数降维系统都致力于保留数据中的一个或几个重要结构。但是,对于许多分析任务而言,几种类型的结构可能具有很高的意义,并且与另一种结构相比,某种结构的重要性通常取决于任务。本文介绍了一种通过使用权重函数结合用户定义的质量指标来减少维度的系统,以保留尽可能多的重要结构。该系统旨在有效地可视化和探索大型多元数据集中的结构,并通过提供一系列自动变量排序功能来增强各种结构。此外,它还可以通过交互式显示实现质量指导的变量减少,从而便于调查结构损失和要保留的变量数量之间的折衷。通过案例演示了系统的通用性和交互性。

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