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Combing genetic algorithm with neural network technique for protein inter-residue spatial distance prediction

机译:遗传算法与神经网络技术相结合的蛋白质残基空间距离预测

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The spatial distance of amino acids in a protein sequence is one of the important factors, which determine the three-dimension structure (tertiary structure). In this paper, we describe a genetic algorithm (GA) based radial basis function neural networks (RBFNN), whose hidden centers and radial basis function widths is optimized by the GA, to learn how primary structure (residue sequence) affects the spatial proximity of the amino acids in the soybean protein sequences and predict the residues spatial distance in three-dimensional space. Experimental results indicate that the proposed network has a good performance in soybean protein sequences residue spatial distance prediction.
机译:蛋白质序列中氨基酸的空间距离是决定三维结构(三级结构)的重要因素之一。在本文中,我们描述了一种基于遗传算法(GA)的径向基函数神经网络(RBFNN),其遗传中心对隐藏中心和径向基函数宽度进行了优化,以了解一级结构(残基序列)如何影响空间分布。大豆蛋白序列中的氨基酸并预测残基在三维空间中的空间距离。实验结果表明,该网络在大豆蛋白序列残基空间距离预测中具有良好的性能。

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