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Classification analysis of dual nucleotides using dimension reduction

We introduce a new approach to investigate the dual nucleotides compositions of 11 Gram-positive and 12 Gram-negative eubacteria recently studied by Sorimachi and Okayasu. The approach firstly obtains a 16-dimension vector set of dual nucleotides by PN-curve from the complete genome of organism. Eac...

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Detalles Bibliográficos
Autores principales: Qi, Zhao-Hui, Wang, Jian-Min, Qi, Xiao-Qin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Published by Elsevier Ltd. 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7126582/
https://www.ncbi.nlm.nih.gov/pubmed/19481099
http://dx.doi.org/10.1016/j.jtbi.2009.05.011
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author Qi, Zhao-Hui
Wang, Jian-Min
Qi, Xiao-Qin
author_facet Qi, Zhao-Hui
Wang, Jian-Min
Qi, Xiao-Qin
author_sort Qi, Zhao-Hui
collection PubMed
description We introduce a new approach to investigate the dual nucleotides compositions of 11 Gram-positive and 12 Gram-negative eubacteria recently studied by Sorimachi and Okayasu. The approach firstly obtains a 16-dimension vector set of dual nucleotides by PN-curve from the complete genome of organism. Each vector of the set corresponds to a single gene of genome. Then we reduce the 16-dimension vector set to 2-dimension by principal components analysis (PCA). The reduction avoids possible loss of information averaging all 16-dimension vectors. Then we suggest a 2D graphical representation based on the 2-dimension vector to investigate the classification patters among different organisms.
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spelling pubmed-71265822020-04-06 Classification analysis of dual nucleotides using dimension reduction Qi, Zhao-Hui Wang, Jian-Min Qi, Xiao-Qin J Theor Biol Article We introduce a new approach to investigate the dual nucleotides compositions of 11 Gram-positive and 12 Gram-negative eubacteria recently studied by Sorimachi and Okayasu. The approach firstly obtains a 16-dimension vector set of dual nucleotides by PN-curve from the complete genome of organism. Each vector of the set corresponds to a single gene of genome. Then we reduce the 16-dimension vector set to 2-dimension by principal components analysis (PCA). The reduction avoids possible loss of information averaging all 16-dimension vectors. Then we suggest a 2D graphical representation based on the 2-dimension vector to investigate the classification patters among different organisms. Published by Elsevier Ltd. 2009-09-07 2009-05-27 /pmc/articles/PMC7126582/ /pubmed/19481099 http://dx.doi.org/10.1016/j.jtbi.2009.05.011 Text en Crown copyright © 2009 Published by Elsevier Ltd. All rights reserved. Since January 2020 Elsevier has created a COVID-19 resource centre with free information in English and Mandarin on the novel coronavirus COVID-19. The COVID-19 resource centre is hosted on Elsevier Connect, the company's public news and information website. Elsevier hereby grants permission to make all its COVID-19-related research that is available on the COVID-19 resource centre - including this research content - immediately available in PubMed Central and other publicly funded repositories, such as the WHO COVID database with rights for unrestricted research re-use and analyses in any form or by any means with acknowledgement of the original source. These permissions are granted for free by Elsevier for as long as the COVID-19 resource centre remains active.
spellingShingle Article
Qi, Zhao-Hui
Wang, Jian-Min
Qi, Xiao-Qin
Classification analysis of dual nucleotides using dimension reduction
title Classification analysis of dual nucleotides using dimension reduction
title_full Classification analysis of dual nucleotides using dimension reduction
title_fullStr Classification analysis of dual nucleotides using dimension reduction
title_full_unstemmed Classification analysis of dual nucleotides using dimension reduction
title_short Classification analysis of dual nucleotides using dimension reduction
title_sort classification analysis of dual nucleotides using dimension reduction
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7126582/
https://www.ncbi.nlm.nih.gov/pubmed/19481099
http://dx.doi.org/10.1016/j.jtbi.2009.05.011
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