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1.
本文将分子结构表征方法(MEDV)进行改进,得到按非氢原子间距离分类的分子电性距离矢量,将该矢量用于酚类化合物结构表征,并与其土壤吸收系数(lgKoc)建立定量结构与性质关系(QSPR)模型。利用逐步回归(SMR)得到的4变量模型复相关系数(R2)为0.970、标准偏差(SD)为0.198,留一法(LOO)交互校验(CV)预测值的复相关系数(R2cv)为0.916、标准偏差(SDcv)为0.337。结果表明该矢量具有较强的分子结构表达能力,模型具有良好的预测能力与稳定性。  相似文献   

2.
应用分子电性距离矢量(MEDV)对多溴联苯醚(PBDEs)的209种同系物进行结构表征.通过多元线性回归的方法,建立了PBDEs定量结构-色谱保留(QSRR)关系的6个变量和5个变量的两种模型.两种模型的建模计算值复相关系数R均为0.995;用留一法(LOO)进行了交互检验,其复相关系数(R2cv)分别为0.987和0...  相似文献   

3.
林红卫  李志良 《有机化学》2003,23(12):1370-1374
应用分子电性距离矢量(MEDV)对吡喃酮类化合物进行结构表征和抗人类免疫缺 陷病毒(human immuno-deficiencyvirus,简称HIV)的活性预测,通过逐步回归 (SMR)方法建立了MEDV与活性之间的定量模型,取得了良好的结果,其模型相关系 数R=0.958;继以留一法(Leave-one-out,LOO)进行交互检验,相关系数R=0. 835,说明定量相关模型具有良好的稳定性和预测能力.  相似文献   

4.
应用分子电性距离矢量预测烷烃和一元醇的折光指数   总被引:5,自引:0,他引:5  
应用分子电性距离矢量对81个烷烃、22个一元醇进行了结构表征,通过多元线性回归与逐步回归的方法建立了分子电性距离矢量与折光指数的定量结构性质模型,模型的相关系数分别为0.980和0.979.采用留一法对模型进行交互检验复相关系数R2cv分别为0.927和0.898.说明定量结构性质模型具有很好的稳定性和预测功能.  相似文献   

5.
有机磷酸酯类化合物气相色谱定量结构保留关系研究   总被引:2,自引:0,他引:2  
采用分子电性距离矢量(MEDV)表征有机磷酸酯类化合物的分子结构,运用多元线性回归建立定量结构-色谱保留关系(QSRR)模型,同时采用逐步回归结合统计检测对模型进行变量筛选,建立了35个有机磷酸酯类化合物在3种不同固定相(OV-101,DB-1701和DB-WX)上气相色谱保留指数(RI)与MEDV的定量相关模型.在3种固定相上的QSRR模型的建模计算值复相关系数(R)、留一法(leave-one-out)交互校验复相关系数(QCV)分别为0.998 0和0.995 1(OV-101);0.996 3和0.989 6(DB-1701);0.993 7和0.984 1(DB-WX),表明模型具有良好估计能力与稳定性.  相似文献   

6.
利用原子电性作用矢量(Atomic electro-negativity interaction vector,AEIV)和原子杂化状态指数(Atomic hybridization state index,AHSI)对萜类化合物中的C原子进行结构表征并与其核磁共振碳谱(13C NMR)建立了优良的定量构谱相关(QSSR)模型.其中29个单萜类化合物中的290个C原子建模的计算值经留一法(Leave-one-out,LOO)交互校验(Cross-validation,CV)预测值的复相关系数(R)分别为0.9900和0.9867,进一步使用倍半萜、二萜、三萜化合物分子中65个C原子的13C NMR化学位移值来检测该模型的稳定性,模型预测值和观测值间复相关系数(R)为0.9777,取得了令人满意的结果.  相似文献   

7.
王娇娜  梅虎  杨力  龙海  周原  李根容  李志良 《分析化学》2007,35(10):1459-1463
利用原子电性作用矢量(AEIV)和原子杂化状态指数(AHSI)对嘌呤类化合物中的N原子与C原子进行结构表征并与其核磁共振碳谱(13C NMR与15N NMR)建立了优良的定量构谱相关(QSSR)模型,并用留一法(Leave-One-Out,LOO)交互校验(Cross-Validation,CV),对构建的模型进行了预测。其中12个嘌呤类化合物的60个C原子建模的计算值、留一法交互校验预测值的复相关系数(R)分别为0.961,0.970;12个嘌呤类化合物48个N原子建模的计算值、留一法交互校验预测值的R分别为0.987,0.989。说明AEIV与AHSI描述子具有普适性,对不同的原子均能进行有效的相关预测。  相似文献   

