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Frequent Episode Mining to Support Pattern Analysis in Developmental Biology

机译:频繁的剧集挖掘在发育生物学中支持模式分析

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We introduce a new method for the analysis of heterochrony in developmental biology. Our method is based on methods used in data mining and intelligent data analysis and applied in, e.g., shopping basket analysis, alarm network analysis and click stream analysis. We have transferred, so called, frequent episode mining to operate in the analysis of developmental timing of different (model) species. This is accomplished by extracting small temporal patterns, i.e. episodes, and subsequently comparing the species based on extracted patterns. The method allows relating the development of different species based on different types of data, In examples we show that the method can reconstruct a phylogenetic tree based on gene-expression data as well as using strict morphological characters. The method can deal with incomplete and/or missing data. Moreover, the method is flexible and not restricted to one particular type of data: i.e., our method allows comparison of species and genes as well as morphological characters based on developmental patterns by simply transposing the dataset accordingly. We illustrate a range of applications.
机译:我们介绍了一种新的发育生物学分析的方法。我们的方法是基于数据挖掘和智能数据分析中使用的方法,以及应用于,例如,购物篮分析,报警网络分析,单击流分析。我们已经转移了,所谓的频繁剧集,在分析不同(模型)物种的发育时间分析中。这是通过提取小时间模式,即剧集,并随后基于提取的图案进行比较物种来实现的。该方法允许基于不同类型的数据来涉及不同物种的发展,在实施例中,我们表明该方法可以基于基因表达数据和使用严格的形态特征来重建系统发育树。该方法可以处理不完整和/或缺少数据。此外,该方法是灵活的,不限于一种特定类型的数据:即,我们的方法通过简单地通过相应地转换数据集来比较物种和基因以及基于发展模式的形态特征。我们说明了一系列应用程序。

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