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Knowledge Generation Model for Visual Analytics

机译:视觉分析的知识生成模型

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摘要

Visual analytics enables us to analyze huge information spaces in order to support complex decision making and data exploration. Humans play a central role in generating knowledge from the snippets of evidence emerging from visual data analysis. Although prior research provides frameworks that generalize this process, their scope is often narrowly focused so they do not encompass different perspectives at different levels. This paper proposes a knowledge generation model for visual analytics that ties together these diverse frameworks, yet retains previously developed models (e.g., KDD process) to describe individual segments of the overall visual analytic processes. To test its utility, a real world visual analytics system is compared against the model, demonstrating that the knowledge generation process model provides a useful guideline when developing and evaluating such systems. The model is used to effectively compare different data analysis systems. Furthermore, the model provides a common language and description of visual analytic processes, which can be used for communication between researchers. At the end, our model reflects areas of research that future researchers can embark on.
机译:视觉分析使我们能够分析巨大的信息空间,以支持复杂的决策和数据探索。人类在从视觉数据分析产生的证据片段中产生知识方面发挥着核心作用。尽管先前的研究提供了概括该过程的框架,但它们的范围通常狭窄地集中在各个方面,因此它们在不同级别上没有涵盖不同的观点。本文提出了一种视觉分析的知识生成模型,该模型将这些不同的框架联系在一起,但保留了先前开发的模型(例如KDD流程)来描述整个视觉分析过程的各个部分。为了测试其效用,将真实世界的视觉分析系统与该模型进行了比较,证明了知识生成过程模型在开发和评估此类系统时提供了有用的指导。该模型用于有效地比较不同的数据分析系统。此外,该模型提供了视觉分析过程的通用语言和描述,可用于研究人员之间的交流。最后,我们的模型反映了未来研究人员可以从事的研究领域。

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