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A New Approach for Modelling Gene Regulatory Networks Using Fuzzy Petri Nets

机译:基于模糊Petri网的基因调控网络建模新方法

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摘要

Gene Regulatory Networks are models of genes and gene interactions at the expression level. The advent of microarray technology has challenged computer scientists to develop better algorithms for modeling the underlying regulatory relationship in between the genes. Fuzzy system has an ability to search microarray datasets for activator/repressor regulatory relationship. In this paper, we present a fuzzy reasoning model based on the Fuzzy Petri Net. The model considers the regulatory triplets by means of predicting changes in expression level of the target based on input expression level. This method eliminates possible false predictions from the classical fuzzy model thereby allowing a wider search space for inferring regulatory relationship. Through formalization of fuzzy reasoning, we propose an approach to construct a rule-based reasoning system. The experimental results show the proposed approach is feasible and acceptable to predict changes in expression level of the target gene.
机译:基因调控网络是在表达水平上基因和基因相互作用的模型。微阵列技术的出现挑战了计算机科学家,以开发更好的算法来建模基因之间潜在的调节关系。模糊系统具有搜索微阵列数据集的激活物/阻遏物调节关系的能力。在本文中,我们提出了一种基于模糊Petri网的模糊推理模型。该模型通过基于输入表达水平预测靶标表达水平的变化来考虑调节三联体。该方法消除了经典模糊模型中可能的错误预测,从而为推理调节关系提供了更大的搜索空间。通过模糊推理的形式化,我们提出了一种构建基于规则的推理系统的方法。实验结果表明,该方法是可行的,可以预测目标基因表达水平的变化。

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