一种分层数据可视化算法:自适应Sunburst算法

Gong Li-wei, Chen Yi, Zhang Xin-Yue, Sun Yue-Hong
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引用次数: 3

摘要

Sunburst是一种用径向扇区填充的分层数据可视化方法,针对Sunburst扇区排列无序、空间利用率低的问题,提出了自适应Sunburst算法(SASA)。节点根据其属性值分配区域,并根据区域大小从小到大制作相同父节点的兄弟节点,调整扇区的位置。同时,SASA根据每层节点总数动态确定该环的宽度,遵循“多节点宽环,少节点薄环”的原则,优化Sunburst中嵌套环的大小,提高空间利用率。最后,提出了用户定位效率(ULE)和弧比(AR)来检验SASA算法,实验结果表明,该算法确实可以优化扇区布局,提高空间利用率。
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A Hierarchical Data Visualization Algorithm: Self-Adapting Sunburst Algorithm
Sunburst is a hierarchical data visualization method which is filled by radial sectors, for the problem that sectors of Sunburst are placed in disorder and space utilization rate is low, Self-Adapting Sunburst Algorithm (SASA) has been proposed. Nodes are allocated their areas according to their attribute value, and siblings of same parents are made in ascending order according to the size of areas, adjusting the position of sectors. Meanwhile, based on total number of nodes in each layer, SASA dynamically determines width of this circular ring, following the principle "more nodes wider circular ring and fewer nodes thinner circular ring", and in this way, it can optimize the size of nested ring in Sunburst and improve space utilization rate. Finally, User Locating Efficiency (ULE) and Arc Ratio (AR) is put forward to examine SASA, Experimental results show that this algorithm can indeed optimize sector's arrangement, as well as make space utilization better.
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