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通过反向链规则归纳挖掘与肺癌预后不良相关的基因网络。

Data mining for gene networks relevant to poor prognosis in lung cancer via backward-chaining rule induction.

作者信息

Edgerton Mary E, Fisher Douglas H, Tang Lianhong, Frey Lewis J, Chen Zhihua

机构信息

Department of Pathology and Department of Biomedical Informatics, Vanderbilt University, USA.

出版信息

Cancer Inform. 2007 Feb 10;3:93-114.

Abstract

We use Backward Chaining Rule Induction (BCRI), a novel data mining method for hypothesizing causative mechanisms, to mine lung cancer gene expression array data for mechanisms that could impact survival. Initially, a supervised learning system is used to generate a prediction model in the form of "IF THEN " style rules. Next, each antecedent (i.e. an IF condition) of a previously discovered rule becomes the outcome class for subsequent application of supervised rule induction. This step is repeated until a termination condition is satisfied. "Chains" of rules are created by working backward from an initial condition (e.g. survival status). Through this iterative process of "backward chaining," BCRI searches for rules that describe plausible gene interactions for subsequent validation. Thus, BCRI is a semi-supervised approach that constrains the search through the vast space of plausible causal mechanisms by using a top-level outcome to kick-start the process. We demonstrate the general BCRI task sequence, how to implement it, the validation process, and how BCRI-rules discovered from lung cancer microarray data can be combined with prior knowledge to generate hypotheses about functional genomics.

摘要

我们使用反向链规则归纳法(BCRI),一种用于推测致病机制的新型数据挖掘方法,来挖掘肺癌基因表达阵列数据中可能影响生存的机制。首先,使用一个监督学习系统来生成“如果<条件>那么<结果>”形式的预测模型规则。接下来,先前发现的规则的每个前提(即一个“如果”条件)成为后续监督规则归纳应用的结果类别。重复此步骤,直到满足终止条件。通过从初始条件(例如生存状态)向后推导来创建规则“链”。通过这种“反向链”的迭代过程,BCRI搜索描述合理基因相互作用的规则以供后续验证。因此,BCRI是一种半监督方法,通过使用顶级结果启动该过程,在广阔的合理因果机制空间中约束搜索。我们展示了一般的BCRI任务序列、如何实现它、验证过程,以及从肺癌微阵列数据中发现的BCRI规则如何与先验知识相结合以生成关于功能基因组学的假设。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0399/2774537/9d631bfcfe91/CIN-03-93-g006.jpg

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