JOURNAL ARTICLE

Topological Models for Prediction of Pharmacokinetic Parameters of Cephalosporins using Random Forest, Decision Tree and Moving Average Analysis

Harish Dureja

Year: 2008 Journal:   Scientia Pharmaceutica Vol: 76 (3)Pages: 377-394   Publisher: Österreichische Apotheker-Verlagsgesellschaft m. b. H.

Abstract

The topological indices were used to encode the structureal features of cephalosporins. Both topostructural and topochemical versions of a distance based descriptor, three adjacency based descriptors and five distance-cum-adjacency based descriptors were calculated. The values of 18 indices for each cephalosporin in the dataset were computed using an in-house computer program. Multiple pharmacokinetic parameters of cephalosporins were predicted using random forest, decision tree and moving average analysis. Random forest correctly classified the pharmacokinetic parameters into low and high ranges upto 95%. A decision tree was constructed for each pharmacokinetic parameter to determine the importance of topological indices. The decision tree learned the information from the input data with an accuracy of 95% and correctly predicted the cross-validated (10 fold) data with an accuracy of upto 90%. Three independent moving average based topological models were developed using a single range for simultaneous prediction of multiple pharmacokinetic parameters. The accuracy of classification of single index based models using moving average analysis varied from 65% to 100%.

Keywords:
Adjacency list Decision tree Random forest Mathematics Tree (set theory) Statistics Range (aeronautics) Cephalosporin Adjacency matrix Similarity (geometry) Computer science Data mining Pattern recognition (psychology) Artificial intelligence Algorithm Combinatorics Chemistry Engineering Graph

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37
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3.42
FWCI (Field Weighted Citation Impact)
31
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0.94
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Citation History

Topics

Computational Drug Discovery Methods
Physical Sciences →  Computer Science →  Computational Theory and Mathematics
Bioinformatics and Genomic Networks
Life Sciences →  Biochemistry, Genetics and Molecular Biology →  Molecular Biology
Drug Transport and Resistance Mechanisms
Health Sciences →  Medicine →  Oncology
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