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首页> 外文期刊>LIPIcs : Leibniz International Proceedings in Informatics >Essential Simplices in Persistent Homology and Subtle Admixture Detection
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Essential Simplices in Persistent Homology and Subtle Admixture Detection

机译:持久同源性和精细混合物检测的基本简化

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摘要

We introduce a robust mathematical definition of the notion of essential elements in a basis of the homology space and prove that these elements are unique. Next we give a novel visualization of the essential elements of the basis of the homology space through a rainfall-like plot (RFL). This plot is data-centric, i.e., is associated with the individual samples of the data, as opposed to the structure-centric barcodes of persistent homology. The proof-of-concept was tested on data generated by SimRA that simulates different admixture scenarios. We show that the barcode analysis can be used not just to detect the presence of admixture but also estimate the number of admixed populations. We also demonstrate that data-centric RFL plots have the potential to further disentangle the common history into admixture events and relative timing of the events, even in very complex scenarios.
机译:我们在同源性空间的基础上引入了对基本元素概念的强大数学定义,并证明了这些元素是唯一的。接下来,我们通过类似降雨的图(RFL)给出了同源空间基础的基本要素的新颖可视化。该图以数据为中心,即与数据的各个样本相关联,与持久同源性的以结构为中心的条形码相反。概念验证已通过SimRA生成的数据进行了测试,该数据可模拟不同的混合方案。我们表明,条形码分析不仅可以用于检测混合物的存在,而且可以估计混合物的数量。我们还证明,即使在非常复杂的情况下,以数据为中心的RFL图也有可能进一步将共同历史分解为混合事件和事件的相对时间。

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