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The visual assessment of tendency (VAT) technique, for visually finding the number of meaningful clusters in data, developed by J. C. Bezdek, R. J. Hathaway and J. M. Huband, is very useful, but there is room for improvements. Instead of displaying the ordered dissimilarity matrix (ODM) as a 2D gray-level image for human interpretation as is done by VAT, we trace the changes in dissimilarities along the diagonal of the ODM. This changes the 2D data structure (matrices) into 1D arrays, displayed as what we call the tendency curves, which enables one to concentrate only on one variable, namely the height. One of these curves, called the d-curve, clearly shows the existence of cluster structure as patterns in peaks and valleys, which can be caught not only by human eyes but also by the computer. Our numerical experiments showed that the computer can catch cluster structures from the d-curve even in some cases where the human eyes see no structure from the visual outputs of VAT. And success on all numerical experiments was obtained us- ing the same (fixed) set of program parameter values.
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篇名 VATdt: Visual Assessment of Cluster Tendency Using Diagonal Tracing
来源期刊 美国计算数学期刊(英文) 学科 医学
关键词 CLUSTERING DISSIMILARITY Measures Data VISUALIZATION CLUSTERING TENDENCY
年,卷(期) 2012,(1) 所属期刊栏目
研究方向 页码范围 27-41
页数 15页 分类号 R73
字数 语种
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研究主题发展历程
节点文献
CLUSTERING
DISSIMILARITY
Measures
Data
VISUALIZATION
CLUSTERING
TENDENCY
研究起点
研究来源
研究分支
研究去脉
引文网络交叉学科
相关学者/机构
期刊影响力
美国计算数学期刊(英文)
季刊
2161-1203
武汉市江夏区汤逊湖北路38号光谷总部空间
出版文献量(篇)
355
总下载数(次)
1
总被引数(次)
0
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