论文标题

TBSSVIS:时间盲源分离的视觉分析

TBSSvis: Visual Analytics for Temporal Blind Source Separation

论文作者

Piccolotto, Nikolaus, Bögl, Markus, Gschwandtner, Theresia, Muehlmann, Christoph, Nordhausen, Klaus, Filzmoser, Peter, Miksch, Silvia

论文摘要

时间盲源分离(TBSS)用于从嘈杂的时间多元数据(例如心电图)中获得真实的基础过程。 TBSS与主组件分析(PCA)具有相似之处,因为它将输入数据分为单变量组件,并且适用于来自各个领域的合适数据集,例如医学,金融或土木工程。尽管TBSS广泛适用,但当前工具中所涉及的任务并不得到很好的支持,这些工具仅提供基于文本的交互和单个静态图像。分析师在分析和比较获得的结果方面受到限制,这些结果包括矩阵和时间序列集之类的不同数据。此外,参数设置对分离性能有很大的影响,但是由于工具不当,分析师目前没有考虑整个参数空间。我们建议通过应用视觉分析(VA)原理解决这些问题。我们的主要贡献是针对TBSS的设计研究,到目前为止,可视化界尚未探索。我们在以用户为中心的设计过程中开发了一个任务抽象和可视化设计。我们的次要贡献是特定于任务的组装,以备受公认的可视化技术和算法来获得TBSS过程的见解。我们提出了TBSSVIS,这是一个基于网络的VA原型,我们在对五位TBSS专家的两次访谈中进行了广泛的评估。这些访谈的反馈和观察结果表明,TBSSVIS支持了交互式可视化的实际工作流程和组合,从而有助于分析TBSS结果所涉及的任务。

Temporal Blind Source Separation (TBSS) is used to obtain the true underlying processes from noisy temporal multivariate data, such as electrocardiograms. TBSS has similarities to Principal Component Analysis (PCA) as it separates the input data into univariate components and is applicable to suitable datasets from various domains, such as medicine, finance, or civil engineering. Despite TBSS's broad applicability, the involved tasks are not well supported in current tools, which offer only text-based interactions and single static images. Analysts are limited in analyzing and comparing obtained results, which consist of diverse data such as matrices and sets of time series. Additionally, parameter settings have a big impact on separation performance, but as a consequence of improper tooling, analysts currently do not consider the whole parameter space. We propose to solve these problems by applying visual analytics (VA) principles. Our primary contribution is a design study for TBSS, which so far has not been explored by the visualization community. We developed a task abstraction and visualization design in a user-centered design process. Task-specific assembling of well-established visualization techniques and algorithms to gain insights in the TBSS processes is our secondary contribution. We present TBSSvis, an interactive web-based VA prototype, which we evaluated extensively in two interviews with five TBSS experts. Feedback and observations from these interviews show that TBSSvis supports the actual workflow and combination of interactive visualizations that facilitate the tasks involved in analyzing TBSS results.

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