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Tools to enrich user experience during 'Visual Analysis'.

机译:在“可视化分析”期间丰富用户体验的工具。

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摘要

Visual Analytics is the integration of interactive visualization with analysis techniques to help answer questions, and find interesting "patterns" in a given dataset. This approach is useful in cases where human knowledge and intuition is required. Further, with the increasing size of data, an interactive visual interface can give the user control over what she wants to see. Towards this end, we develop a Visual Analytics (VA) infrastructure, rooted on techniques in machine learning and logic-based deductive reasoning. This system assists people in making sense of large, complex data sets by facilitating the generation and validation of models representing relationships in the data.;The above data is often communicated among people, and by systems as graphs and other visual forms. However, currently the degree of semantics encoded in these representations is quite limited. In order to design more expressive icons, we present a framework that uses natural language text processing and global image databases to help users identify metaphors suitable to visually encode abstract semantic concepts. While using images as forms of communication, people often like to add annotations in forms of text, arrows, etc. to make them more expressive. The process of selecting a color for the annotation can often be difficult if the background has a variation in color and texture. Our tool Magic marker helps users by suggesting appropriate colors for annotating an image. All colors in a modified CIE-Lab color-space are assigned a preference value, and users can navigate this space using an interactive interface. This interactivity also allows them to make the final choice based on personal preferences.
机译:可视化分析是交互式可视化与分析技术的集成,可帮助回答问题并在给定的数据集中找到有趣的“模式”。在需要人类知识和直觉的情况下,此方法很有用。此外,随着数据大小的增加,交互式可视界面可以使用户控制她想要看到的内容。为此,我们开发了一个基于机器学习和基于逻辑的演绎推理技术的视觉分析(VA)基础架构。该系统通过促进代表数据中关系的模型的生成和验证来帮助人们理解大型,复杂的数据集。上面的数据通常在人与人之间以及通过系统以图形和其他可视形式进行通信。但是,目前在这些表示形式中编码的语义的程度非常有限。为了设计更具表现力的图标,我们提出了一个框架,该框架使用自然语言文本处理和全局图像数据库来帮助用户识别适用于对抽象语义概念进行可视编码的隐喻。在将图像用作交流形式时,人们经常喜欢以文本,箭头等形式添加注释,以使其更具表现力。如果背景的颜色和纹理有所变化,为注释选择颜色的过程通常会很困难。我们的工具“魔术标记”通过建议适当的颜色来注释图像来帮助用户。修改后的CIE-Lab颜色空间中的所有颜色都分配有一个首选项值,用户可以使用交互式界面浏览该空间。这种互动性还使他们能够根据个人喜好做出最终选择。

著录项

  • 作者

    Garg, Supriya.;

  • 作者单位

    State University of New York at Stony Brook.;

  • 授予单位 State University of New York at Stony Brook.;
  • 学科 Computer Science.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 109 p.
  • 总页数 109
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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