8.
李正华  程凡圣  夏之宁 《色谱》2011,29(1):63-69
应用分子电性距离矢量(MEDV)对114个多环芳香硫化合物(PASHs)进行结构表征,通过多元线性回归建立了PASHs的气相色谱保留指数与MEDV参数之间的定量结构-保留值关系模型;同时采用逐步回归分析进行变量筛选,继而以留一法交互检验对所得优化模型进行预测能力评价,所建立的模型的相关系数为0.9947,交互检验相关系数为0.9940,表明该优化模型具有良好的稳定性和预测能力。此外,通过将样本集按2:1分成校准集和测试集预测,统计分析结果显示所建的模型具有良好的相关性和稳定性。本文所建的定量结构-保留值关系(QSRR)模型为预测PASHs的气相色谱保留指数提供了一个便捷有效的新方法。  相似文献   

9.
周鹏  周原  梅虎  田菲菲  李志良 《分析化学》2006,34(2):200-204
提出了用于表征分子局部化学微环境及原子所处杂化状态的结构描述子:原子电性作用矢量(AEIV)和原子杂化状态指数(AHSI),将其应用于20个天然氨基酸103个碳原子13C核磁共振模拟中,取得满意结果。模型计算值、留一法(LOO-CV)交互校验预测值和新颖的留一分子法(LMO)交互校验预测值的复相关系数分别为r=0.9948、0.9940和0.9924。进一步使用4个非天然氨基酸化学位移值来测试该模型的预测能力,预测复相关系数为r=0.9940。  相似文献   

10.
采用分子电性距离矢量(Molecular Electronegativity Distance Vector,MEDV)表征稠环芳烃类化合物的分子结构.分别运用多元线性回归(Multiple Linear Regres-sion,MLR)和偏最小二乘回归(PLS)建立了稠环芳烃类化合物结构与其液相色谱(LC)保留值的定量结构一性质关系(QSPR)模型,同时采用内部及外部双重验证的办法对所建模型稳定性能进行分析和验证,建模计算值、留一法交互检验预测值和外部样本预测值的复相关系数Rcum、RLOO、Qext分别为0.9970,0.9950,0.9925(MLR);0.9930,0.9790,0.9917(PLS).结果表明,MEDV能较好地表征该类分子结构信息,所建QSPR模型具有良好的稳定性和预测能力.为稠环芳烃类化合物分离、纯化、检测等方法的建立,提供有效的理论依据.  相似文献   

11.
李建凤  廖立敏 《结构化学》2013,32(4):557-563
A molecular structural characterization (MSC) method called molecular vertexes correlative index (MVCI) was used to describe the structures of 30 substituted aromatic compounds. Through multiple linear regression (MLR) and stepwise multiple regression (SMR), a quantitative structure-toxicity relationship (QSTR) model with 4 variables was obtained. The correlation coefficient (R) of the model was 0.9467. Through partial least-squares regression (PLS), another QSTR model with 5 principal components was obtained. The correlation coefficient (R) of the model was 0.9518. Both models were evaluated by performing the cross-validation with the leave-one-out (LOO) procedure and the Cross-Validation (CV) correlation coefficients (RCV) were 0.9208 and 0.9214, respectively. The results suggested good stability and predictability of the models, and the molecular vertexes correlative index could successfully describe the structures of the substituted aromatic compounds.  相似文献   

12.
13.
A new method of quantitative structure‐retention relationship (QSRR) is proposed for estimating and predicting gas chromatographic retention indices of alkanes by using a novel molecular distance‐edge vector, called μ vector, containing 10 elements. The QSRR model (Ml), between the μ vector and chromatographic retention indices of 64 alkanes, was developed by using multiple linear regression (MLR) with the correlation coefficient being R = 0.9992 and the root mean square (RMS) error between the estimated and measured retention indices being RMS = 5.938. In order to explain the equation stability and prediction abilities of the M1 model, it is essential to perform a cross‐validation (CV) procedure. Satisfactory CV results have been obtained by using one external predicted sample every time with the average correlation coefficient being R = 0.9988 and average RMS = 7.128. If 21 compounds, about one third drawn from all 64 alkanes, construct an external prediction set and the 43 remaining construct an internal calibration set, the second QSRR model (M2) can be created by using calibration set data with statistics being R = 0.9993 and RMS = 5.796. The chromatographic retention indices of 21 compounds in the external testing set can be predicted by the M2 model and good prediction results are obtained with R = 0.9988 and RMS = 6.508.  相似文献   

