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Stroke Data Analysis through a HVN Visual Mining Platform

机译:通过HVN视觉挖掘平台进行描绘数据分析

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Today there are abounding collected data in cases of various diseases in medical sciences. Physicians can access new findings about diseases and procedures in dealing with them by probing these data. Clinical data is a collection of large and complex datasets that commonly appear in multidimensional data formats. It has been recognized as a big challenge in modern data analysis tasks. Therefore, there is an urgent need to find new and effective techniques to deal with such huge datasets. This paper presents an application of a new visual data mining platform for visual analysis of the stroke data for predicting the levels of risk to those people who have the similar characteristics of the stroke patients. The visualization platform uses a hierarchical clustering algorithm to aggregate the data and map coherent groups of data-points to the same visual elements - curved 'super-polylines' that significantly reduces the visual complexity of the visualization. On the other hand, to enable users to interactively manipulate data items (super-polylines) in the parallel coordinates geometry through the mouse rollover and clicking, we created many 'virtual nodes' along the multi-axis of the visualization based on the hierarchical structure of the value range of selected data attributes. The experimental result shows that we can easily verify research hypothesis and reach to the conclusion of research questions through human-data & human-algorithm interactions by using this visual platform with a fully transparency manner of data processing.
机译:今天,在医学科学的各种疾病的情况下都有丰富的收集数据。通过探测这些数据,医生可以访问关于处理它们的疾病和程序的新发现。临床数据是一个集合的大型和复杂数据集,其通常以多维数据格式出现。它已被认为是现代数据分析任务中的巨大挑战。因此,迫切需要寻找新的和有效的技术来处理如此庞大的数据集。本文介绍了一种新的视觉数据挖掘平台,用于对中风数据的视觉分析,以预测具有卒中患者相似特征的人的风险程度。可视化平台使用分层聚类算法将数据和地图相干的数据点映射到相同的视觉元素曲线“超级折线”,从而显着降低了可视化的视觉复杂性。另一方面,为了使用户通过鼠标翻转和单击以并行坐标几何形状交互式操作数据项(超级折线),我们根据层次结构创建了沿着可视化的多轴的“虚拟节点”所选数据属性的值范围。实验结果表明,我们可以通过使用该视觉平台具有完全透明的数据处理的可视平台,轻松验证研究假设并通过人体数据和人算法的相互作用达到研究问题的结论。

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