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A tool for filtering information in complex systems

机译:在复杂系统中过滤信息的工具

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摘要

We introduce a technique to filter out complex data sets by extracting a subgraph of representative links. Such a filtering can be tuned up to any desired level by controlling the genus of the resulting graph. We show that this technique is especially suitable for correlation-based graphs, giving filtered graphs that preserve the hierarchical organization of the minimum spanning tree but containing a larger amount of information in their internal structure. In particular in the case of planar filtered graphs (genus equal to 0), triangular loops and four-element cliques are formed. The application of this filtering procedure to 100 stocks in the U.S. equity markets shows that such loops and cliques have important and significant relationships with the market structure and properties.
机译:我们引入一种通过提取代表链接的子图来过滤出复杂数据集的技术。通过控制结果图的属类,可以将此类过滤调整到任何所需的级别。我们证明了该技术特别适用于基于相关的图,它给出了过滤后的图,该图保留了最小生成树的层次结构,但在其内部结构中包含了大量信息。特别是在平面滤波图(类等于0)的情况下,会形成三角形环和四元素集团。对美国股票市场中的100只股票应用此过滤程序显示,这种循环和集团与市场结构和属性具有重要的关系。

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