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Ordered small multiple treemaps for visualizing time-varying hierarchical pesticide residue data

机译:有序的小多个树形图,用于可视化随时间变化的分层农药残留数据

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摘要

Small multiples can visually enforce comparisons of changes or differences among objects, revealing potential patterns by providing different views. According to the analyzing requirements in food safety fields and characteristics of pesticide residue detection data, in this paper, we propose a novel visualization approach to explore and analyze the time-varying hierarchical data, which is called ordered small multiple treemaps (OSMT). Inspired by the thought of querying an array by rows or columns, OSMT makes it possible to locate a specific node in the treemap layout by using a unique location 2-tuple and keep a relative stable order of nodes in the layout while we detecting temporal patterns. This algorithm enables the visual representation of the node values varying with time, preserving the hierarchical relationships among nodes in the meanwhile. Based on some interaction techniques (filtering, selecting, highlighting and zooming, etc.), OSMT can help users find some specific changes more easily and thus make corresponding decisions with more efficiency. Besides, we also propose a new metric called TVA (Ability of tracking time-varying data in treemap) with a purpose of evaluating different kinds of treemap layout algorithms from the aspect of the difficulty level for tracking time-varying nodes in the overall layout. Finally, our technique's applicability is demonstrated on the pesticide residues detection results dataset in this study.
机译:小倍数可以直观地强制比较对象之间的变化或差异,通过提供不同的视图来揭示潜在的模式。根据食品安全领域的分析要求和农药残留检测数据的特点,提出一种新颖的可视化方法来探索和分析时变的分层数据,称为有序小多重树图(OSMT)。受到通过按行或按列查询数组的想法的启发,OSMT使得可以通过使用唯一的位置2元组在树图布局中定位特定节点,并在我们检测时间模式的同时保持布局中节点的相对稳定顺序。该算法使节点值的可视化表示随时间变化,同时保留了节点之间的层次关系。基于某些交互技术(过滤,选择,突出显示和缩放等),OSMT可以帮助用户更轻松地找到一些特定的更改,从而更有效地做出相应的决策。此外,我们还提出了一种新的度量标准,称为TVA(在树图中跟踪时变数据的能力),目的是从跟踪整体布局中时变节点的难度级别的角度评估不同种类的树图布局算法。最后,在这项研究中的农药残留检测结果数据集上证明了我们的技术的适用性。

著录项

  • 来源
    《The Visual Computer》 |2017年第8期|1073-1084|共12页
  • 作者

    Chen Yi; Du Xiaomin; Yuan Xiaoru;

  • 作者单位

    Beijing Technol & Business Univ, Beijing Key Lab Big Data Technol Food Safety, Beijing, Peoples R China;

    Beijing Technol & Business Univ, Beijing Key Lab Big Data Technol Food Safety, Beijing, Peoples R China;

    Peking Univ, Minist Educ, Key Lab Machine Percept, Beijing, Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Information visualization; Time-varying hierarchical data; Treemap; Metrics; Pesticide residue;

    机译:信息可视化;时变层次数据;树状图;度量;农药残留;

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