首页> 外文会议>Pacific Symposium on Biocomputing 2004; Jan 6-10, 2004; Hawaii, USA >INFERRING GENE REGULATORY NETWORKS FROM RAW DATA - A MOLECULAR EPISTEMICS APPROACH
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INFERRING GENE REGULATORY NETWORKS FROM RAW DATA - A MOLECULAR EPISTEMICS APPROACH

机译:从原始数据推断基因调控网络-一种分子流行病学方法

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Biopathways play an important role in the functional understanding and interpretation of gene function. In this paper we present the results of an iterative algorithm for automatically generating gene regulatory networks from raw data. The algorithm is based on an epistemics approach of conjecture (hypothesis formation) and refutation (hypothesis testing). These operations are performed on a matrix representation of the gene network. Our approach also provides a way of incorporating external biological knowledge into the model. This is done by pre-assigning portions of the matrix - which represent previously known background knowledge. This background knowledge helps make the results closer to a human's rendition of such networks. We illustrate our approach by having the computer replicate a gene regulatory network generated by human scientists at an academic lab.
机译:生物途径在基因功能的功能理解和解释中起着重要作用。在本文中,我们介绍了一种从原始数据自动生成基因调控网络的迭代算法的结果。该算法基于猜想(假设形成)和反驳(假设检验)的认知方法。这些操作在基因网络的矩阵表示上执行。我们的方法还提供了一种将外部生物学知识整合到模型中的方法。这是通过预先分配代表先前已知背景知识的矩阵部分来完成的。这些背景知识有助于使结果更接近人类对此类网络的再现。我们通过让计算机复制由人类科学家在学术实验室产生的基因调控网络来说明我们的方法。

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