首页> 外文期刊>Journal of multiple-valued logic and soft computing >The Genetic Code as a Function of Multiple-Valued Logic Over the Field of Complex Numbers and its Learning using Multilayer Neural Network Based on Multi-Valued Neurons
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The Genetic Code as a Function of Multiple-Valued Logic Over the Field of Complex Numbers and its Learning using Multilayer Neural Network Based on Multi-Valued Neurons

机译:遗传数作为复数域上多值逻辑的函数及其在基于多值神经元的多层神经网络中的学习

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It is shown in this paper that a model of multiple-valued logic over the field of complex numbers is the most appropriate for the representation of the genetic code as a multiple-valued function. The genetic code is considered as a partially defined multiple-valued function of three variables. The genetic code is the four-letter nucleic acid code, and it is translated into a 20-letter amino acid code from proteins (each of 20 amino acids is coded by the triplet of four nucleic acids). Thus, it is possible to consider the genetic code as a partially defined multiple-valued function of a 20-valued logic. Consideration of the genetic code within the proposed mathematical model makes it possible to learn the code using a multilayer neural network based on multi-valued neurons (MLMVN). MLMVN is a neural network with traditional feedforward architecture, but with a highly efficient derivative-free learning algorithm and higher functionality than the one of the traditional feedforward neural networks and a variety of kernel-based networks. It is shown that the genetic code multiple-valued functionrncan be easily trained by a significantly smaller MLMVN in comparison with a classical feedforward neural network.
机译:本文表明,复数域上的多值逻辑模型最适合将遗传密码表示为多值函数。遗传密码被认为是三个变量的部分定义的多值函数。遗传密码是四字母的核酸密码,它从蛋白质翻译为20字母的氨基酸密码(20个氨基酸中的每一个均由四个核酸的三联体编码)。因此,可以将遗传密码视为20值逻辑的部分定义的多值函数。考虑到所提出的数学模型中的遗传密码,可以使用基于多值神经元(MLMVN)的多层神经网络学习密码。 MLMVN是具有传统前馈体系结构的神经网络,但与传统前馈神经网络和各种基于内核的网络相比,它具有高效的无导数学习算法和更高的功能。结果表明,与经典前馈神经网络相比,遗传密码多值函数可以通过明显较小的MLMVN轻松进行训练。

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