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DASS-GUI: a user interface for identification and analysis of significant patterns in non-sequential data

机译:DASS-GUI:用于识别和分析非顺序数据中重要模式的用户界面

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摘要

Many large 'omics' datasets have been published and many more are expected in the near future. New analysis methods are needed for best exploitation. We have developed a graphical user interface (GUI) for easy data analysis. Our discovery of all significant substructures (DASS) approach elucidates the underlying modularity, a typical feature of complex biological data. It is related to biclustering and other data mining approaches. Importantly, DASS-GUI also allows handling of multi-sets and calculation of statistical significances. DASS-GUI contains tools for further analysis of the identified patterns: analysis of the pattern hierarchy, enrichment analysis, module validation, analysis of additional numerical data, easy handling of synonymous names, clustering, filtering and merging. Different export options allow easy usage of additional tools such as Cytoscape.
机译:已经发布了许多大型“组学”数据集,并且预计在不久的将来还会有更多。需要采用新的分析方法以实现最佳利用。我们已经开发了图形用户界面(GUI),可轻松进行数据分析。我们对所有重要子结构(DASS)方法的发现阐明了潜在的模块化,这是复杂生物学数据的典型特征。它与双重聚类和其他数据挖掘方法有关。重要的是,DASS-GUI还允许处理多组数据和统计显着性。 DASS-GUI包含用于进一步分析已识别模式的工具:模式层次分析,扩展分析,模块验证,附加数字数据分析,易于处理的同义词,聚类,过滤和合并。不同的导出选项允许轻松使用其他工具,例如Cytoscape。

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