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Protein Tertiary Structure Prediction with Hybrid Clonal Selection and Differential Evolution Algorithms

机译:杂交克隆选择和差分演化算法的蛋白质三级结构预测

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The paper deals with the problem of protein tertiary structure prediction based on its primary sequence. From the point of view of the optimization problem, the problem of protein folding is reduced to the search for confirmation with minimal energy. To solve this problem, a hybrid artificial immune system has been proposed in the form of a combination of clonal selection and differential evolution algorithms. The developed hybrid algorithm uses special methods of encoding and decoding individuals, as well as an affinity function, which allows reducing the number of incorrect conformations (solutions with self-intersections). To test the algorithm, Dill's hydrophobic-polar model on a two-dimensional square lattice was chosen. Experimental studies were conducted on test sequences, which showed the advantages of the developed algorithm over other existing methods.
机译:本文涉及基于其主要序列的蛋白质三级结构预测问题。从优化问题的角度来看,蛋白质折叠的问题被降低到寻找具有最小能量的确认。为了解决这个问题,已经以克隆选择和差分演化算法的组合的形式提出了一种混合人工免疫系统。开发的混合算法使用编码和解码个体的特殊方法,以及亲和函数,允许减少不正确的构象的数量(具有自交叉点的解决方案)。为了测试算法,选择了二维方形格子上的莳萝的疏水极性模型。对试验序列进行了实验研究,其显示了发达算法在其他现有方法中的优点。

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