Quantitative structure-retention relationships XIV -: Prediction of gas chromatographic retention indices for saturated O-, N-, and S-heterocyclic compounds

被引:42
作者
Farkas, O
Héberger, K
Zenkevich, IG
机构
[1] Hungarian Acad Sci, Inst Chem, Chem Res Ctr, H-1525 Budapest, Hungary
[2] Inst Chem Res, St Petersburg 198504, Russia
关键词
variable selection; MLR; PLS; prediction; Kovats retention index; saturated heterocyclic compounds; gas chromatography;
D O I
10.1016/j.chemolab.2004.01.012
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
In this study, quantitative structure-retention relationship (QSRR) technique was used to find the best approximation and to predict gas chromatographic retention indices for O-, N-, and S-heterocyclic compounds on standard nonpolar polydimethyl siloxane stationary phase. Boiling point (BP) and calculated properties were used to encode the structure of compounds. Three- and two-dimensional calculated properties such as weighted-holistic invariant molecular (WHIM) descriptors, geometry topology and atom weights assembly (GETAWAY) descriptors, connectivity indices, and zero-dimensional constitutive descriptors were used. Variable subset selection (VSS) and partial least squares (PLS) projections to latent structures were used to select the most significant variables from a large set of descriptors. Multiple linear regression (MLR) and PLS were applied to find the relationship between selected properties and gas chromatographic retention indices. PLS was not able to select the most important descriptors (boiling point or molecular weight). The predictive ability of the models was tested by cross-validation. Solely calculated descriptors were not able to give proper models. Boiling point was always necessary for good prediction. PLS models containing boiling points were suitable for retention index prediction, whereas MLR did not give real linear models. (C) 2004 Elsevier B.V. All rights reserved.
引用
收藏
页码:173 / 184
页数:12
相关论文
共 47 条
[11]   Polycyclic aromatic hydrocarbons: a QSPR study [J].
Ferreira, MMC .
CHEMOSPHERE, 2001, 44 (02) :125-146
[12]   PARTIAL LEAST-SQUARES REGRESSION - A TUTORIAL [J].
GELADI, P ;
KOWALSKI, BR .
ANALYTICA CHIMICA ACTA, 1986, 185 :1-17
[13]   VIOLATION OF THE LINEARITY PRINCIPLE OF ADDITIVITY OF SORPTION ENERGY IN CHROMATOGRAPHY - A UNIVERSAL EQUATION DESCRIBING RETENTION BEHAVIOR [J].
GOLOVNYA, RV ;
GRIGORYEVA, DN .
JOURNAL OF HIGH RESOLUTION CHROMATOGRAPHY & CHROMATOGRAPHY COMMUNICATIONS, 1986, 9 (10) :584-589
[14]   3D-modelling and prediction by WHIM descriptors. Part 9. Chromatographic relative retention time and physico-chemical properties of polychlorinated biphenyls (PCBs) [J].
Gramatica, P ;
Navas, N ;
Todeschini, R .
CHEMOMETRICS AND INTELLIGENT LABORATORY SYSTEMS, 1998, 40 (01) :53-63
[15]   SELECTED PROPERTIES OF THE SCHULTZ MOLECULAR TOPOLOGICAL INDEX [J].
GUTMAN, I .
JOURNAL OF CHEMICAL INFORMATION AND COMPUTER SCIENCES, 1994, 34 (05) :1087-1089
[16]   EMPIRICAL CORRELATION EQUATIONS DESCRIBING RETENTION DATA OF HYDROCARBONS ON DINONYLPHTALATE AND POLYETHYLENEGLYCOL-4000 [J].
HEBERGER, K .
CHROMATOGRAPHIA, 1988, 25 (08) :725-730
[17]   Principal component analysis of polarity and interaction parameters in inverse gas chromatography [J].
Héberger, K ;
Milczewska, K ;
Voelkel, A .
JOURNAL OF CHROMATOGRAPHIC SCIENCE, 2001, 39 (09) :375-384
[18]   DISCRIMINATION BETWEEN LINEAR AND NONLINEAR MODELS DESCRIBING RETENTION DATA OF ALKYLBENZENES IN GAS-CHROMATOGRAPHY [J].
HEBERGER, K .
CHROMATOGRAPHIA, 1990, 29 (7-8) :375-384
[20]  
*HYP, HYP 7 0 PROGR PACK