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GT-Miner: a graph-theoretic data miner, viewer, and model processor

机译:GT-Miner:图论数据挖掘器,查看器和模型处理器

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摘要

Inexpensive computational power combined with high-throughput experimental platforms has created a wealth of biological information requiring analytical tools and techniques for interpretation. Graph-theoretic concepts and tools have provided an important foundation for information visualization, integration, and analysis of datasets, but they have often been relegated to background analysis tasks. GT-Miner is designed for visual data analysis and mining operations, interacts with other software, including databases, and works with diverse data types. It facilitates a discovery-oriented approach to data mining wherein exploration of alterations of the data and variations of the visualization is encouraged. The user is presented with a basic iterative process, consisting of loading, visualizing, transforming, and then storing the resultant information. Complex analyses are built-up through repeated iterations and user interactions. The iterative process is optimized by automatic layout following transformations and by maintaining a current selection set of interest for elements modified by the transformations. Multiple visualizations are supported including hierarchical, spring, and force-directed self-organizing layouts. Graphs can be transformed with an extensible set of algorithms or manually with an integral visual editor. GT-Miner is intended to allow easier access to visual data mining for the non-expert.
机译:廉价的计算能力与高通量实验平台相结合,创造了大量生物信息,这些信息需要分析工具和解释技术。图论的概念和工具为信息可视化,集成和数据集分析提供了重要的基础,但它们通常被委托从事后台分析任务。 GT-Miner设计用于可视化数据分析和挖掘操作,可与包括数据库在内的其他软件进行交互,并可以处理多种数据类型。它促进了面向发现的数据挖掘方法,其中鼓励探索数据的更改和可视化的变化。向用户展示了一个基本的迭代过程,包括加载,可视化,转换然后存储结果信息。通过重复的迭代和用户交互来建立复杂的分析。通过在变换之后自动布局并通过为变换所修改的元素保持当前感兴趣的当前选择集来优化迭代过程。支持多种可视化,包括分层,弹簧和力导向的自组织布局。图形可以使用一组可扩展的算法进行转换,也可以使用集成的可视化编辑器进行手动转换。 GT-Miner旨在使非专家可以更轻松地访问可视数据挖掘。

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