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首页> 外文期刊>Chemometrics and Intelligent Laboratory Systems >Piece-wise quasi-linear modeling in QSAR and analytical calibration based on linear substructures detected by genetic algorithm
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Piece-wise quasi-linear modeling in QSAR and analytical calibration based on linear substructures detected by genetic algorithm

机译:QSAR中的分段准线性建模和基于遗传算法检测到的线性子结构的分析校准

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摘要

This paper introduces an alternative approach called piece-wise quasi-linear modeling methodology to split the data set into linear subsets when single linear calibration model failed to describe the whole data with desired residuals. The paper treats the linear models describing the sought-for subsets as hyperplanes in the data space. A modified genetic algorithm splits the data set into linear subsets according to a given maximum error. The proposed algorithm has successfully split a real QSAR data set into three chemically homogeneous linear subsets with very small residuals comparing with those obtained when a single linear model used to describe the data.
机译:本文介绍了一种称为分段准线性建模方法的替代方法,该方法可在单个线性校准模型无法用所需残差描述整个数据时将数据集分成线性子集。本文将描述寻找的子集的线性模型视为数据空间中的超平面。改进的遗传算法根据给定的最大误差将数据集拆分为线性子集。与使用单个线性模型描述数据时获得的残差相比,拟议算法已成功地将实际QSAR数据集分为三个化学均一的线性子集,其残差非常小。

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