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首页> 外文期刊>Journal of Bioinformatics and Computational Biology >Enhancing genomics information retrieval through dimensional analysis
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Enhancing genomics information retrieval through dimensional analysis

机译:通过维度分析增强基因组学信息检索

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We propose a novel dimensional analysis approach to employing meta information in order to find the relationships within the unstructured or semi-structured document/passages for improving genomics information retrieval performance. First, we make use of the auxiliary information as three basic dimensions, namely "temporal", "journal", and "author". The reference section is treated as a commensurable quantity of the three basic dimensions. Then, the sample space and subspaces are built up and a set of events are defined to meet the basic requirement of dimensional homogeneity to be commensurable quantities. After that, the classic graph analysis algorithm in the Web environments is applied on each dimension respectively to calculate the importance of each dimension. Finally, we integrate all the dimension networks and re-rank the outputs for evaluation. Our experimental results show the proposed approach is superior and promising.
机译:我们提出了一种使用元信息的新颖的维分析方法,以便在非结构化或半结构化的文档/通道中查找关系,从而提高基因组学信息的检索性能。首先,我们将辅助信息用作三个基本维度,即“时间”,“新闻”和“作者”。参考部分被视为三个基本维度的相当数量。然后,建立样本空间和子空间,并定义一组事件,以满足尺寸同质为可比较数量的基本要求。之后,将Web环境中的经典图形分析算法分别应用于每个维度,以计算每个维度的重要性。最后,我们整合所有维度网络,并对输出进行重新排序以进行评估。我们的实验结果表明,提出的方法是优越且有希望的。

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