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首页> 外文期刊>Journal of Data Analysis and Information Processing >Resizable, Rescalable and Free-Style Visualization of Hierarchical Clustering and Bioinformatics Analysis
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Resizable, Rescalable and Free-Style Visualization of Hierarchical Clustering and Bioinformatics Analysis

机译:分层聚类和生物信息学分析的可调整大小,可尊重和自由式可视化

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Graphical representation of hierarchical clustering results is of final importance in hierarchical cluster analysis of data. Unfortunately, almost all mathematical or statistical software may have a weak capability of showcasing such clustering results. Particularly, most of clustering results or trees drawn cannot be represented in a dendrogram with a resizable, rescalable and free-style fashion. With the “dynamic” drawing instead of “static” one, this research works around these weak functionalities that restrict visualization of clustering results in an arbitrary manner. It introduces an algorithmic solution to these functionalities, which adopts seamless pixel rearrangements to be able to resize and rescale dendrograms or tree diagrams. The results showed that the algorithm developed makes clustering outcome representation a really free visualization of hierarchical clustering and bioinformatics analysis. Especially, it possesses features of selectively visualizing and/or saving results in a specific size, scale and style (different views).
机译:分层聚类结果的图形表示在数据的分层集群分析中是最重要的。不幸的是,几乎所有数学或统计软件都可能具有较弱的展示这种聚类结果的能力。特别地,绘制的大多数聚类结果或树木不能用树木图表示,具有可调整的,可重定允许和自由式方式。通过“动态”绘图而不是“静态”,本研究围绕这些弱功能作品限制了群集的可视化结果以任意方式。它引入了这些功能的算法解决方案,它采用无缝像素重排,以便能够调整和重新划分的树木图或树图。结果表明,该算法开发使聚类结果表示成为分层聚类和生物信息学分析的真正自由可视化。特别是,它具有选择性地可视化和/或节省特定尺寸,比例和风格(不同视图)的结果的特征。

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