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PMID: 16109748 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Non-linear PCA: a missing data approach.

Bioinformatics (Oxford, England) ·Vol. 21 ·No. 20 ·2005-10-15 ·Pages 3887-95

Scholz M, Kaplan F, Guy CL, Kopka J, Selbig J

Abstract

Visualizing and analysing the potential non-linear structure of a dataset is becoming an important task in molecular biology. This is even more challenging when the data have missing values. Here, we propose an inverse model that performs non-linear principal component analysis (NLPCA) from incomplete datasets. Missing values are ignored while optimizing the model, but can be estimated afterwards. Results are shown for both artificial and experimental datasets. In contrast to linear methods, non-linear methods were able to give better missing value estimations for non-linear structured data. We applied this technique to a time course of metabolite data from a cold stress experiment on the model plant Arabidopsis thaliana, and could approximate the mapping function from any time point to the metabolite responses. Thus, the inverse NLPCA provides greatly improved information for better understanding the complex response to cold stress. [email protected].

MeSH Terms
Adaptation, Physiological/physiology Algorithms Arabidopsis/physiology Arabidopsis Proteins/metabolism Cold Temperature Data Interpretation, Statistical Gene Expression Profiling/methods Gene Expression Regulation, Plant/physiology Models, Genetic Models, Statistical Nonlinear Dynamics Oligonucleotide Array Sequence Analysis/methods Principal Component Analysis Signal Transduction/physiology
Chemicals
Arabidopsis Proteins
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Scholz Matthias
Max Planck Institute of Molecular Plant Physiology, Potsdam, Germany.
Kaplan Fatma
Guy Charles L
Kopka Joachim
Selbig Joachim
Article Info
Journal
Bioinformatics (Oxford, England)
Abbr.
Bioinformatics
ISSN
1367-4803
Published
2005-10-15
Epub
2005-00-18
Pages
3887-95
Language
English
Region
England
NLM ID
9808944
Subset
IM
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