14.
运用三维全息原子场作用矢量(3D-HoVAIF)对33个Nevirapine类抗艾滋病药物进行了定量构效关系(QSAR)研究。采用偏最小二乘回归(PLSR)建立定量构效关系模型,同时采用内部及外部双重验证的方法对所得模型稳定性能进行深入分析和检验,所建模型的复相关系数(Rcum2)、留一法(LOO)交互校验(CV)复相关系数(Qcum2)和外部样本校验复相关系数(Qext2)分别为0·835、0·530和0·518。结果表明,3D-HoVAIF能较好表征Nevirapine类抗艾滋病药物分子结构信息,且所建模型具有较好稳定性能和预测能力。  相似文献   

15.
廖立敏  李建凤  王碧 《结构化学》2011,30(10):1397-1402
A new molecular structural characterization(MSC)method called molecular vertexes correlative index(MVCI)was constructed in this paper.The index was used to describe the structures of 45 compounds and a quantitative structure-activity relationship(QSAR)model of toxicity(–lgEC50)was obtained through multiple linear regression(MLR)and stepwise multiple regression(SMR).The correlation coefficient(R)of the model was 0.912,and the standard deviation(SD)of the model was 0.525.The estimation stability and prediction ability of the model were strictly analyzed by both internal and external validations.The Leave-One-Out(LOO)Cross-Validation(CV)correlation coefficient(RCV)was 0.816 and the standard deviation(SDCV)was 0.739,respectively.For the external validation,the correlation coefficient(Rtest)was 0.905 and the standard deviation(SDtest)was 0.520,respectively.The results showed that the index was superior in molecular structural representation.The stability and predictability of the model were good.  相似文献   

16.
The semi-empirical topological index, I(ET), was developed and optimized to describe the chromatographic retention of alkylbenzenes on the squalane stationary phase. The simple linear regression between the chromatographic retention and the proposed index, for 122 alkylbenzenes studied, is of good quality (determination coefficient, r(2)=0.9996, standard deviation, S.D.=5.5, and leave-one-out cross-validation correlation coefficient, r(CV)(2)=0.9996). The predictive ability of I(ET) was also verified for stationary phases with two different polarities (SE-30 and Carbowax 20 M), and good results were obtained, especially for the stationary phase with low polarity, showing that the specific molecular interactions occur on highly polar phases. The I(ET) was applied to construct quantitative structure-property relationship (QSPR) models for representative properties such as boiling point, Bp(degrees C), octanol/water partition coefficient, log P, van der Waals volume (V(W)) and molar refractivity (R(M)). Satisfactory quality QSPR models were obtained with Bp, V(W) and R(M) showing that the molecular size and dispersive forces are dominating factors with respect to the chromatographic retention.  相似文献   

17.
A new molecular structural characterization (MSC) method called the molecular vertex eigenvalue correlative index (MVECI) is constructed and used to describe the structures of 122 alkylbenzene compounds. Through multiple linear regression (MLR) and stepwise multiple regression (SMR), a quantitative structure-retention relationship (QSRR) model with correlation coefficient (R) of 0.995 is obtained. Through partial least-square regression (PLS), another QSRR model with correlation coefficient (R) of 0.991 is obtained. The estimation stability and prediction ability of the two models are strictly analyzed by both internal and external validations. For the internal validation, the cross-validation (CV) correlation coefficients (R CV) of the two models are 0.993 and 0.988. For the external validation, the correlation coefficients (R test) of the two models are 0.996 and 0.995, respectively. The results show that the stability and predictability of the models are good, and the molecular vertex eigenvalue correlative index can successfully describe the structures of alkylbenzene compounds.  相似文献   

18.
运用三维全息原子场作用矢量(3D-HoVAIF)对猫爪草中18种脂肪酸进行定量构效关系(QSAR)研究。采用逐步回归(stepwise multiple regression,SMR)进行变量筛选,偏最小二乘回归(partial least square regression,PLS)建立定量构效关系模型。所建模型复相关系数(R2cum)、留一法交互校验(CV)复相关系数(Qc2um)分别为0.977和0.946。结果表明,3D-HoVAIF能较好表征猫爪草中脂肪酸的结构信息,且所建模型具有较好稳定性和预测能力。  相似文献   

19.
提出一种新的结构描述子-按氢分类的电距矢量(H-MEDV),并用于环尿素类 化合物抗人类免疫缺陷病毒(human immuno-deficiency virus,简称HIV)活性预 测,籍以多元线性回归(MLR)建立了H-MEDV与活性之间的相关模型,取得了良好 的结果,相关系数达R = 0.971。另外采用逐步回归(SMR)从原模型参数中选取了 5个参数建立一新模型,其模型相关系数为R = 0.938;继以留一法(Leave-one- out,LOO)进行交互检验,相关系数与之接近,R = 0.908;说明了定量结构活性 相关模型具有很好的稳定性和预测能力。  相似文献   

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