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Inferring method of the gene regulatory networks using neural networks adopting a majority rule

机译:利用多数规则的神经网络推断基因调控网络的方法

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The regulatory interaction between gene expressions is considered as a universal mechanism in biological systems and such a mechanism of interactions has been modeled as gene regulatory networks. The gene regulatory networks show a correlation among gene expressions. A lot of methods to describe the gene regulatory network have been developed. Especially, owing to the technologies such as DNA microarrays that provide a number of time course data of gene expressions, the gene regulatory network models described by differential equations have been proposed and developed in recently. To infer such a gene regulatory network using differential equations, it is necessary to approximate many unknown functions from the time course data of gene expressions that is obtained experimentally. One of the successful inference methods of the gene regulatory networks is the method using the neural network. In this study, to improve a performance of the inference, we propose the inferring method of the gene regulatory networks using neural networks adopting a kind of majority rule. Simulation results show the validity of the proposed method.
机译:基因表达之间的调节相互作用被认为是生物系统中的普遍机制,并且这种相互作用的机制已经被建模为基因调节网络。基因调控网络显示了基因表达之间的相关性。已经开发了许多描述基因调控网络的方法。特别地,由于诸如DNA微阵列之类的技术提供了许多基因表达的时程数据,近来已经提出并开发了由微分方程描述的基因调控网络模型。为了使用微分方程式推论这样的基因调控网络,有必要从通过实验获得的基因表达的时程数据中近似许多未知函数。基因调节网络的成功推理方法之一是使用神经网络的方法。在这项研究中,为了提高推理的性能,我们提出了采用一种多数规则的神经网络的基因调控网络的推理方法。仿真结果表明了该方法的有效性。

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