XmdvTool: integrating multiple methods for visualizing multivariate data

M. Ward
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引用次数: 495

Abstract

Much of the attention in visualization research has focussed on data rooted in physical phenomena, which is generally limited to three or four dimensions. However, many sources of data do not share this dimensional restriction. A critical problem in the analysis of such data is providing researchers with tools to gain insights into characteristics of the data, such as anomalies and patterns. Several visualization methods have been developed to address this problem, and each has its strengths and weaknesses. This paper describes a system named XmdvTool which integrates several of the most common methods for projecting multivariate data onto a two-dimensional screen. This integration allows users to explore their data in a variety of formats with ease. A view enhancement mechanism called an N-dimensional brush is also described. The brush allows users to gain insights into spatial relationships over N dimensions by highlighting data which falls within a user-specified subspace.<>
XmdvTool:集成多种方法来可视化多变量数据
可视化研究的大部分注意力集中在植根于物理现象的数据上,这些数据通常局限于三维或四维。但是,许多数据源没有这种维度限制。分析此类数据的一个关键问题是为研究人员提供工具,以深入了解数据的特征,例如异常和模式。已经开发了几种可视化方法来解决这个问题,每种方法都有其优点和缺点。本文描述了一个名为XmdvTool的系统,该系统集成了几种最常用的将多元数据投影到二维屏幕上的方法。这种集成允许用户轻松地以各种格式探索他们的数据。还描述了一种称为n维刷的视图增强机制。刷允许用户通过突出显示属于用户指定子空间的数据来深入了解N维的空间关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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