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Quantitative structure-property relationship study of beta-cyclodextrin complexation free energies of organic compounds

机译:β-环糊精络合有机物自由能的定量构效关系研究

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A quantitative structure-property relationship (QSPR) study was performed between p-cyclodextrin complexation free energies and descriptors representing the molecular structures of organic guest compounds. The entire set of 218 compounds was divided into a training set of 160 compounds and a test set of 58 compounds by DUPLEX algorithm. Multiple linear regression (MLR) analysis was used to select the best subset of descriptors and to build linear models; while nonlinear models were developed with artificial neural network (ANN). The obtained models with seven descriptors involved show good predictive power for the test set: a squared correlation coefficient (r(2)) of 0.833 and mean absolute error (MAE) of 1.911 was achieved by the MLR model; while the ANN model performed better than the MLR model, with r(2) of 0.957 and MAE of 0.925 for the test set. In addition, the applicability domain of the models was analyzed based on the Williams plot. (C) 2015 Elsevier B.V. All rights reserved.
机译:对-环糊精络合自由能和代表有机客体化合物分子结构的描述子之间进行了定量结构-性质关系(QSPR)研究。通过DUPLEX算法,将整个218种化合物分为160种化合物的训练集和58种化合物的测试集。多元线性回归(MLR)分析用于选择最佳的描述符子集并建立线性模型。非线性模型是使用人工神经网络(ANN)开发的。获得的包含七个描述符的模型对测试集显示出良好的预测能力:MLR模型获得的平方相关系数(r(2))为0.833,平均绝对误差(MAE)为1.911;而ANN模型的表现优于MLR模型,测试集的r(2)为0.957,MAE为0.925。此外,基于威廉姆斯图分析了模型的适用范围。 (C)2015 Elsevier B.V.保留所有权利。

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