Use of automatic relevance determination in QSAR studies using Bayesian neural networks

被引:119
作者
Burden, FR [1 ]
Ford, MG
Whitley, DC
Winkler, DA
机构
[1] Monash Univ, Sch Chem, Clayton, Vic 3800, Australia
[2] Univ Portsmouth, Inst Biomed & Biomol Sci, Ctr Mol Design, Portsmouth PO1 2DY, Hants, England
[3] CSIRO, Div Mol Sci, Clayton, Vic 3169, Australia
来源
JOURNAL OF CHEMICAL INFORMATION AND COMPUTER SCIENCES | 2000年 / 40卷 / 06期
关键词
D O I
10.1021/ci000450a
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We describe the use of Bayesian regularized artificial neural networks (BRANNs) coupled, with automatic relevance determination (ARD) in the development of quantitative structure-activity relationship (QSAR) models. These BRANN-ARD networks have the potential to solve a number of problems which,arise in QSAR modeling such as the following: choice of model; robustness of model; choice of validation set; size of validation effort; and optimization of network architecture. The ARD method ensures that irrelevant or highly correlated indices used in the modeling are neglected as well as showing which are the most important variables in modeling the activity data. The application of the methods to QSAR of compounds active at the benzodiazepine and muscarinic receptors as well as some, toxicological data of the effect of substituted benzenes on Tetetrahymena pyriformis is illustrated.
引用
收藏
页码:1423 / 1430
页数:8
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